This application claims priority to Taiwan Application Serial Number 113100162, filed Jan. 2, 2024, which is herein incorporated by reference.
The present disclosure relates to an optical photographing lens assembly and an imaging apparatus. More particularly, the present disclosure relates to an optical photographing lens assembly and an imaging apparatus with compact size applicable to electronic devices.
With recent technology of semiconductor process advances, performances of image sensors are enhanced, so that the smaller pixel size can be achieved. Therefore, optical lens assemblies with high image quality have become an indispensable part of many modern electronics. With rapid developments of technology, applications of electronic devices equipped with optical lens assemblies increase and there is a wide variety of requirements for optical lens assemblies. However, in a conventional optical lens assembly, it is hard to balance among image quality, sensitivity, aperture size, volume or field of view. Thus, there is a demand for an optical lens assembly that meets the aforementioned needs.
According to one aspect of the present disclosure, an optical photographing lens assembly includes six lens elements, which are, in order from an object side to an image side along an optical path, a first lens element, a second lens element, a third lens element, a fourth lens element, a fifth lens element and a sixth lens element. Each of the six lens elements has an object-side surface towards the object side and an image-side surface towards the image side. Preferably, the first lens element has positive refractive power. Preferably, the object-side surface of the first lens element is convex in a paraxial region thereof. Preferably, the second lens element has negative refractive power. Preferably, the object-side surface of the second lens element is convex in a paraxial region thereof. Preferably, the image-side surface of the second lens element is concave in a paraxial region thereof. Preferably, the third lens element has positive refractive power. Preferably, the image-side surface of the third lens element is convex in a paraxial region thereof. Preferably, at least one of the first lens element to the sixth lens element includes at least one inflection point. When a maximum field of view of the optical photographing lens assembly at an object distance being infinite is FOVL, a focal length of the second lens element is f2, a focal length of the third lens element is f3, a focal length of the sixth lens element is f6, a central thickness of the second lens element is CT2, a central thickness of the third lens element is CT3, a central thickness of the fourth lens element is CT4, a central thickness of the fifth lens element is CT5, an axial distance between the fifth lens element and the sixth lens element of the optical photographing lens assembly at the object distance being infinite is T56L, a curvature radius of the object-side surface of the second lens element is R3, and a curvature radius of the image-side surface of the second lens element is R4, the following conditions are preferably satisfied: 10.0 degrees<FOVL<55.0 degrees; 0<|f3/f6|<0.75; 0< (CT4+CT5)/T56L<0.90; 4.50<|f2/R3|+|f2/R4|<18.00; and 0.05<CT2/CT3<0.75.
According to another aspect of the present disclosure, an imaging apparatus includes the optical photographing lens assembly of the aforementioned aspect and an image sensor, wherein the image sensor is disposed on an image surface of the optical photographing lens assembly.
According to another aspect of the present disclosure, an electronic device includes the imaging apparatus of the aforementioned aspect.
According to one aspect of the present disclosure, an optical photographing lens assembly includes six lens elements, which are, in order from an object side to an image side along an optical path, a first lens element, a second lens element, a third lens element, a fourth lens element, a fifth lens element and a sixth lens element. Each of the six lens elements has an object-side surface towards the object side and an image-side surface towards the image side. Preferably, the first lens element has positive refractive power. Preferably, the object-side surface of the first lens element is convex in a paraxial region thereof. Preferably, the second lens element has negative refractive power. Preferably, the object-side surface of the second lens element is convex in a paraxial region thereof. Preferably, the image-side surface of the second lens element is concave in a paraxial region thereof. Preferably, the third lens element has positive refractive power. Preferably, the image-side surface of the third lens element is convex in a paraxial region thereof. Preferably, at least one of the first lens element to the sixth lens element includes at least one inflection point. When a maximum field of view of the optical photographing lens assembly at an object distance being infinite is FOVL, a focal length of the third lens element is f3, a focal length of the sixth lens element is f6, a central thickness of the fourth lens element is CT4, a central thickness of the fifth lens element is CT5, an axial distance between the second lens element and the third lens element of the optical photographing lens assembly at the object distance being infinite is T23L, an axial distance between the fifth lens element and the sixth lens element of the optical photographing lens assembly at the object distance being infinite is T56L, a curvature radius of the image-side surface of the first lens element is R2, and a curvature radius of the object-side surface of the second lens element is R3, the following conditions are preferably satisfied: 10.0 degrees<FOVL<55.0 degrees; 0<|f3/f6|<0.75; 0< (CT4+CT5)/T56L<0.90; 0.15< (R2+R3)/(R2−R3)<5.00; and 0.05<CT4/T23L<0.75.
According to one aspect of the present disclosure, an optical photographing lens assembly includes two lens element groups, which include six lens elements. The two lens element groups are, in order from an object side to an image side along an optical path, a first lens element group and a second lens element group. The six lens elements are, in order from the object side to the image side along the optical path, a first lens element, a second lens element, a third lens element, a fourth lens element, a fifth lens element and a sixth lens element. Each of the six lens elements has an object-side surface towards the object side and an image-side surface towards the image side. Preferably, when the imaged object is moved from infinite to macro, the optical photographing lens assembly is changed from a 1st mode to a 2nd mode. During a focusing movement, the second lens element group is moved towards to the image side along an optical axis relative to the first lens element group. During the focusing movement, all lens elements in each of the two lens element groups have no relative movement. Preferably, the first lens element group includes the first lens element, the second lens element and the third lens element. Preferably, the second lens element group includes the fourth lens element, the fifth lens element and the sixth lens element. Preferably, the first lens element has positive refractive power. Preferably, at least one of the first lens element to the sixth lens element includes at least one inflection point. When a central thickness of the first lens element is CT1, a central thickness of the third lens element is CT3, a central thickness of the fourth lens element is CT4, a central thickness of the fifth lens element is CT5, an axial distance between the fifth lens element and the sixth lens element of the optical photographing lens assembly at an object distance being infinite is T56L, an axial distance between the object-side surface of the first lens element and an image surface of the optical photographing lens assembly at the object distance being infinite is TLL, an axial distance between the object-side surface of the first lens element and the image-side surface of the third lens element of the optical photographing lens assembly at the object distance being infinite is Dr1r6L, and an axial distance between the object-side surface of the first lens element and the image surface of the optical photographing lens assembly at the object distance being macro is TLS, the following conditions are satisfied: 0.10< (CT4+CT5)/T56L<1.50; 0.10<CT1/CT3<1.80; 1.00<TLL/Dr1r6L<3.00; and 0.90<TLL/TLS<1.10.
The present disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
The present disclosure provides an optical photographing lens assembly, which includes two lens element groups. The two lens element groups include six lens elements. The two lens element groups are, in order from an object side to an image side along an optical path, a first lens element group and a second lens element group. The six lens elements are, in order from the object side to the image side along the optical path, a first lens element, a second lens element, a third lens element, a fourth lens element, a fifth lens element and a sixth lens element. Each of the six lens elements has an object-side surface towards the object side and an image-side surface towards the image side. Therefore, it is favorable for obtaining the balance among the volume, the focusing function in the object distance movement, the image quality and the difficulty of assembling by the arrangement of the two lens element groups. In detail, the optical photographing lens assembly of the present disclosure provides the design of the lens element groups, so that the focal length thereof can be adjusted by changing the distance between the lens element groups according to the object distance so as to achieve the focusing process. Further, by providing different light traveling directions, it is favorable for providing more flexible using space of the optical photographing lens assembly to present telephoto function with long focal length, and also favorable for obtaining high image quality at both of distance shooting and close up shooting so as to promote the flexibility of photographing.
