This Non-provisional application claims priority under 35 U.S.C. §119(a) on Patent Application No(s). 104126632 filed in Taiwan, Republic of China on Aug. 14, 2015, and 105104128 filed in Taiwan, Republic of China on Feb. 5, 2016, the entire contents of which are hereby incorporated by reference.
Field of Invention
The present invention relates to a microscope module and a microscope device.
Related Art
The microscope is used for inspecting or measuring a very small sample, and can be applied to various research fields, such as the material science, fundamental biology, and biomedical science. In general, the microscopes include the transmission microscopes and reflective microscopes (also named optical microscopes). The transmission microscope is usually used to observe transparent or very thin samples. In practice, the light emitted from the light source can directly pass through the sample and then enter the microscope lenses for inspection of the bio tissue. In addition, the reflective microscope is usually used to observe opaque samples, such as metals or minerals, in the engineering or material sciences. In practice, the light source of the reflective microscope must pass through the polarizer to provide a polarized light, wherein a part of light is turned downward vertically and then projected on the surface of the sample through a lens. Afterwards, the surface of the sample reflects the light, which then passes through the object lens, polarizer, planar glass, and eyepiece in order, and enters the observer's eye. Accordingly, the observer can view the enlarged image of the surface of the sample.
As mentioned above, the reflective microscope includes the object lens, polarizer, planar glass, and eyepiece. In particular, the polarizer must be installed with a specific angle. Thus, the reflective microscope usually has a large volume. Besides, the reflective microscope has a complex structure and is hard to be carried to everywhere, so it is usually installed in the lab and operated by the professional operator. However, if the researcher can't inspect the samples until bringing the samples back the lab, many researches will be delayed, which causes the inconveniences of the operators. In other words, since the reflective microscope is usually applied to inspect the surface of the sample, it will sufficiently improve the utility if the reflective microscope is portable.
In view of the foregoing, an objective of the present invention is to provide a microscope module and a microscope device that can be portable. In this invention, the novel designs of the convex lens and the light traveling path from the illumination assembly can sufficiently reduce the volumes of the microscope module and microscope device, thereby achieving the purpose of the portable microscope module and microscope device.
To achieve the above objective, the present invention discloses a microscope module, which is cooperated with an image capturing module and includes a housing, a convex lens and a light guide element. The housing has a sample inspecting surface located on one side of the housing, which is opposite to the image capturing module. The convex lens is disposed in the housing, and a shortest distance between the sample inspecting surface and the convex lens ranges from 0.1 mm to 3.0 mm. The light guide element is disposed on an external portion of the housing. The light guide element has a light input portion and a light output portion. The light output portion is located between the image capturing module and the convex lens. The light input portion receives a light, and the light is outputted through the light output portion to the convex lens. The light enters the convex lens through a light input surface of the convex lens, leaves the convex lens through a light output surface of the convex lens, and then reaches the sample inspecting surface.
To achieve the above objective, the present invention also discloses a microscope module, which is cooperated with an image capturing module and includes a sample inspecting surface, a convex lens and a light guide element. The sample inspecting surface is located at one side of the microscope module opposite to the image capturing module. A shortest distance between the sample inspecting surface and the convex lens ranges from 0.1 mm to 3.0 mm. The light guide element, which is disposed adjacent to the convex lens, has a light input portion and a light output portion. The light output portion is located between the image capturing module and the convex lens. The light input portion receives a light, and the light is outputted through the light output portion to the convex lens. The light enters the convex lens through a light input surface of the convex lens, leaves the convex lens through a light output surface of the convex lens, and then reaches the sample inspecting surface.
To achieve the above objective, the present invention further discloses a microscope device, which includes a microscope module and an image capturing module connecting to the microscope module. The microscope module includes a housing, a convex lens and a light guide element. The housing has a sample inspecting surface located on one side of the housing opposite to the image capturing module. The convex lens is disposed in the housing, and a shortest distance between the sample inspecting surface and the convex lens ranges from 0.1 mm to 3.0 mm. The light guide element is disposed adjacent to the convex lens. The light guide element has a light input portion and a light output portion. The light output portion is located between the image capturing module and the convex lens. The light input portion receives a light. The light is then outputted through the light output portion to the convex lens, enters the convex lens through a light input surface of the convex lens, leaves the convex lens through a light output surface of the convex lens, and then reaches the sample inspecting surface.
In one embodiment, the light guide element has a bar structure or an annular structure.
In one embodiment, the light guide element has a groove having a first slant surface and a second slant surface, and an included angle between the first slant surface and the second slant surface ranges from 45 degrees to 120 degrees.
