This application claims the priority benefit of China application serial no. 201810402606.6, filed on Apr. 28, 2018. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure is related to an optical system, an optical device and an operating method thereof, and particularly to an illumination system, a projection device and operating method thereof.
A projection device is a display device used for generating large-size frame, and has been continuously evolved and developed along with new technologies. The principle for projection device to form image is to convert an illumination beam generated by illumination system into an image beam through a light valve, and project the image beam onto a projection target (e.g., screen or wall surface) through a projection lens to form a projection frame.
Additionally, in order to meet the market's expectations for the brightness, color saturation, lifespan, being non-poisonous and environmental and so on, illumination system has been evolved from original ultra-high-performance lamp (UHP lamp) which belongs to ultra-high-voltage mercury lamp to light-emitting diode (LED), and now the most advanced laser diode (LD) light source is developed. However, in illumination system, typical method for generating red and green light with reasonable cost utilizes blue LD to excite the phosphor powder of fluorescence wheel to generate yellow green light. Then, the required red light or green light is filtered by using optical element to be put in use.
However, in typical illumination system configuration, considering that exciting phosphor powder requires the use of blue light source having shorter wavelength, the blue color exhibited in projection is shown as a purple-like color to human eyes, and the purple-like blue color affects visual effect.
The information disclosed in this “Description of Related Art” section is only for enhancement of understanding of the “Description of Related Art” section of the described technology and therefore it may contain information that does not form the prior art that is already known to a person of ordinary skill in the art. Further, the information disclosed in the “Description of Related Art” section does not mean that one or more problems to be resolved by one or more embodiments of the disclosure were acknowledged by a person of ordinary skill in the art.
An embodiment of the disclosure provides an illumination system, a projection device and an operating method thereof, capable of improving the problem of purple-like blue light beam.
The objectives and advantages of the disclosure may be further understood in the technical features disclosed in the disclosure.
To achieve one or a part or all the objectives or other objectives, an embodiment of the disclosure provides an illumination system including a blue light source, an excitation light source, a first dichroic element and a wavelength converting element. The blue light source provides a blue light beam. The excitation light source provides an excitation beam. The first dichroic element is disposed on transmitting paths of the blue light beam and the excitation beam. The wavelength converting element is disposed on the transmitting path of the excitation beam and adapted to convert the excitation beam into an excited beam, wherein the excitation beam passes through the first dichroic element to the wavelength converting element and is converted into an excited beam. The excited beam is transmitted to the first dichroic element and reflected. The wavelength of the blue light beam is greater than the wavelength of the excitation beam, and the blue light source and the excitation light source are disposed on the same side of the first dichroic element.
To achieve one or a part or all the objectives or other objectives, another embodiment of the disclosure provides a projection device for providing a projection beam. The projection device includes an illumination system, at least one light valve and one lens module. The illumination system provides an illumination beam. The illumination system includes a blue light source, an excitation light source, a first dichroic element and a wavelength converting element. The blue light source provides a blue light beam. The excitation light source provides an excitation beam. The first dichroic element is disposed on transmitting paths of the blue light beam and excitation beam. The wavelength converting element is disposed on the transmitting path of the excitation beam and adapted to convert the excitation beam into an excited beam, wherein the excitation beam passes through the first dichroic element to the wavelength converting element and is converted into an excited beam. The excited beam is transmitted to the first dichroic element and reflected. At least one light valve is disposed on the transmitting path of the illumination beam and adapted to convert the illumination beam into at least one image beam. The lens module is disposed on the transmitting path of at least one image beam and adapted to form the at least one image beam into a projection beam, wherein the wavelength of the blue light beam is greater than the wavelength of the excitation beam, and the blue light source and the excitation light source are disposed on the same side of the first dichroic element.
To achieve one or a part or all the objectives or other objectives, the disclosure provides an operating method of a projection device, including the following steps: providing the projection device; changing the on, off or power-saving state of the blue light source and excitation light source respectively along with different timing periods, wherein at the first timing period, the on, off or power-saving states of the blue light source and the excitation light source are different.