When the imaged object is moved from infinite to macro, the optical photographing lens assembly is changed from a 1st mode to a 2nd mode. During a focusing movement, the second lens element group is moved towards to the image side along an optical axis relative to the first lens element group. Therefore, it is favorable for achieving the close-up shooting effect and simplifying the complexity of the optical design and the mechanism.
During the focusing movement, all lens elements in each of the two lens element groups have no relative movement. Therefore, it is favorable for simplifying the complexity of the mechanism.
In the optical photographing lens assembly, the first lens element has positive refractive power. Therefore, light can be further gathered by adjusting the refractive power of the first lens element, so that it is favorable for controlling the photographing field of view and enhancing the amount of incoming light. The object-side surface of the first lens element can be convex in a paraxial region thereof. Therefore, it is favorable for compressing the outer diameter of the object-side end of the optical photographing lens assembly by adjusting the surface shape of the first lens element.
The second lens element can have negative refractive power. Therefore, it is favorable for effectively balancing the refractive power of the first lens element so as to avoid excessive aberrations generated by too large refraction angle of light. The object-side surface of the second lens element can be convex in a paraxial region thereof. Therefore, it is favorable for converging light by adjusting the traveling direction of light. The image-side surface of the second lens element can be concave in a paraxial region thereof. Therefore, it is favorable for balancing spherical aberration of the optical photographing lens assembly by adjusting the refractive power of the second lens element.
The third lens element can have positive refractive power. Therefore, it is favorable for converging light, controlling the traveling direction of light effectively, and obtaining the balance between the field of view and the volume. The image-side surface of the third lens element can be convex in a paraxial region thereof. Therefore, it is favorable for enlarging the image surface by adjusting the light exiting direction from the third lens element.
The object-side surface of the fourth lens element can be concave in a paraxial region thereof. Therefore, the light incident angle on the object-side surface of the fourth lens element can be controlled, so that it is favorable for avoiding the light divergence and poor relative illumination in the peripheral area caused by excessive incident angle.
The object-side surface of the fifth lens element can be convex in a paraxial region thereof, so that it is favorable for balancing the refractive power of the fifth lens element and reducing the back focal length.
The sixth lens element can have negative refractive power. Therefore, the refractive power of the image-side end of the sixth lens element can be balanced, so that it is favorable for enhancing the light convergence quality on the image surface of light from each field of view and reducing aberrations. The image-side surface of the sixth lens element can be convex in a paraxial region thereof, so that it is favorable for balancing the back focal length of the optical photographing lens assembly and also correcting off-axis aberration.
At least one of the first lens element to the sixth lens element can include at least one inflection point. Therefore, it is favorable for correcting astigmatism by enhancing the flexibility of optical design.
At least one of the object-side surface and the image-side surface of the fourth lens element can include at least one critical point. Therefore, it is favorable for correcting astigmatism and enlarging the image surface by adjusting the surface shape of the fourth lens element in the peripheral area. Further, the object-side surface of the fourth lens element can include at least one convex critical point. Therefore, it is favorable for avoiding the vignetting generated on the peripheral area of the image and reducing the distortion by controlling the angle of the peripheral light at the object side of the fourth lens element.
When a central thickness of the fourth lens element is CT4, a central thickness of the fifth lens element is CT5, and an axial distance between the fifth lens element and the sixth lens element of the optical photographing lens assembly at the object distance being infinite is T56L, the following condition is satisfied: 0< (CT4+CT5)/T56L<0.90; or 0.10< (CT4+CT5)/T56L<1.50. Therefore, it is favorable for balancing the light incident angle on the image surface during the focusing movement by arranging the greater distance between the fifth lens element and the sixth lens element so as to avoid the generation of stray light. Furthermore, the following condition can be satisfied: 0.15< (CT4+CT5)/T56L<0.75. Furthermore, the following condition can be satisfied: 0.28≤(CT4+CT5)/T56L≤0.63.
When a maximum field of view of the optical photographing lens assembly at the object distance being infinite is FOVL, the following condition is satisfied: 10.0 degrees<FOVL<55.0 degrees. Therefore, the optical photographing lens assembly can have proper field of view for telephoto applications. Furthermore, the following condition can be satisfied: 20.0 degrees<FOVL<45.0 degrees. Furthermore, the following condition can be satisfied: 25.0 degrees<FOVL<40.0 degrees. Furthermore, the following condition can be satisfied: 33.6 degrees≤FOVL≤35.6 degrees.
When a focal length of the third lens element is f3, and a focal length of the sixth lens element is f6, the following condition is satisfied: 0<|f3/f6|<0.75. Thus, the ratio of the refractive power of the third lens element and the sixth lens element can be adjusted, the third lens element can obtain the ability of light convergence which can be balance by the sixth lens element. Therefore, it is favorable for enhancing the light convergence quality of the entire field of view by balancing light convergence or light divergence. Furthermore, the following condition can be satisfied: 0.03<|f3/f6|<0.65. Furthermore, the following condition can be satisfied: 0.08≤|f3/f6|≤0.60.
When a focal length of the second lens element is f2, a curvature radius of the object-side surface of the second lens element is R3, and a curvature radius of the image-side surface of the second lens element is R4, the following condition is satisfied: 4.50<|f2/R3|+|f2/R4|<18.00. Therefore, the refractive power of the second lens element, the curvature radius of the object-side surface of the second lens element and the curvature radius of the image-side surface of the second lens element can be adjusted, it is favorable for efficiently balancing the deflection angle of the light from the first lens element so as to reduce aberrations. Furthermore, the following condition can be satisfied: 6.00<|f2/R3|+|f2/R4|<15.00. Furthermore, the following condition can be satisfied: 6.09≤|f2/R3|+|f2/R4|≤12.09.
When a central thickness of the second lens element is CT2, and a central thickness of the third lens element is CT3, the following condition is satisfied: 0.05<CT2/CT3<0.75. Therefore, it is favorable for concerning the manufacturing limitation of the third lens element by controlling the ratio between the central thicknesses of the second lens element and the third lens element, and is also favorable for reducing the volume of the optical photographing lens assembly by adjusting the central thickness of the second lens element. Furthermore, the following condition can be satisfied: 0.12<CT2/CT3<0.65. Furthermore, the following condition can be satisfied: 0.19≤CT2/CT3≤0.53.
When a curvature radius of the image-side surface of the first lens element is R2, and a curvature radius of the object-side surface of the second lens element is R3, the following condition is satisfied: 0.15< (R2+R3)/(R2−R3)<5.00. Therefore, it is favorable for adjusting the traveling direction of the light on the peripheral area by effectively balancing the curvature radius of the image-side surface of the first lens element and the curvature radius of the object-side surface of the second lens element so as to correct astigmatism and reduce stray light of the optical photographing lens assembly. Furthermore, the following condition can be satisfied: 0.20< (R2+R3)/(R2−R3)<3.00. Furthermore, the following condition can be satisfied: 0.25< (R2+R3)/(R2−R3)<2.50. Furthermore, the following condition can be satisfied: 0.30< (R2+R3)/(R2−R3)<2.00. Furthermore, the following condition can be satisfied: 0.40≤(R2+R3)/(R2−R3)≤1.83.