In one embodiment, the light input portion has a hemispherical structure or an arc structure.
In one embodiment, the light guide element has a light shielding layer.
In one embodiment, the light is provided from an environmental light or a flash of the image capturing module.
In one embodiment, the light input portion is disposed adjacent to a flash of the image capturing module, and the light is provided by the flash.
In one embodiment, the convex lens has a wing portion disposed at an edge of the convex lens.
In one embodiment, the microscope module further includes a connecting element for connecting the light guide element and the image capturing module.
In one embodiment, the connecting element includes an adhesive layer, a connecting clip, or a hinge.
In one embodiment, the connecting element includes a cover connecting to the image capturing module.
In one embodiment, the connecting element includes a screw or a locking unit for connecting to the image capturing module by screwing or locking.
In one embodiment, the microscope module further includes a backlight unit disposed at one side of the housing away from the image capturing module.
In one embodiment, the backlight unit has a sample accommodating portion located at one side of the backlight unit close to the sample inspecting surface.
In one embodiment, the microscope module further includes a transparent substrate disposed at one side of the housing away from the image capturing module, and the sample inspecting surface is located on an external surface of the transparent substrate.
In one embodiment, the microscope module further includes an adhesive element disposed on one side of the housing configured with the sample inspecting surface.
In one embodiment, the housing has a light output hole close to the sample inspecting surface, and a ratio of an aperture of the light output hole to a diameter of the convex lens ranges between 1 and 1.5.
In one embodiment, the microscope device further includes a wireless communication module for transmitting an image retrieved by the image capturing module to an external device.
In one embodiment, the microscope device further includes an electronic connecting line for connecting the microscope module to the image capturing module.
In one embodiment, the microscope device further includes a circuit board having a control chip.
In one embodiment, the microscope device further includes an adhesive element disposed on one side of the housing configured with the sample inspecting surface.
As mentioned above, the microscope module and device of the invention have novel designs of the convex lens and the light traveling path through the light guide element. In detailed, the light input portion of the light guide element can receive a light, and the light output portion of the light guide element is disposed between the image capturing module and the convex lens. Accordingly, the light can enter the convex lens through an input surface of the convex lens, leaves the convex lens through an output surface of the convex lens, and then reaches the sample inspecting surface, thereby providing the light for inspecting the sample so as to execute the microscope function. In addition, since the light guide element is disposed between the image capturing module and the convex lens, the volumes of the microscope module and microscope device can be sufficiently reduced, thereby achieving the purpose of the portable microscope module and microscope device.
The invention will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
The convex lens 12 of this embodiment is an aspherical lenticular lens. A shortest distance D between the sample inspecting surface 111a (or the sample inspecting surface 111b or 111c) and the surface of the convex lens 12 ranges from 0.1 mm to 3.0 mm, preferably from 0.3 mm to 2.0 mm, and more preferably from 0.5 mm to 1.2 mm. Accordingly, the magnification of the microscope module 1 is between 100× and 200×. In this embodiment, the convex lens 12 has a wing portion 121 disposed at an edge of the convex lens 12. In more detailed, the center portion of the convex lens 12 has the structure of an aspherical lenticular lens, and the edge of the convex lens 12 has the structure of flat wing portion 121. The wing portion 121 is nothing to do with the captured image, so the length of wing portion 121 is not limited.
In addition, the light guide element 13 is disposed on the external surface of the housing 11 and is located adjacent to the convex lens 12. In this embodiment, the light guide element 13 can guide the light from the light source outside the housing 11 to the convex lens 12. In more specific, as shown in
The light guide element 13 may have a bar structure or an annular structure. Since the light input portion 131 is used to receive the light from the flash 22, the position of the light input portion 131 is corresponding to the flash 22. The position of the light output portion 132 is corresponding the lens 21 of the image capturing module 2. Since the lens 21 and the flash 22 of the image capturing module 2 are usually departed with a distance, the light guide element 13 correspondingly has a bar structure. Of course, in other embodiments, if the light input portion 131 is configured to receive the environmental light, the light input portion 131 can be an annular structure. This invention is not limited.