Based on the above, the embodiments of the disclosure at least have one of the following advantages or effects. In the embodiments of the disclosure, the illumination system uses blue light source to provide the blue light portion of the illumination beam and uses excitation light source to provide the red light portion and green light portion of the illumination beam. Accordingly, the blue light source having longer wavelength may improve the purple-like blue color in the projection frame, thereby enhancing the optical quality of the projection device.
Other objectives, features and advantages of the invention will be further understood from the further technological features disclosed by the embodiments of the invention wherein there are shown and described preferred embodiments of this invention, simply by way of illustration of modes best suited to carry out the invention.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
In the following detailed description of the preferred embodiments, reference is made to the accompanying drawings which form a part hereof, and in which are shown by way of illustration specific embodiments in which the invention may be practiced. In this regard, directional terminology, such as “top,” “bottom,” “front,” “back,” etc., is used with reference to the orientation of the Figure(s) being described. The components of the invention can be positioned in a number of different orientations. As such, the directional terminology is used for purposes of illustration and is in no way limiting. On the other hand, the drawings are only schematic and the sizes of components may be exaggerated for clarity. It is to be understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the invention. Also, it is to be understood that the phraseology and terminology used herein are for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless limited otherwise, the terms “connected,” “coupled,” and “mounted” and variations thereof herein are used broadly and encompass direct and indirect connections, couplings, and mountings. Similarly, the terms “facing,” “faces” and variations thereof herein are used broadly and encompass direct and indirect facing, and “adjacent to” and variations thereof herein are used broadly and encompass directly and indirectly “adjacent to”. Therefore, the description of “A” component facing “B” component herein may contain the situations that “A” component directly faces “B” component or one or more additional components are between “A” component and “B” component. Also, the description of “A” component “adjacent to” “B” component herein may contain the situations that “A” component is directly “adjacent to” “B” component or one or more additional components are between “A” component and “B” component. Accordingly, the drawings and descriptions will be regarded as illustrative in nature and not as restrictive.
In the embodiment, the light valve 50 is a reflective type light modulator such as a liquid crystal on silicon panel (LCoS panel), a digital micro-mirror device (DMD) or the like. In some embodiments, the light valve 50 may be a transmissive type light modulator, such as a transparent liquid crystal panel, an electro-optical modulator, a magneto-optic modulator, an acousto-optic modulator (AOM) or the like. The disclosure provides no limitation to the form and type of the light valve 50. Details and implementation manners of the method for converting the illumination beam LB into the image beam LI by the light valve 50 will be omitted since sufficient teachings, suggestions and descriptions of implementation can be obtained from common knowledge in the art. In the embodiment, the number of light valve 50 is one as in, for example, the projection device 10 using a single digital micro-mirror device, but the number of the light valve may be plural in other embodiments, the disclosure is not limited thereto.
The projection lens 60, for example, includes a combination of one or more optical lens having refractive powers, such as various combinations among non-planar lenses including a biconcave lens, a biconvex lens, a concave-convex lens, a convex-concave lens, a plano-convex lens and a plano-concave lens. In one embodiment, the projection lens 60 may further include a planar optical lens to project the image beam LI from the light valve 50 to the projection target by the means of reflection. The disclosure provides no limitation to the form and type of the projection lens 60.
The light uniformizing element 70 is disposed on the transmitting path of the illumination beam LB and adapted to adjust the speckle shape of the illumination beam LB, such that the speckle shape of the illumination beam LB coordinates the shape (e.g., rectangular shape) of an operation section of the light valve 50 and thus coherent or similar light intensity can be provided throughout the speckle, thereby uniformizing the light intensity of the illumination beam LB. In the embodiment, the light uniformizing element 70, for example, is an integrator, but in other embodiments, the light uniformizing element 70 may be an optical element of other suitable type such as a fly eye lens array, which should not be construed as a limitation to the disclosure.
Additionally, in some embodiments, the projection device 10 may further selectively include a reflecting element (mirror) 90. The reflecting element 90 guides the illumination beam LB emitted by the illumination system 100 to the light valve 50, but the disclosure is not limited thereto. In other embodiments, other optical elements may be used to guide the illumination beam LB to the light valve 50.