When the central thickness of the fourth lens element is CT4, and an axial distance between the second lens element and the third lens element of the optical photographing lens assembly at the object distance being infinite is T23L, the following condition is satisfied: 0.05<CT4/T23L<0.75. Therefore, it is favorable for balancing the space arrangement of the lens element group on the object side and the lens element group on the image side and also favorable for maintaining high quality of light convergence at several object distances by balancing the axial distance between the second lens element and the third lens element and the central thickness of the fourth lens element. Furthermore, the following condition can be satisfied: 0.12<CT4/T23L<0.65. Furthermore, the following condition can be satisfied: 0.17≤CT4/T23L≤0.59.
When a central thickness of the first lens element is CT1, and the central thickness of the third lens element is CT3, the following condition is satisfied: 0.10<CT1/CT3<1.80. Therefore, it is favorable for enhancing the design flexibility and reducing the manufacturing tolerances by controlling the ratio between the central thickness of the first lens element and the central thickness of the third lens element. Furthermore, the following condition can be satisfied: 0.10<CT1/CT3<1.20. Furthermore, the following condition can be satisfied: 0.20<CT1/CT3<1.40. Furthermore, the following condition can be satisfied: 0.30<CT1/CT3<1.00. Furthermore, the following condition can be satisfied: 0.55≤ CT1/CT3≤0.90.
When an axial distance between the object-side surface of the first lens element and the image surface of the optical photographing lens assembly at the object distance being infinite is TLL, and an axial distance between the object-side surface of the first lens element and the image-side surface of the third lens element of the optical photographing lens assembly at the object distance being infinite is Dr1r6L, the following condition is satisfied: 1.00<TLL/Dr1r6L<3.50. Therefore, it is favorable for compressing the volume of the optical photographing lens assembly by maintaining the ratio between the total track length thereof and the length of the first lens element group. Furthermore, the following condition can be satisfied: 1.00<TLL/Dr1r6L<3.00. Furthermore, the following condition can be satisfied: 1.50<TLL/Dr1r6L<3.00. Furthermore, the following condition can be satisfied: 1.80<TLL/Dr1r6L<2.50. Furthermore, the following condition can be satisfied: 2.15≤TLL/Dr1r6L≤2.30.
When the axial distance between the object-side surface of the first lens element and the image surface of the optical photographing lens assembly at the object distance being infinite is TLL, and an axial distance between the object-side surface of the first lens element and the image surface of the optical photographing lens assembly at the object distance being macro is TLS, the following condition is satisfied: 0.90<TLL/TLS<1.10. Therefore, it is favorable for simplifying the complexity of the mechanism design by maintaining the same optical total track length during focusing movement so as to facilitate the assembling of the optical photographing lens assembly. Furthermore, the following condition can be satisfied: 0.95<TLL/TLS<1.05. Furthermore, the following condition can be satisfied: 0.98<TLL/TLS<1.02. Furthermore, the following condition can be satisfied: TLL/TLS=1.00.
When the axial distance between the object-side surface of the first lens element and the image-side surface of the third lens element of the optical photographing lens assembly at the object distance being infinite is Dr1r6L, and an axial distance between the object-side surface of the fourth lens element and the image-side surface of the sixth lens element of the optical photographing lens assembly at the object distance being infinite is Dr7r12L, the following condition is satisfied: 1.00<Dr1r6L/Dr7r12L<2.00. Therefore, the axial length of the lens element group on the object side and the axial length of the moved lens element group can be adjusted, so that it is favorable for balancing the space arrangement of the lens elements so as to reduce the sensitivity of the optical photographing lens assembly during the focusing movement. Furthermore, the following condition can be satisfied: 1.20<Dr1r6L/Dr7r12L<1.80.
At least one of the first lens element to the sixth lens element can be made of glass material. Therefore, the sensitivity of the environment factors can be effectively reduced by using the glass material, so that it is favorable for maintaining high stability to apply on different environments. At least one of the first lens element to the third lens element can be made of glass material.
When the curvature radius of the object-side surface of the second lens element is R3, and the curvature radius of the image-side surface of the second lens element is R4, the following condition is satisfied: 0< (R3−R4)/(R3+R4)<0.50. Therefore, it is favorable for compressing the outer diameter of the first lens element group by effectively balancing the curvature radius of the object-side surface of the second lens element and the curvature radius of the image-side surface of the second lens element. Furthermore, the following condition can be satisfied: 0.10< (R3−R4)/(R3+R4)<0.35.
When a curvature radius of the object-side surface of the first lens element is R1, and the curvature radius of the image-side surface of the second lens element is R4, the following condition is satisfied: 0.10<R4/R1<0.70. Therefore, it is favorable for balancing the convergence ability of light from the object side by adjusting the curvature radius of the object-side surface of the first lens element and the curvature radius of the image-side surface of the second lens element. Furthermore, the following condition can be satisfied: 0.15<R4/R1<0.65.
When a curvature radius of the object-side surface of the third lens element is R5, and a curvature radius of the image-side surface of the third lens element is R6, the following condition is satisfied: −0.20< (R5+R6)/(R5−R6)<2.00. Therefore, the curvature radius of the object-side surface of the third lens element and the curvature radius of the image-side surface of the third lens element can be effectively balanced, it is favorable for enhancing light convergence ability of the imaging light so as to improve the image curvature and spherical aberration. Furthermore, the following condition can be satisfied: −0.10< (R5+R6)/(R5−R6)<1.25. Furthermore, the following condition can be satisfied: 0< (R5+R6)/(R5−R6)<1.50.
When a central thickness of the first lens element is CT1, and an axial distance between the second lens element and the third lens element of the optical photographing lens assembly at the object distance being infinite is T23L, the following condition is satisfied: 0.10<CT1/T23L<1.70. Therefore, it is favorable for maintaining the space arrangement of the first lens element group by adjusting the central thickness of the first lens element and the axial distance between the second lens element and the third lens element. Furthermore, the following condition can be satisfied: 0.35<CT1/T23L<1.70. Furthermore, the following condition can be satisfied: 0.42<CT1/T23L<1.55. Furthermore, the following condition can be satisfied: 0.42<CT1/T23L<1.50.
When an axial distance between an image-side surface of a lens element closet to the image side and an image surface of the optical photographing lens assembly at the object distance being infinite is BLL, and a maximum image height of the optical photographing lens assembly is ImgH, the following condition is satisfied: 0.50<BLL/ImgH<1.10. Therefore, it is favorable for maintaining the proper back focal length and enlarging the image surface. Furthermore, the following condition can be satisfied: 0.60<BLL/ImgH<1.00.
