WO2022174683A1 - 摄像头模组和电子设备 - Google Patents
摄像头模组和电子设备 Download PDFInfo
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- WO2022174683A1 WO2022174683A1 PCT/CN2021/143800 CN2021143800W WO2022174683A1 WO 2022174683 A1 WO2022174683 A1 WO 2022174683A1 CN 2021143800 W CN2021143800 W CN 2021143800W WO 2022174683 A1 WO2022174683 A1 WO 2022174683A1
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- light
- camera module
- frequency band
- reflector
- reflecting
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- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B7/00—Mountings, adjusting means, or light-tight connections, for optical elements
- G02B7/28—Systems for automatic generation of focusing signals
- G02B7/287—Systems for automatic generation of focusing signals including a sight line detecting device
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/55—Optical parts specially adapted for electronic image sensors; Mounting thereof
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S17/00—Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
- G01S17/02—Systems using the reflection of electromagnetic waves other than radio waves
- G01S17/06—Systems determining position data of a target
- G01S17/08—Systems determining position data of a target for measuring distance only
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S17/00—Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
- G01S17/86—Combinations of lidar systems with systems other than lidar, radar or sonar, e.g. with direction finders
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S7/00—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
- G01S7/48—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
- G01S7/481—Constructional features, e.g. arrangements of optical elements
- G01S7/4814—Constructional features, e.g. arrangements of optical elements of transmitters alone
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01S—RADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
- G01S7/00—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
- G01S7/48—Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S17/00
- G01S7/481—Constructional features, e.g. arrangements of optical elements
- G01S7/4816—Constructional features, e.g. arrangements of optical elements of receivers alone
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B17/00—Details of cameras or camera bodies; Accessories therefor
- G03B17/02—Bodies
- G03B17/17—Bodies with reflectors arranged in beam forming the photographic image, e.g. for reducing dimensions of camera
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/51—Housings
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/50—Constructional details
- H04N23/54—Mounting of pick-up tubes, electronic image sensors, deviation or focusing coils
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/57—Mechanical or electrical details of cameras or camera modules specially adapted for being embedded in other devices
Definitions
- the application belongs to the technical field of electronic equipment, and specifically relates to a camera module and an electronic equipment.
- each camera Since each camera has an auto-focus function, it brings a separate distance sensor to measure the object to be photographed through the distance sensor. the distance. As shown in Figure 1, the existing distance sensor will occupy a limited space of the mobile phone, and its optical axis is not consistent with the camera, so the focus point cannot be accurately calculated. Under some special angles, as shown in Figure 2, there will be two different In the overlapping area, the laser sensor cannot be used to assist the camera to focus in the non-overlapping area, which greatly affects the user experience.
- the present application aims to provide a camera module and an electronic device to at least solve the problem of focus offset.
- an embodiment of the present application proposes a camera module, comprising: a reflector, on which is provided a reflective and light-transmitting surface; a lens assembly and an image sensor, which are arranged on one side of the reflector and emit light through the light-emitting surface to the outside The light emitted by the filter is injected into the image sensor through the lens assembly; the filter reflection layer is arranged on the reflective light-transmitting surface, the filter reflection layer can reflect the light of the first frequency band, and the filter reflection layer can transmit the light of the second frequency band; the laser sensor, set On the side of the reflective and light-transmitting surface away from the light-incoming surface, and on the installation surface of the laser sensor, the projection of the filter reflective layer at least partially overlaps the laser sensor, and the laser sensor determines the distance according to the light of the second frequency band transmitted by the filter reflective layer , the lens assembly adjusts the focus according to the distance, wherein the first frequency band and the second frequency band are independent of each other.
- the camera module provided according to the embodiment of the present application includes a reflector, a lens assembly and an image sensor arranged on one side of the reflector, and a filter reflective layer is provided on the reflective and light-transmitting surface, and the reflective and light-transmitting surface is far from the light-entering surface.
- the laser sensor is arranged on one side of the camera. On the one hand, by arranging the laser sensor inside the camera, the extra space required for arranging the laser sensor in the prior art can be effectively solved.
- the optical path of the laser sensor receives external light, so the coincidence angle of its field of view angle is high, that is, the degree of coincidence of the field of view angle of the photosensitive unit in the laser sensor and the image sensor is improved, thereby improving the accuracy of the focus point, which is more conducive to satisfying users in the use of The focusing requirements of the camera module when shooting.