In the embodiment, the illumination system 100 includes a blue light source 110, an excitation light source 120, a first dichroic element 130, a wavelength converting element 140 and a filter element 150. Specifically, the blue light source 110 provides a blue light beam L1, and the excitation light source 120 provides an excitation beam L2. In the embodiment, the blue light source 110 and the excitation light source 120 are laser diode (LD), but in other embodiments, the blue light source 110 and the excitation light source 120 may be light emitting diode (LED) or organic light-emitting diode (OLED). Specifically, the light sources that meet the need of actual design may be implemented, and the disclosure provides no limitation to the form and type of the blue light source 110, the excitation light source 120 and other light sources in the following descriptions. The wavelength converting element 140 is, for example, a phosphor wheel, the filter element 150 is, for example, a color wheel.
In the embodiment, the excitation light source 120 is a short-wavelength blue light source. In other words, the blue light beam L1 is a long-wavelength blue light beam and the excitation beam L2 is a short-wavelength blue light beam. The wavelength of the blue light beam L1 is greater than the wavelength of the excitation beam L2. For example, the blue light beam L1 may have a wavelength of 460 nm, and the excitation beam L2 may have a wavelength of 445 nm. Accordingly, the embodiment uses the long-wavelength blue light beam (i.e., blue light beam L1) to provide the blue light portion of the projection beam LP, and uses the short-wavelength blue light beam (i.e., excitation beam L2) to excite the wavelength converting material of the wavelength converting element 140 to provide other color light such as yellow, green and red light portions of the projection beam LP. In this manner, the problem of frame with purple-like blue color provided in known techniques can be avoided, thereby enhancing the optical property of the projection device 10.
The first dichroic element 130 is disposed on the transmitting paths of the blue light beam L1 and the excitation beam L2, and the blue light source 110 and the excitation light source 120 are disposed on the same side of the first dichroic element 130. The blue light source 110 and the wavelength converting element 140 are disposed on two opposite sides of the first dichroic element 130. In the embodiment, the first dichroic element 130 is a dichroic mirror which reflects yellow light, but the disclosure is not limited thereto. According to other embodiments, the first dichroic element 130 may be realized in other types or forms, further details are provided below along with other embodiments.
The wavelength converting maternal in the optical section 146A is a green light converting material, but the disclosure is not limited thereto.
Additionally, referring to
Specifically, at the first timing period (t0-t1 or t4-t5), the blue light source 110 is in the off state or power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the wavelength converting element 140 to generate a portion (i.e., first excited beam) of the excited beam L3. A portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the first filter section 152 of the filter element 150 to generate a red light portion (i.e., first red light beam L4) of the illumination beam LB. Additionally, it can be obtained by persons skilled in the art that the power-saving state is defined as that the light source is continuously in the on state but the intensity of emission of light becomes weak, or that the light beam is emitted after the light source is operated for a period of time, that is, the light source does not emit light beam although the light source has current or voltage.
At the second timing period (t1-t2 or t5-t6), the blue light source 110 is in the off or power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the second converting section 144 of the wavelength converting element 140 to generate another portion (i.e., second excited beam) of the excited beam L3. Another portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the second filter section 154 of the filter element 150 to generate the green light portion (i.e., green light beam L5) of the illumination beam LB.
At the third timing period (t2-t3 or t6-t7), the excitation light source 120 is in the off state or power-saving state, and the blue light beam L1 emitted by the blue light source 110 sequentially passes through the first dichroic element 130 and the diffusion section 156 of the filter element 150 to generate the blue light portion of the illumination beam LB. In this manner, the blue light portion of the illumination beam LB may achieve diffusion uniforming by passing through the diffusion section 156. The diffusion section 156 eliminates the laser speckle on the projection target that is irradiated by the blue light portion of the illumination beam LB.
At the fourth timing period (t3-t4 or t7-t8), the blue light source 110 is in the off state of the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the light wavelength converting element 140 to generate a portion (i.e., first excited beam) of the excited beam L3. A portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the light-transmissible section 158 of the filter element 150 to generate yellow light beam (not shown). Therefore, at the fourth timing period of the embodiment, the excitation light source 120 may further provide the yellow light beam to the light valve 50, such that the projection beam LP provided by the projection device 10 has better brightness and accurate color.