When a displacement in parallel with an optical axis from an axial vertex on the object-side surface of the third lens element to a maximum effective radius position on the object-side surface of the third lens element of the optical photographing lens assembly at the object distance being infinite is Sag3R1L, and the central thickness of the third lens element is CT3, the following condition is satisfied: 0<|Sag3R1L|/CT3<0.30. Therefore, it is favorable for effectively controlling the deflection angle of the light incident from the peripheral area of the object side of the third lens element by balancing the curvature of the surface shape on the peripheral area of the object-side surface of the third lens element. Furthermore, the following condition can be satisfied: 0.01<|Sag3R1L|/CT3<0.20.
When a displacement in parallel with the optical axis from an axial vertex on the image-side surface of the sixth lens element to a maximum effective radius position on the image-side surface of the sixth lens element of the optical photographing lens assembly at the object distance being infinite is Sag6R2L, and a central thickness of the sixth lens element is CT6, the following condition is satisfied: 0.60<|Sag6R2L|/CT6<5.00. Therefore, it is favorable for enlarging the image surface and correcting aberrations, such as distortion, by. Balancing the curvature of the surface shape on the peripheral area of the image-side surface of the sixth lens element. Furthermore, the following condition can be satisfied: 0.75<|Sag6R2L|/CT6<3.00.
When a maximum effective radius position of the object-side surface of the first lens element of the optical photographing lens assembly at the object distance being infinite is Y1R1L, and a maximum effective radius position of the image-side surface of the sixth lens element of the optical photographing lens assembly at the object distance being infinite is Y6R2L, the following condition is satisfied: 0.80<Y1R1L/Y6R2L<1.30. Therefore, the light traveling direction can be adjusted by balancing the effective radius position of the object-side surface of the first lens element and the effective radius position of the image-side surface of the sixth lens element, so that it is favorable for compressing the outer diameter and enlarging the image surface. Furthermore, the following condition can be satisfied: 0.90<Y1R1L/Y6R2L<1.20.
The optical photographing lens assembly can further include a reflective element, which is favorable for providing different light traveling directions in the optical photographing lens assembly so that the arrangement of the optical photographing lens assembly can be more flexible, and the limitation of mechanism can be reduced and the compactness of the optical photographing lens assembly can be obtained. Furthermore, the reflective element can be disposed between an imaged object and the first lens element. Therefore, it is favorable for providing the advantage of capturing long distance scenery and also favorable for reducing the specification restriction of thickness of the electronic device.
When the focal length of the third lens element is f3, and a focal length of the fifth lens element is f5, the following condition is satisfied: 0.01<|f3/f5|<0.80. Therefore, it is favorable for controlling the light traveling direction by adjusting the ratio of the refractive power of the third lens element and the fifth lens element, so that the incident angle of the light on the image surface can be decreased. Furthermore, the following condition can be satisfied: 0.03<|f3/f5|<0.55.
When a central thickness of the third lens element is CT3, the central thickness of the fourth lens element is CT4, the central thickness of the fifth lens element is CT5, and an axial distance between the fourth lens element and the fifth lens element of the optical photographing lens assembly at the object distance being infinite is T45L, the following condition is satisfied: 0.80<CT3/(CT4+T45L+CT5)<3.00. Therefore, it is favorable for correcting off-axis aberration and maintaining low chromatic aberration by arranging the ratio between the central thickness of the third lens element and the axial distance between the fourth lens element and the fifth lens element. Furthermore, the following condition can be satisfied: 1.00<CT3/(CT4+T45L+CT5)<2.50.
When the axial distance between the second lens element and the third lens element of the optical photographing lens assembly at the object distance being infinite is T23L, and an axial distance between the fourth lens element and the fifth lens element of the optical photographing lens assembly at the object distance being infinite is T45L, the following condition is satisfied: 0.01<T45L/T23L<0.50. Therefore, it is favorable for compressing the volume and correcting spherical aberration by balancing the axial distance between the second lens element and the third lens element and the axial distance between the fourth lens element and the fifth lens element. Furthermore, the following condition can be satisfied: 0.03<T45L/T23L<0.45.
When an Abbe number of the fourth lens element is V4, and an Abbe number of the sixth lens element is V6, the following condition is satisfied: 90.0<V4+V6<130.0. Therefore, it is favorable for preventing the image overlapping under different object distances by adjusting the material of the fourth lens element and the sixth lens element. Furthermore, the following condition can be satisfied: 100.0<V4+V6<120.0.
When an axial distance between the first lens element group and the second lens element group of the optical photographing lens assembly at the object distance being infinite is TG1G2L, and an axial distance between the first lens element group and the second lens element group of the optical photographing lens assembly at the object distance being macro is TG1G2S, the following condition is satisfied: 2.20< (TG1G2S−TG1G2L)/TG1G2L<6.00. Therefore, it is favorable for capturing the object under smaller object distance and satisfying the specification requirement of the image sensor with large size by enlarging moving amount of the second lens element group during focusing movement. Furthermore, the following condition can be satisfied: 2.50< (TG1G2S−TG1G2L)/TG1G2L<5.00.
When an axial distance between an image-side surface of a lens element closet to the image side and an image surface of the optical photographing lens assembly at the object distance being infinite is BLL, and an axial distance between an image-side surface of a lens element closet to the image side and an image surface of the optical photographing lens assembly at the object distance being macro is BLS, the following condition is satisfied: 1.50<BLL/BLS<3.00. Therefore, it is favorable for decreasing the incident angle of light on the image surface and increasing the illumination by balancing the moving amount of the second lens element group via the back focal length during focusing movement. Furthermore, the following condition can be satisfied: 1.60<BLL/BLS<2.60.
When a central thickness of the sixth lens element is CT6, and the axial distance between the fifth lens element and the sixth lens element of the optical photographing lens assembly at the object distance being infinite is T56L, the following condition is satisfied: 0.01<CT6/T56L<1.00. Therefore, it is favorable for increasing the efficiency of space utilization by balancing the axial distance between the fifth lens element and the sixth lens element and the central thickness of the sixth lens element. Furthermore, the following condition can be satisfied: 0.05<CT6/T56L<0.80.
Moreover, a barrel or a lens element of the optical photographing lens assembly can be cut for reducing the length of single axis, so that the volume of the optical photographing lens assembly can be decreased so as to reach the compactness.
Each of the aforementioned features of the optical photographing lens assembly can be utilized in various combinations for achieving the corresponding effects.
According to the optical photographing lens assembly of the present disclosure, the lens elements thereof can be made of glass or plastic materials. When the lens elements are made of glass materials, the distribution of the refractive power of the optical photographing lens assembly may be more flexible to design. The glass lens element can either be made by grinding or molding. When the lens elements are made of plastic materials, manufacturing costs can be effectively reduced. Furthermore, surfaces of each lens element can be arranged to be aspheric (ASP), since the aspheric surface of the lens element is easy to form a shape other than a spherical surface so as to have more controllable variables for eliminating aberrations thereof, and to further decrease the required amount of lens elements in the optical photographing lens assembly. Therefore, the total track length of the optical photographing lens assembly can also be reduced. The aspheric surfaces may be formed by a plastic injection molding method, a glass molding method or other manufacturing methods.