Preferably, the light input portion 131 has a hemispherical structure or an arc structure for providing a wider surface to receive the light. Preferably, the light guide element 13 has a groove 133 having a first slant surface 134 and a second slant surface 135 (see
According to the above configuration, the light emitted from the light output portion 132 enters the convex lens 12 through a light input surface 122 of the convex lens 12, leaves the convex lens 12 through a light output surface 123 of the convex lens 12, and then reaches the sample inspecting surface 111a. The housing 11 includes a light output hole 112 and an opening 113. The light output hole 112 is disposed on one side of the housing 11 close to the sample inspecting surface 111a, and the opening 113 is located on another side of the housing 11 close to the image capturing module 2. In practice, the light emitted from the light output portion 132 enters the convex lens 12 through an input surface 122 of the convex lens 12, leaves the convex lens 12 through an output surface 123 of the convex lens 12, passes through the light output hole 112, and then reaches the sample inspecting surface 111a. After reflected from the sample inspecting surface 111a, the light enters the convex lens 12 through the light output surface 123 of the convex lens 12, leaves the convex lens 12 through the input surface 122 of the convex lens 12, passes through the opening 113, and then reaches the lens 21 of the image capturing module 2. Afterwards, the image capturing module 2 captures the enlarged sample image, and then the electronic device E can perform an image treatment process so as to display the sample image through the displaying unit of the electronic device E. Finally, the user can directly observe the enlarged sample image on the electronic device E.
As shown in
As shown in
A shortest distance D between the sample inspecting surface 111e and the convex lens 12e ranges from 0.6 mm to 3.0 mm. The light guide element 13e has a light input portion 131e and a light output portion 132e, which is disposed between the image capturing module 2e and the convex lens 12e. The light input portion 131e receives the light emitted from the flash 22e, and the light is outputted from the light output portion 132e to the convex lens 12e. Then, the light enters the convex lens 12e through an input surface 122e of the convex lens 12e, leaves the convex lens 12e through an output surface 123e of the convex lens 12e, and then reaches the sample inspecting surface 111e. The details of the relative components can be referred to the previous embodiment, so the descriptions thereof will be omitted.
The microscope module 1 and the electronic device E can be assembled, so that the image capturing module 2 of the electronic device E and the microscope module 1 can cooperate to form a microscope device and provide a microscope function. In one embodiment, the microscope module 1 is directly assembled with the image capturing module 2 to form the microscope device M.
Similarly, the housing 31 has a sample inspecting surface 311 disposed at one side of the housing 31 opposite to the image capturing module 4. The details of the sample inspecting surface 311 can be referred to the sample inspecting surface 111a (or 111b/111c) of the previous embodiment, so the description thereof will be omitted. Similarly, the shortest distance D between the sample inspecting surface 311 and the convex lens 32 ranges from 0.1 mm to 3.0 mm, preferably from 0.3 mm to 2.0 mm, and more preferably from 0.5 mm to 1.2 mm.
The light guide element 33 also has a light input portion 331 and a light output portion 332, which is located between the image capturing module 4 and the convex lens 32. The light input portion 331 receives a light, and the light is then outputted through the light output portion 332 to the convex lens 32. As mentioned above, the light enters the convex lens 32 through an input surface of the convex lens 32, leaves the convex lens 32 through an output surface of the convex lens 32, and then reaches the sample inspecting surface 311. After reflected from the sample inspecting surface 311, the light passes through the convex lens 32 and is then received by the image capturing module 4. Preferably, the microscope device M further includes a wireless communication module 6 and a circuit board 7. The circuit board 7 includes a control chip 71. The configuration of the wireless communication module 6 allows to transmit an image retrieved by the image capturing module 4 to an external device. In more specific, the control chip 71 controls the image capturing module 4 to capture the enlarged sample image, and then performs an image treatment process. Afterwards, the enlarged sample image is transmitted to the external device (e.g. the display unit of another electronic device) through the wireless communication module 6. Accordingly, the user can observe the sample image enlarged by the microscope module 3 in another electronic device. The detailed actions of the microscope module 3 and the image capturing module 4 can be referred to the previous embodiments, so the description thereof will be omitted.
In summary, the microscope module and device of the invention have novel designs of the convex lens and the light traveling path through the light guide element. In detailed, the light input portion of the light guide element can receive a light, and the light output portion of the light guide element is disposed between the image capturing module and the convex lens. Accordingly, the light can enter the convex lens through an input surface of the convex lens, leaves the convex lens through an output surface of the convex lens, and then reaches the sample inspecting surface, thereby providing the light for inspecting the sample so as to execute the microscope function. In addition, since the light guide element is disposed between the image capturing module and the convex lens, the volumes of the microscope module and microscope device can be sufficiently reduced, thereby achieving the purpose of the portable microscope module and microscope device.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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104126632 | Aug 2015 | TW | national |
105104128 | Feb 2016 | TW | national |