Next, referring to
Thereafter, referring to
Specifically, the illumination system in the embodiment at the first timing period, the second timing period and the third timing period is similarly operated as in the above embodiment at the first timing period, the second timing period and the third timing period; the difference between the two is that the filter element 150A in the embodiment only includes the first filter section 152, the second filter section 154 and the diffusion section 156. Accordingly, the illumination system 100 in the embodiment provides the red light portion, the green light portion and the blue light portion of the illumination beam LB at the first timing period, the second timing period and the third timing period respectively. Details and implementation manners of the above steps will be omitted since sufficient teachings, suggestions and descriptions of implementation can be obtained from common knowledge in the art.
Referring to
Specifically, at the first time timing period (t0-t1 or t4-t5), the blue light source 110 is in the off state or the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the wavelength converting element 140 to generate a portion (i.e., first excited light beam) of the excited beam L3. A portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the first filter section 152 of the filter element 150 to generate the red light portion (i.e., first red light beam L4) of the illumination beam LB.
At the second timing period (t1-t2 or t5-t6), the blue light source 110 is in the off state of the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the second converting section 144 of the wavelength converting element 140 to generate another portion (i.e., second excited beam) of the excited beam L3. Another portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the second filter section 154 of the filter element 150 to generate the green light portion (i.e., green light beam L5) of the illumination beam LB.
At the third timing period (t2-t3 or t6-t7), the excitation light source 120 is in the on state, and the blue light source 110 is in the on state. The excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the optical section 146A of the wavelength converting element 140 to generate another portion (i.e., third excited beam, e.g., green light or cyan light) of the excited beam L3, and simultaneously transmitted to the diffusion section 156 of the filter element 150 along with the blue light beam L1 emitted by the blue light source 110. Accordingly, the third excited beam and the blue light beam L1 are used to generate the blue light portion of the illumination beam LB. In this manner, the color coordinate of the blue light can be adjusted such that the color of the projection beam LP is more saturated to exhibit the real color of image.
It should be indicated that, in other embodiments, the intensity of the excitation beam L2 emitted by the excitation light source 120 is the same as the intensity of the blue light beam L1 emitted by the blue light source 110, which coordinates that the wavelength converting material in the optical section 146A has the same concentration as the wavelength converting material in the second converting section 144. In other embodiments, the intensity of the excitation beam L2 emitted by the excitation light source 120 is the same as the intensity of the blue light beam L1 emitted by the blue light source 110, which coordinates that the optical section 146A has a concentration of the wavelength converting material different from the wavelength converting material in the second converting section 144. In other embodiments, the intensity of the excitation beam L2 emitted by the excitation light source 120 is different from the intensity of the blue light beam L1 emitted by the blue light source 110. For example, the intensity of the excitation beam L2 emitted by the excitation light source 120 is weaker than the intensity of the blue light beam L1 emitted by the blue light source 110, which coordinates that the optical section 146A has the same concentration of the wavelength converting material as the wavelength converting maternal in the second converting section 144.
The purpose of the above embedment is to adjust the color coordinate of blue light such that the color of the projection beam LP is more saturated to exhibit the real color of image.
At the fourth timing period (t3-t4 or t7-t8), the blue light source 110 is in the off state or the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the wavelength converting element 140 to generate a portion (i.e., first excited beam) of the excited beam L3. A portion of the excited beam L3 generated by the wavelength converting element 140 is transmitted to the first dichroic element 130 and reflected to pass through the light-transmissible section 158 of the filter element 150 to generate the yellow light beam (not shown). Accordingly, at the fourth timing period in the embodiment, the excitation light source 120 may further provide the yellow light beam to the light valve 50 such that the projection beam LP provided by the projection device 10 has better brightness and accurate color. Details and implementation manners of the above steps will be omitted since sufficient teachings, suggestions and descriptions of implementation can be obtained from common knowledge in the art.