According to the optical photographing lens assembly of the present disclosure, additives can be selectively added into any one (or more) material of the lens elements so as to change the transmittance of the lens element in a particular wavelength range. Therefore, the stray light and chromatic aberration can be reduced. For example, the additives can have the absorption ability for light in a wavelength range of 600 nm-800 nm in the optical photographing lens assembly so as to reduce extra red light or infrared light, or the additives can have the absorption ability for light in a wavelength range of 350 nm-450 nm in the optical photographing lens assembly so as to reduce blue light or ultraviolet light. Therefore, additives can prevent the image from interfering by light in a particular wavelength range. Furthermore, the additives can be homogeneously mixed with the plastic material, and the lens elements can be made by the injection molding method. Moreover, the additives can be coated on the lens surfaces to provide the aforementioned effects.
According to the optical photographing lens assembly of the present disclosure, when a surface of the lens element is aspheric, it indicates that entire optical effective region of the surface of the lens element or a part thereof is aspheric.
According to the optical photographing lens assembly of the present disclosure, when the lens elements have surfaces being convex and the convex surface position is not defined, it indicates that the aforementioned surfaces of the lens elements can be convex in the paraxial region thereof. When the lens elements have surfaces being concave and the concave surface position is not been defined, it indicates that the aforementioned surfaces of the lens elements can be concave in the paraxial region thereof. In the optical photographing lens assembly of the present disclosure, if the lens element has positive refractive power or negative refractive power, or the focal length of the lens element, all can be referred to the refractive power, or the focal length, in the paraxial region of the lens element.
According to the optical photographing lens assembly of the present disclosure, a critical point is a non-axial point of the lens surface where its tangent is perpendicular to the optical axis; an inflection point is a point on a lens surface with a curvature changing from positive to negative or from negative to positive.
According to the optical photographing lens assembly of the present disclosure, the image surface thereof, based on the corresponding image sensor, can be flat or curved. In particular, the image surface can be a concave curved surface facing towards the object side. Furthermore, the optical photographing lens assembly of the present disclosure can selectively include at least one image correcting element (such as a field flattener) inserted between the lens element closest to the image surface and the image surface, thus the effect of correcting image aberrations (such as field curvature) can be achieved. The optical properties of the aforementioned image correcting element, such as curvature, thickness, refractive index, position, surface shape (convex or concave, spherical or aspheric, diffraction surface and Fresnel surface, etc.) can be adjusted corresponding to the demands of the imaging apparatus. Generally, a preferred configuration of the image correcting element is to dispose a thin plano-concave element having a concave surface toward the object side on the position closed to the image surface.
According to the optical photographing lens assembly of the present disclosure, the optical photographing lens assembly can further include at least one reflective element, such as a prism or a reflective mirror, etc., so that the space arrangement can be more flexible. The reflective element disposed between an imaged object and the image surface, so that it is favorable for reducing the volume of the optical photographing lens assembly. The light path can be reflected at least once via the reflective element, wherein an angle between a reflective surface (such as a normal line thereof) and the optical axis can be, but not limited to 45 degrees, which can be other angle according to the requirements, such as space arrangement. The angle between the optical axis vector close to the object side and the optical axis vector close to the image side can be any angle, and will not be limited to 0 degrees, 90 degrees or 180 degrees. Further, in order to reduce the occupied volume or others reasons, the length and the width of the reflective mirror can be unequal, and the length, the width and the height of the prism can be unequal to each other. The surface shape of the reflective element can be planar, aspheric or a freeform surface, etc., based on the optical design or others requirements, and will not be limited thereto. Examples of different types and arrangements of reflective elements are described below with reference to the drawings, but the present disclosure will not be limited thereto.
Furthermore, according to the optical photographing lens assembly of the present disclosure, the optical photographing lens assembly can include at least one stop, such as an aperture stop, a glare stop or a field stop, for eliminating stray light and thereby improving image resolution thereof.
According to the optical photographing lens assembly of the present disclosure, the aperture stop can be configured as a front stop or a middle stop, wherein the front stop indicates that the aperture stop is disposed between an object and the first lens element, and the middle stop indicates that the aperture stop is disposed between the first lens element and the image surface. When the aperture stop is a front stop, a longer distance between an exit pupil of the optical photographing lens assembly and the image surface can be obtained, and thereby obtains a telecentric effect and improves the image-sensing efficiency of the image sensor, such as CCD or CMOS. The middle stop is favorable for enlarging the field of view of the optical photographing lens assembly and thereby provides a wider field of view for the same.
According to the optical photographing lens assembly of the present disclosure, an aperture control unit can be properly configured. The aperture control unit can be a mechanical element or a light controlling element, and the dimension and the shape of the aperture control unit can be electrically controlled. The mechanical element can include a moveable component such a blade group or a shielding plate. The light controlling element can include a screen component such as a light filter, an electrochromic material, a liquid crystal layer or the like. The amount of incoming light or the exposure time of the image can be controlled by the aperture control unit to enhance the image moderation ability. In addition, the aperture control unit can be the aperture stop of the optical photographing lens assembly according to the present disclosure, so as to moderate the image quality by changing f-number such as changing the depth of field or the exposure speed.
The optical photographing lens assembly according to the present disclosure can include at least one optical lens element, an optical element or a carrier. A low reflection layer is disposed on at least one surface of at least one optical lens element, the optical element or the carrier, wherein the low reflection layer is favorable for effectively reducing the stray light formed by the reflection of light on the interface. The low reflection layer can be disposed on the non-optically effective area of the object-side surface or the image-side surface of the optical lens element, or can be disposed on the connecting surface between the object-side surface or the image-side surface; wherein the optical element can be at least one of a light blocking element, an annular spacer element, a barrel element, a cover glass, a blue glass, a filter or a color filter, a light path folding element, a prism or a mirror, etc.; wherein the carrier can be a lens group lens mount, a micro lens disposed on the image sensor, the peripheral of the image sensor substrate or a glass sheet for protecting the image sensor, etc.
According to the optical photographing lens assembly of the present disclosure, the optical photographing lens assembly of the present disclosure can be applied to 3D (three-dimensional) image capturing applications, in products such as digital cameras, mobile devices, digital tablets, smart TVs, surveillance systems, motion sensing input devices, driving recording systems, rearview camera systems, wearable devices, unmanned aerial vehicles, and other electronic imaging products.
According to the present disclosure, an imaging apparatus including the aforementioned optical photographing lens assembly and an image sensor is provided, wherein the image sensor is disposed on the image surface of the optical photographing lens assembly. By the arrangement of the refractive power, thicknesses and locations in the optical photographing lens assembly, it is favorable for strengthening the convergence ability of the lens elements on the image side, reducing the total track length of the optical photographing lens assembly and increasing the efficiency of space utilization. Moreover, the imaging apparatus can further include a barrel member, a holder member or a combination thereof.
According to the present disclosure, an electronic device including the aforementioned imaging apparatus is provided. Therefore, the image quality can be increased. Moreover, the electronic device can further include a control unit, a display, a storage unit, a random-access memory unit (RAM) or a combination thereof.
According to the above description of the present disclosure, the following specific embodiments are provided for further explanation.
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore,
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element E2 includes one inflection point IP (as shown in
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point IP (as shown in
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point IP (as shown in
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes two inflection points IP (as shown in
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point IP (as shown in
According to the 1st embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 1st embodiment, the reflective element E8 is a prism, which is made of glass material. Furthermore,
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The equation of the aspheric surface profiles of the aforementioned lens elements of the 1st embodiment is expressed as follows:
where,
The detailed optical data of the 1st embodiment are shown in Table 1A and the aspheric surface data are shown in Table 1B below.