- the triangular prism includes three facets: a light entrance surface, a light-reflecting light-transmitting surface and a light-emitting surface.
- a light entrance surface When light propagates in the triangular prism, it mainly enters the light-entering surface, and is reflected by the light-transmitting surface and passes through the light-emitting surface.
- the propagation direction of the light can be changed.
- the complete light path can be realized in another direction by changing the direction of the light path, especially for periscope.
- the camera can adjust the focal length according to the needs.
- a lens assembly and an image sensor are arranged on one side of the triangular prism, and the light emitted through the light-emitting surface is mainly directed to the image sensor, so that the image sensor can receive the light to realize imaging.
- this application is mainly realized by adding a filter reflection layer and a laser sensor.
- the filter reflection layer is directly arranged on the reflective light transmission surface. Under the action of the filter reflection layer, the light in the first frequency band can be reflected, and The light of the second frequency band is filtered. It should be noted that the light of the second frequency band is filtered, so that only the light of the second frequency band can pass through the filtering reflection layer, and the light of other frequency bands is filtered.
- the filter reflective layer covers the laser sensor, that is, the projection of the filter reflective layer overlaps with the laser sensor at least partially, so that the The light emitted by the laser sensor can be injected into the triangular prism through the filter mirror structure, so as to improve the degree of overlap of the field angles of the photosensitive units in the laser sensor and the image sensor, so as to reduce the deviation of focus.
- the laser sensor can determine the distance according to the light of the second frequency band, and the lens assembly can adjust the focus according to the distance.
- the first frequency band and the second frequency band are independent of each other, that is, there is no overlap between the first frequency band and the second frequency band.
- the laser sensor when starting to focus, will emit light in a specific frequency band, including but not limited to infrared laser beams, and then start timing, and then receive the reflected light from the object or obstacles through the laser sensor. Light, stop timing at this time, and by calculating the speed of light and time, the distance between the camera module and the obstacle can be obtained. At this time, the distance can be sent to the focus controller in the camera module to control the operation of the focus motor to the focal plane to achieve focus.
- a specific frequency band including but not limited to infrared laser beams
- an embodiment of the present application proposes an electronic device, including: a body; the camera module in the above-mentioned embodiments is disposed on the body, wherein the camera module is a front-facing camera module and/or a front-end camera module of an electronic device rear camera module.
- the electronic device provided according to the embodiment of the present application includes a main body and the camera module of any of the above-mentioned embodiments.
- the image formed by the camera module can be sent to the main body, so as to facilitate subsequent The secondary editing and sharing of the electronic device, in which the camera module can be a front module or a rear module, so that the front camera of the electronic device has the anti-shake function, or the rear camera has the anti-shake function, or
- both the front and rear dual cameras have the anti-shake function of any of the above embodiments.
- the electronic device includes the camera module of any of the above embodiments, it has the beneficial effects of the camera module of any of the above-mentioned embodiments, which will not be repeated here.
- FIG. 1 is a schematic structural diagram of a camera and a laser sensor in the prior art
- Fig. 2 is the structural representation of the angle of view in the prior art
- FIG. 3 is a schematic structural diagram of a camera module according to an embodiment of the present application.
- FIG. 4 is a schematic structural diagram of a camera module according to an embodiment of the present application.
- FIG. 5 is a schematic structural diagram of a camera module according to an embodiment of the present application.
- FIG. 6 is a schematic structural diagram of a camera module according to an embodiment of the present application.
- FIG. 7 is a spectral response diagram of a filtered reflective layer according to an embodiment of the present application.
- FIG. 8 is a spectral response diagram of a filtering reflective layer according to another embodiment of the present application.
- FIG. 9 is a schematic structural diagram of an electronic device according to an embodiment of the present application.
- 100 Camera module; 102: Reflector; 1022: Light entrance surface; 1024: Reflective light transmission surface; 1026: Light exit surface; 1028: First mirror body; 1029: Second mirror body; 104: Lens assembly; 1042: lens; 106: image sensor; 108: filter reflection layer; 110: laser sensor; 1102: signal transmitter: 1104: signal receiver; 112: flexible cable; 114: housing; 1142: light inlet; 200: electronics Equipment; 210: Ontology.