Further referring to
Additionally, in
The illumination system 100B has the first timing period (t0-t1 or t2-t3) and the second timing period (t1-t2 or t3-t4) in operation, and the blue light source 110 and the excitation light source 120 are changed between the on, off or power-saving state respectively according to the timing periods, such that the light beam (i.e., illumination beam LB provided by the illumination system) that is changed according to timing periods is received by first light valve 52 and the second light valve 54 as shown in
Specifically, at the first timing period (t0-t1 or t2-t3), the blue light source 110 is in the on state or the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the wavelength converting element 140A to generate the excited beam L3 as shown in
Next, the red light portion and the green light portion of the illumination beam LB are transmitted to the dichroic mirror 80, the red light portion of the illumination beam LB passes through the dichroic mirror 80 and transmitted to the first light valve 52, and the green light portion of the illumination beam LB is reflected by the dichroic mirror 80 and transmitted to the second light valve 54 as shown in
At the second timing period (t1-t2 or t3-t4), the excitation light source 120 is in the off state of the power-saving state, and the blue light beam L1 emitted by the blue light source 110 sequentially passes through the first dichroic element 130 and diffusor 180 to generate the blue light portion of the illumination beam LB and transmitted to the first light valve 52 through the dichroic mirror 80. As shown in
In the embodiment, the wavelength converting element 140A includes the first converting section 142 and the optical section 146. At the second timing period (t1-t2 or t3-t4), the optical section 146A does not receive the excitation beam L2 from the excitation light source 12 and thus a portion of the wavelength converting material can be saved. However, in other embodiments, the wavelength converting element 140A may be changed into a wavelength converting element 140B which is only be provided with the first converting section 142 having the wavelength converting material to simplify the manufacturing process of the wavelength converting element 140A as shown in
Referring to
Referring to
Specifically, at the first timing period (t0-t1 or t2-t3), the blue light source 110 is in the off state of the power-saving state, and the excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the first converting section 142 of the wavelength converting element 140C to generate the excited beam L3 as shown in
At the second timing period (t1-t2 or t3-t4), the excitation light source 120 is in the on state, and the blue light source 110 is in the on state. The excitation beam L2 emitted by the excitation light source 120 passes through the first dichroic element 130 to the optical section 146A of the wavelength converting element 140C to generate another portion (i.e., third excited beam such as green light or cyan light) of the excited beam L3, and simultaneously transmitted to the diffusor 180 along with the blue light beam L1 emitted by the blue light source 110 to generate the blue light portion of the illumination beam LB, wherein the blue light beam L1 passes through the dichroic mirror 80 and transmitted to the first light valve 52, and another portion (i.e., third excited beam such as green light or cyan light) of the excited beam L3 is reflected by the dichroic mirror 80 and transmitted to the second light valve 54. The purpose of the embodiment is to adjust the color coordinate of blue light such that the color of the projection beam LP is more saturated to exhibit the real color of image.
Therefore, the illumination beam LB provided by the illumination system 100B generates a mixing beam L7 after passing through the uniformizing element 70. The mixing beam L7 (e.g., white light) can be formed respectively through the dichroic function of different optical elements (e.g., dichroic prism) in the projection device 30, and provide the blue light beam L1, the green light beam L5 and the first red light beam L4 to the first light valve 52, the second light valve 54 and the third light valve 56 to be formed into the first sub-image beam LI1, the second sub-image beam LI2 and the third sub-image light LI3 by the first light valve 52, the second light valve 54 and the third light valve 56 respectively and transmitted to the lens module 60. Additionally, referring to
In other embodiments, referring to
In other embodiments, referring to
It should be indicated that, in the above embodiments, the method for changing the blue light source and excitation light source according to different timing periods further includes: step S227, at the third timing period, the intensity of the activated excitation light source 110 and the intensity of the activated blue light source 120 are the same, that is, the intensity of the excitation beam L2 and the intensity of the blue light beam L1 are the same, e.g., the intensity is the same as current or voltage. The wavelength converting element 140A having the optical section 146A with wavelength converting material is provided, wherein the wavelength converting material in the optical section 146A has the same concentration as the wavelength converting material in the second converting section 144. In other embodiments, at the third timing period, the intensity of the activated excitation light source 110 and the intensity of the activated blue light source 120 are the same. The wavelength converting element 140A having the optical section 146A with wavelength converting material is provided, wherein the concentration of wavelength converting material in the optical section 146A is different from the wavelength converting material in the second converting section 144. Or, in other embodiments, the method for changing the blue light source and the excitation light source according to different timing periods further includes: step S228, the intensity of the activated excitation light source 110 and the intensity of the activated blue light source 120 are different. The wavelength converting element 140A having the optical section 146A with the wavelength converting material is provided, wherein the wavelength converting material in the optical section 146A has the same concentration as the wavelength converting material in the second converting section 144.