In Table 1A, the curvature radius, the thickness and the focal length are shown in millimeters (mm). Surface numbers 0-21 represent the surfaces sequentially arranged from the object side to the image side along the optical axis. In Table 1B, k represents the conic coefficient of the equation of the aspheric surface profiles. A4-A30 represent the aspheric coefficients ranging from the 4th order to the 30th order. The tables presented below for each embodiment correspond to schematic parameter and aberration curves of each embodiment, and term definitions of the tables are the same as those in Table 1A and Table 1B of the 1st embodiment. Therefore, an explanation in this regard will not be provided again.
In the optical photographing lens assembly at the 1st mode in
In the optical photographing lens assembly at the 2nd mode in
In the optical photographing lens assembly according to the 1st embodiment, when an axial distance between the object-side surface of the first lens element E1 and the image surface IMG of the optical photographing lens assembly at the object distance being infinite is TLL, and an axial distance between the object-side surface of the first lens element E1 and the image surface IMG of the optical photographing lens assembly at the object distance being macro is TLS, the following conditions are satisfied: TLL/TLS=1.00.
In the optical photographing lens assembly according to the 1st embodiment, when an axial distance between an image-side surface of a lens element closet to the image side (that is, the sixth lens element E6) and the image surface IMG of the optical photographing lens assembly at the object distance being infinite is BLL, and an axial distance between the image-side surface of the lens element closet to the image side (that is, the sixth lens element E6) and the image surface IMG of the optical photographing lens assembly at the object distance being macro is BLS, the following condition is satisfied: BLL/BLS=2.42.
In the optical photographing lens assembly according to the 1st embodiment, when an axial distance between the first lens element group and the second lens element group of the optical photographing lens assembly at the object distance being infinite is TG1G2L, and an axial distance between the first lens element group and the second lens element group of the optical photographing lens assembly at the object distance being macro is TG1G2S, the following condition is satisfied: (TG1G2S−TG1G2L)/TG1G2L=3.33.
In the optical photographing lens assembly according to the 1st embodiment, when the axial distance between the image-side surface of the lens element closet to the image side (that is, the sixth lens element E6) and the image surface IMG of the optical photographing lens assembly at the object distance being infinite is BLL, and a maximum image height of the optical photographing lens assembly is ImgH, the following condition is satisfied: BLL/ImgH=0.90.
In the optical photographing lens assembly according to the 1st embodiment, when a focal length of the third lens element E3 is f3, a focal length of the fifth lens element E5 is f5, and a focal length of the sixth lens element E6 is f6, the following conditions are satisfied: |f3/f6|=0.46; and |f3/f5|=0.15.
In the optical photographing lens assembly according to the 1st embodiment, when a focal length of the second lens element E2 is f2, a curvature radius of the object-side surface of the second lens element E2 is R3, and a curvature radius of the image-side surface of the second lens element E2 is R4, the following condition is satisfied: |f2/R3|+|f2/R4|=9.47.
In the optical photographing lens assembly according to the 1st embodiment, when the axial distance between the object-side surface of the first lens element E1 and the image surface IMG of the optical photographing lens assembly at the object distance being infinite is TLL, an axial distance between the object-side surface of the first lens element E1 and the image-side surface of the third lens element E3 of the optical photographing lens assembly at the object distance being infinite is Dr1r6L, and an axial distance between the object-side surface of the fourth lens element E4 and the image-side surface of the sixth lens element E6 of the optical photographing lens assembly at the object distance being infinite is Dr7r12L, the following conditions are satisfied: TLL/Dr1r6L=2.23; and Dr1r6L/Dr7r12L=1.68.
In the optical photographing lens assembly according to the 1st embodiment, when a central thickness of the first lens element E1 is CT1, a central thickness of the second lens element E2 is CT2, a central thickness of the third lens element E3 is CT3, and an axial distance between the second lens element E2 and the third lens element E3 of the optical photographing lens assembly at the object distance being infinite is T23L, the following conditions are satisfied: CT1/T23L=0.59; CT1/CT3=0.67; and CT2/CT3=0.34.
In the optical photographing lens assembly according to the 1st embodiment, when the central thickness of the third lens element E3 is CT3, the central thickness of the fourth lens element E4 is CT4, the central thickness of the fifth lens element E5 is CT5, and an axial distance between the fourth lens element E4 and the fifth lens element E5 of the optical photographing lens assembly at the object distance being infinite is T45L, the following condition is satisfied: CT3/(CT4+T45L+CT5)=1.93.
In the optical photographing lens assembly according to the 1st embodiment, when the central thickness of the fourth lens element E4 is CT4, and an axial distance between the second lens element E2 and the third lens element E3 of the optical photographing lens assembly at the object distance being infinite is T23L, the following condition is satisfied: CT4/T23L=0.20.
In the optical photographing lens assembly according to the 1st embodiment, when the central thickness of the fourth lens element E4 is CT4, the central thickness of the fifth lens element E5 is CT5, and an axial distance between the fifth lens element E5 and the sixth lens element E6 of the optical photographing lens assembly at the object distance being infinite is T56L, the following condition is satisfied: (CT4+CT5)/T56L=0.36.
In the optical photographing lens assembly according to the 1st embodiment, when a central thickness of the sixth lens element E6 is CT6, and the axial distance between the fifth lens element E5 and the sixth lens element E6 of the optical photographing lens assembly at the object distance being infinite is T56L, the following condition is satisfied: CT6/T56L=0.14.
In the optical photographing lens assembly according to the 1st embodiment, when the axial distance between the second lens element E2 and the third lens element E3 of the optical photographing lens assembly at the object distance being infinite is T23L, and the axial distance between the fourth lens element E4 and the fifth lens element E5 of the optical photographing lens assembly at the object distance being infinite is T45L, the following condition is satisfied: T45L/T23L=0.08.
In the optical photographing lens assembly according to the 1st embodiment, when a curvature radius of the image-side surface of the first lens element E1 is R2, the curvature radius of the object-side surface of the second lens element E2 is R3, and the curvature radius of the image-side surface of the second lens element E2 is R4, the following conditions are satisfied: (R2+R3)/(R2−R3)=0.57; and (R3−R4)/(R3+R4)=0.22.
In the optical photographing lens assembly according to the 1st embodiment, when a curvature radius of the object-side surface of the third lens element E3 is R5, and a curvature radius of the image-side surface of the third lens element E3 is R6, the following condition is satisfied: (R5+R6)/(R5−R6)=0.48.
In the optical photographing lens assembly according to the 1st embodiment, when a curvature radius of the object-side surface of the first lens element E1 is R1, and the curvature radius of the image-side surface of the second lens element E2 is R4, the following condition is satisfied: R4/R1=0.24.
In the optical photographing lens assembly according to the 1st embodiment, when an Abbe number of the fourth lens element E4 is V4, and an Abbe number of the sixth lens element E6 is V6, the following condition is satisfied: V4+V6=112.0.
In the optical photographing lens assembly according to the 1st embodiment, when a displacement in parallel with the optical axis from an axial vertex on the image-side surface of the sixth lens element E6 to a maximum effective radius position on the image-side surface of the sixth lens element E6 of the optical photographing lens assembly at the object distance being infinite is Sag6R2L (as shown in
In the optical photographing lens assembly according to the 1st embodiment, when a maximum effective radius position of the object-side surface of the first lens element E1 of the optical photographing lens assembly at the object distance being infinite is Y1R1L, and a maximum effective radius position of the image-side surface of the sixth lens element E6 of the optical photographing lens assembly at the object distance being infinite is Y6R2L, the following condition is satisfied: Y1R1L/Y6R2L=1.13.
Moreover,
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the first lens element includes one inflection point, and the image-side surface of the first lens element includes one inflection point.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes two inflection points.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point and a concave critical point.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element includes two inflection points and a concave critical point, and the image-side surface of the fifth lens element E5 includes two inflection points and one convex critical point.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point, and the image-side surface of the sixth lens element E6 includes one inflection point.
According to the 2nd embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 2nd embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 2nd embodiment are shown in Table 2A and the aspheric surface data are shown in Table 2B below.
Please refer to Table 2A, the object distances and the data of DO, D1 and D2 in Table 2A of the 2nd embodiment at the 1st mode and the 2nd mode are listed in Table 2C as below.
In the 2nd embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 2nd embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 2A, Table 2B and Table 2C as the following values and satisfy the following conditions in Table 2D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the image-side surface of the first lens element E1 includes two inflection points.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes one inflection point.
The third lens element E3 with positive refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point.
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element includes one inflection point and a concave critical point, and the image-side surface of the fifth lens element E5 includes two inflection points.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point, and the image-side surface of the sixth lens element E6 includes one inflection point.
According to the 3rd embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 3rd embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 3rd embodiment are shown in Table 3A and the aspheric surface data are shown in Table 3B below.
Please refer to Table 3A, the object distances and the data of DO, D1 and D2 in Table 3A of the 3rd embodiment at the 1st mode and the 2nd mode are listed in Table 3C as below.
In the 3rd embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 3rd embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 3A, Table 3B and Table 3C as the following values and satisfy the following conditions in Table 3D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the first lens element E1 includes one inflection point.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes two inflection points.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes two inflection points.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes two inflection points.
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element includes two inflection points and a concave critical point, and the image-side surface of the fifth lens element E5 includes two inflection points.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point, and the image-side surface of the sixth lens element E6 includes one inflection point.
According to the 4th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 4th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 4th embodiment are shown in Table 4A and the aspheric surface data are shown in Table 4B below.
Please refer to Table 4A, the object distances and the data of DO, D1 and D2 in Table 4A of the 4th embodiment at the 1st mode and the 2nd mode are listed in Table 4C as below.
In the 4th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 4th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 4A, Table 4B and Table 4C as the following values and satisfy the following conditions in Table 4D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the first lens element E1 includes one inflection point, and the image-side surface of the first lens element E1 includes two inflection points.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes one inflection point and a concave critical point, and the image-side surface of the second lens element E2 includes one inflection point.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point.
The fourth lens element E4 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric.
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes two inflection points and a concave critical point, and the image-side surface of the fifth lens element E5 includes two inflection points and a convex critical point.
The sixth lens element E6 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes two inflection points, a convex critical point and a concave critical point, and the image-side surface of the sixth lens element E6 includes two inflection points and a convex critical point.
According to the 5th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 5th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 5th embodiment are shown in Table 5A and the aspheric surface data are shown in Table 5B below.
Please refer to Table 5A, the object distances and the data of DO, D1 and D2 in Table 5A of the 5th embodiment at the 1st mode and the 2nd mode are listed in Table 5C as below.
In the 5th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 5th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 5A, Table 5B and Table 5C as the following values and satisfy the following conditions in Table 5D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the image-side surface of the first lens element E1 includes two inflection points.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes one inflection point.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with positive refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes one inflection point, and the image-side surface of the fifth lens element E5 includes one inflection point.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes two inflection points, and the image-side surface of the sixth lens element E6 includes two inflection points.
According to the 6th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 6th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 6th embodiment are shown in Table 6A and the aspheric surface data are shown in Table 6B below.
Please refer to Table 6A, the object distances and the data of DO, D1 and D2 in Table 6A of the 6th embodiment at the 1st mode and the 2nd mode are listed in Table 6C as below.
In the 6th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 6th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 6A, Table 6B and Table 6C as the following values and satisfy the following conditions in Table 6D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the image-side surface of the first lens element E1 includes two inflection points and a concave critical point.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes one inflection point.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes two inflection points and a concave critical point.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes three inflection points, and the image-side surface of the fifth lens element E5 includes three inflection points.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point, and the image-side surface of the sixth lens element E6 includes two inflection points.
According to the 7th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 7th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 7th embodiment are shown in Table 7A and the aspheric surface data are shown in Table 7B below.
Please refer to Table 7A, the object distances and the data of DO, D1 and D2 in Table 7A of the 7th embodiment at the 1st mode and the 2nd mode are listed in Table 7C as below.
In the 7th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 7th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 7A, Table 7B and Table 7C as the following values and satisfy the following conditions in Table 7D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the image-side surface of the first lens element E1 includes two inflection points.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element includes one inflection point and a concave critical point, and the image-side surface of the second lens element E2 includes two inflection points.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes two inflection points and a concave critical point.
The fourth lens element E4 with positive refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes one inflection point and a concave critical point, and the image-side surface of the fifth lens element E5 includes one inflection point.
The sixth lens element E6 with positive refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point.
According to the 8th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 8th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 8th embodiment are shown in Table 8A and the aspheric surface data are shown in Table 8B below.
Please refer to Table 8A, the object distances and the data of DO, D1 and D2 in Table 8A of the 8th embodiment at the 1st mode and the 2nd mode are listed in Table 8C as below.
In the 8th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 8th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 8A, Table 8B and Table 8C as the following values and satisfy the following conditions in Table 8D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the first lens element E1 includes one inflection point, and the image-side surface of the first lens element E1 includes two inflection points.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element E2 includes one inflection point.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point and a concave critical point.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes two inflection points and a concave critical point, and the image-side surface of the fifth lens element E5 includes four inflection points and a convex critical point.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point.
According to the 9th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 9th embodiment, the reflective element E8 is a prism, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 9th embodiment are shown in Table 9A and the aspheric surface data are shown in Table 9B below.
Please refer to Table 9A, the object distances and the data of DO, D1 and D2 in Table 9A of the 9th embodiment at the 1st mode and the 2nd mode are listed in Table 9C as below.
In the 9th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 9th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 9A, Table 9B and Table 9C as the following values and satisfy the following conditions in Table 9D:
The first lens element E1 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The first lens element E1 is made of glass material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the image-side surface of the first lens element E1 includes one inflection point.
The second lens element E2 with negative refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The second lens element E2 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the second lens element E2 includes one inflection point and a concave critical point, and the image-side surface of the second lens element E2 includes two inflection points.
The third lens element E3 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The third lens element E3 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the third lens element E3 includes one inflection point and a concave critical point.
The fourth lens element E4 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The fourth lens element E4 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fourth lens element E4 includes one inflection point and a convex critical point, and the image-side surface of the fourth lens element E4 includes one inflection point and a concave critical point.