As the timing period shown in
In summary, the embodiments of the disclosure at least have one of the following advantages or effects. In the embodiments of the disclosure, the illumination system uses blue light source to provide the blue light portion of the illumination beam and uses excitation light source to provide the red light portion and green light portion of the illumination beam. Accordingly, the blue light source having longer wavelength may improve the purple-like blue color in the projection frame, thereby enhancing the optical quality of the projection device.
The foregoing description of the preferred embodiments of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form or to exemplary embodiments disclosed. Accordingly, the foregoing description should be regarded as illustrative rather than restrictive. Obviously, many modifications and variations will be apparent to practitioners skilled in this art. The embodiments are chosen and described in order to best explain the principles of the invention and its best mode practical application, thereby to enable persons skilled in the art to understand the invention for various embodiments and with various modifications as are suited to the particular use or implementation contemplated. It is intended that the scope of the invention be defined by the claims appended hereto and their equivalents in which all terms are meant in their broadest reasonable sense unless otherwise indicated. Therefore, the term “the invention”, “the present invention” or the like does not necessarily limit the claim scope to a specific embodiment, and the reference to particularly preferred exemplary embodiments of the invention does not imply a limitation on the invention, and no such limitation is to be inferred. The invention is limited only by the spirit and scope of the appended claims. The abstract of the disclosure is provided to comply with the rules requiring an abstract, which will allow a searcher to quickly ascertain the subject matter of the technical disclosure of any patent issued from this disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. Any advantages and benefits described may not apply to all embodiments of the invention. It should be appreciated that variations may be made in the embodiments described by persons skilled in the art without departing from the scope of the invention as defined by the following claims. Moreover, no element and component in the disclosure is intended to be dedicated to the public regardless of whether the element or component is explicitly recited in the following claims.
Number | Date | Country | Kind |
---|---|---|---|
201810402606.6 | Apr 2018 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
8840253 | Kitano | Sep 2014 | B2 |
9977317 | Wang et al. | May 2018 | B2 |
20100141896 | Chen et al. | Jun 2010 | A1 |
20110205502 | Kato et al. | Aug 2011 | A1 |
20110310353 | Maeda | Dec 2011 | A1 |
20130100639 | Li et al. | Apr 2013 | A1 |
20130100644 | Hu et al. | Apr 2013 | A1 |
20130194551 | Zhang et al. | Aug 2013 | A1 |
20150029467 | Sugiyama et al. | Jan 2015 | A1 |
20150205189 | Nojima | Jul 2015 | A1 |
20150219984 | Matsubara | Aug 2015 | A1 |
20150316775 | Hsieh et al. | Nov 2015 | A1 |
20160004148 | Chiu et al. | Jan 2016 | A1 |
20180080630 | Wang et al. | Mar 2018 | A1 |
Number | Date | Country |
---|---|---|
101923273 | Dec 2010 | CN |
102650813 | Aug 2012 | CN |
102681320 | Sep 2012 | CN |
102890398 | Jan 2013 | CN |
103034035 | Apr 2013 | CN |
103809350 | May 2014 | CN |
104238248 | Dec 2014 | CN |
102289141 | Jul 2015 | CN |
104765240 | Jul 2015 | CN |
104980721 | Oct 2015 | CN |
105022214 | Nov 2015 | CN |
105223761 | Jan 2016 | CN |
105319819 | Feb 2016 | CN |
107329356 | Nov 2017 | CN |
208283710 | Dec 2018 | CN |
2787390 | Oct 2014 | EP |
200916824 | Apr 2009 | TW |
201542966 | Nov 2015 | TW |
201546534 | Dec 2015 | TW |
2016158297 | Oct 2016 | WO |
Entry |
---|
“Search Report of Europe Counterpart Application,” dated Sep. 24, 2019, pp. 1-7. |
“Office Action of China Counterpart Application”, dated Nov. 26, 2020, p. 1-p. 17. |
“Office Action of Europe Counterpart Application”, dated Jun. 17, 2021, p. 1-p. 4. |
Number | Date | Country | |
---|---|---|---|
20190331997 A1 | Oct 2019 | US |