The fifth lens element E5 with positive refractive power has an object-side surface being convex in a paraxial region thereof and an image-side surface being concave in a paraxial region thereof. The fifth lens element E5 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the fifth lens element E5 includes three inflection points, and the image-side surface of the fifth lens element E5 includes three inflection points and a convex critical point.
The sixth lens element E6 with negative refractive power has an object-side surface being concave in a paraxial region thereof and an image-side surface being convex in a paraxial region thereof. The sixth lens element E6 is made of plastic material, and has the object-side surface and the image-side surface being both aspheric. Furthermore, the object-side surface of the sixth lens element E6 includes one inflection point, and the image-side surface of the sixth lens element E6 includes two inflection points.
According to the 10th embodiment, the reflective element E8 is disposed between the imaged object and the first lens element E1, that is, the reflective element E8 is at the most object side of the optical photographing lens assembly, wherein, according to the 10th embodiment, the reflective element E8 is a reflective mirror, which is made of glass material.
The filter E7 is made of glass material, which is located between the sixth lens element E6 and the image surface IMG in order, and will not affect the focal length of the optical photographing lens assembly.
The detailed optical data of the 10th embodiment are shown in Table 10A and the aspheric surface data are shown in Table 10B below.
Please refer to Table 10A, the object distances and the data of DO, D1 and D2 in Table 10A of the 10th embodiment at the 1st mode and the 2nd mode are listed in Table 10C as below.
In the 10th embodiment, the equation of the aspheric surface profiles of the aforementioned lens elements is the same as the equation of the 1st embodiment. Also, the definitions of these parameters shown in the following table are the same as those stated in the 1st embodiment with corresponding values for the 10th embodiment, so an explanation in this regard will not be provided again.
Moreover, these parameters can be calculated from Table 10A, Table 10B and Table 10C as the following values and satisfy the following conditions in Table 10D:
The driving apparatus 102 can be an auto-focus module, which can be driven by driving systems, such as voice coil motors (VCM), micro electro-mechanical systems (MEMS), piezoelectric systems, and shape memory alloys etc. The optical photographing lens assembly can obtain a favorable imaging position by the driving apparatus 102 so as to capture clear images when the imaged object is disposed at different object distances.
The imaging apparatus 100 can include the image sensor 103 located on the image surface of the optical photographing lens assembly, such as CMOS and CCD, with superior photosensitivity and low noise. Thus, it is favorable for providing realistic images with high definition image quality thereof. Moreover, the imaging apparatus 100 can further include an image stabilization module 104, which can be a kinetic energy sensor, such as an accelerometer, a gyro sensor, and a Hall Effect sensor. In the 11th embodiment, the image stabilization module 104 is a gyro sensor, but is not limited thereto. Therefore, the variation of different axial directions of the optical photographing lens assembly can adjusted so as to compensate the image blur generated by motion at the moment of exposure, and it is further favorable for enhancing the image quality while photographing in motion and low light situation. Furthermore, advanced image compensation functions, such as optical image stabilizations (OIS) and electronic image stabilizations (EIS) etc., can be provided.
Each of the imaging apparatuses 100, 110, 120, 130, 140 according to the 12th embodiment can include the optical photographing lens assembly of the present disclosure, and can be the same or similar to the imaging apparatus 100 according to the aforementioned 11th embodiment, and will not describe again herein. In detail, according to the 12th embodiment, the imaging apparatuses 100, 110 can be wide angle imaging apparatus and ultra-wide angle imaging apparatus, respectively. The imaging apparatuses 120, 130, 140 can be wide angle imaging apparatus, ultra-wide angle imaging apparatus and TOF (Time-Of-Flight) module, respectively, or can be others imaging apparatuses, which will not be limited thereto. Further, the connecting relationships between each of the imaging apparatuses 110, 120, 130, 140 and other elements can be the same as the imaging apparatus 100 in
The electronic device 300 according to the 13th embodiment can include the same or similar elements to that according to the 12th embodiment, and each of the imaging apparatuses 310, 320, 330 according to the 13th embodiment can have a configuration which is the same or similar to that according to the 12th embodiment, and will not describe again herein. In detail, according to the 13th embodiment, each of the imaging apparatuses 310, 320, 330 can include the optical photographing lens assembly of the present disclosure, and can be the same or similar to the imaging apparatus 100 according to the aforementioned 11th embodiment, and will not describe again herein. In detail, the imaging apparatus 310 can be ultra-wide angle imaging apparatus, the imaging apparatus 320 can be wide angle imaging apparatus, the imaging apparatus 330 can be telephoto imaging apparatus (which can include light path folding element), or can be adaptively adjusted according to the type of the imaging apparatuses, which will not be limited to the arrangement.
The electronic device 400 according to the 14th embodiment can include the same or similar elements to that according to the 12th embodiment, and each of the imaging apparatuses 410, 420, 430, 440, 450, 460, 470, 480, 490 and the flash module 401 can have a configuration which is the same or similar to that according to the 12th embodiment, and will not describe again herein. In detail, according to the 14th embodiment, each of the imaging apparatuses 410, 420, 430, 440, 450, 460, 470, 480, 490 can include the optical photographing lens assembly of the present disclosure, and can be the same or similar to the imaging apparatus 100 according to the aforementioned 11th embodiment, and will not describe again herein.
In detail, each of the imaging apparatuses 410, 420 can be ultra-wide angle imaging apparatus, each of the imaging apparatuses 430, 440 can be wide angle imaging apparatus, each of the imaging apparatuses 450, 460 can be telephoto imaging apparatus, each of the imaging apparatuses 470, 480 can be telephoto imaging apparatus (which can include light path folding element), the imaging apparatus 490 can be TOF module, or can be adaptively adjusted according to the type of the imaging apparatuses, which will not be limited to the arrangement.
The electronic device 500 according to the 15th embodiment can include the same or similar elements to that according to the 12th embodiment, and each of the imaging apparatuses 510, 520, 530, 540 and the user interface 504 can have a configuration which is the same or similar to that according to the 12th embodiment, and will not describe again herein. In detail, according to the 15th embodiment, the imaging apparatus 510 corresponds to a non-circular opening located on an outer side of the electronic device 500 for capturing the image, and the imaging apparatuses 520, 530, 540 can be telephoto imaging apparatus, wide angle imaging apparatus and ultra-wide angle imaging apparatus, respectively, or can be adaptively adjusted according to the type of the imaging apparatuses, which will not be limited to the arrangement.
The foregoing description, for purpose of explanation, has been described with reference to specific embodiments. It is to be noted that Tables show different data of the different embodiments; however, the data of the different embodiments are obtained from experiments. The embodiments were chosen and described in order to best explain the principles of the disclosure and its practical applications, to thereby enable others skilled in the art to best utilize the disclosure and various embodiments with various modifications as are suited to the particular use contemplated. The embodiments depicted above and the appended drawings are exemplary and are not intended to be exhaustive or to limit the scope of the present disclosure to the precise forms disclosed. Many modifications and variations are possible in view of the above teachings.
| Number | Date | Country | Kind |
|---|---|---|---|
| 113100162 | Jan 2024 | TW | national |