- the terms “installed”, “connected” and “connected” should be understood in a broad sense, for example, it may be a fixed connection or a detachable connection Connection, or integral connection; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be internal communication between two elements.
- installed should be understood in a broad sense, for example, it may be a fixed connection or a detachable connection Connection, or integral connection; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be internal communication between two elements.
- the present application provides an embodiment of a camera module 100 , including: a reflector, on which is provided a reflective light-transmitting surface; a lens assembly 104 and an image sensor 106 , which are provided on the reflector On one side of 102, the light emitted outward through the light-emitting surface 1026 enters the image sensor 106 through the lens assembly 104; the filtering and reflecting layer 108 is arranged on the reflective and light-transmitting surface 1024, and the filtering and reflecting layer 108 can reflect the light of the first frequency band, Moreover, the filtering and reflecting layer 108 can transmit the light of the second frequency band; the laser sensor 110 is arranged on the side of the reflective light-transmitting surface 1024 away from the light-entering surface 1022, and on the installation surface of the laser sensor 110, the projection of the filtering and reflecting layer 108 is The laser sensor 110 is covered, wherein the first frequency band and the second frequency band are independent of each other.
- the camera module 100 provided according to the embodiment of the present application includes a reflector 102 , a lens assembly 104 and an image sensor 106 disposed on one side of the reflector 102 .
- the laser sensor 110 is disposed on the side of the light-transmitting surface 1024 away from the light-entering surface 1022.
- the additional space required for disposing the laser sensor 110 in the prior art can be effectively solved, and on the other hand
- the overlapping angle of their field of view angles is relatively high, that is, the difference between the field angles of the photosensitive units in the laser sensor 110 and the image sensor 106 is increased.
- the degree of overlap improves the accuracy of the focus point, and is more conducive to meeting the user's focus requirements when using the camera module 100 to shoot.
- the laser sensor can determine the distance according to the light of the second frequency band, and the lens assembly can adjust the focus according to the distance.
- the reflector 102 may be a triangular prism, which mainly includes three prism surfaces: a light entrance surface 1022 , a light-reflecting and light-transmitting surface 1024 and a light exit surface 1026 .
- the light propagates in the reflector 102 , the light is mainly incident from the light entrance surface 1022 . , and is reflected by the light-reflecting and light-transmitting surface 1024 and exiting through the light-emitting surface 1026. It can be understood that by setting the reflector 102, the propagation direction of the light can be changed.
- the direction can realize the completeness of the light path in the other direction, especially for periscope cameras, which can adjust the focal length according to the needs.
- the lens assembly 104 and the image sensor 106 are disposed on one side of the reflector 102, and the light emitted through the light emitting surface 1026 is mainly directed to the image sensor 106, so that the image sensor 106 can receive the light to realize imaging.
- this application is mainly realized by adding a filter reflection layer 108 and a laser sensor 110.
- the filter reflection layer 108 is directly arranged on the reflective and light-transmitting surface 1024.
- the first frequency band can be The light is reflected, and the light of the second frequency band is filtered.
- the light of the second frequency band is filtered, so that only the light of the second frequency band can pass through the filtering reflection layer 108, and the light of other frequency bands is filtered. filter out.
- the filter reflective layer 108 covers the laser sensor 110, so that the laser sensor 110 can emit light.
- the light can be injected into the reflector 102 through the filter mirror structure, so as to improve the degree of overlap of the field angles of the photosensitive units in the laser sensor 110 and the image sensor 106 to reduce the deviation of focus.
- the camera module 100 can image normally like the original periscope telephoto camera, because the filter reflective layer 108 does not change the visible light reflection characteristics of the periscope reflector 102, and it can also realize laser measurement
- the infrared light emitted by the laser sensor 110 can be transmitted normally under the action of the filter reflective layer 108, and the laser sensor 110 based on infrared laser is not blocked by the edges and corners of the camera.
- both the imaging sensor and the laser sensor 110 receive external light through the optical path of the reflector 102, their FOV angles of view (ie, field of view) are completely coincident, which solves the problem of focusing offset.
- the first frequency band and the second frequency band are independent of each other, that is, there is no overlap between the first frequency band and the second frequency band.
- the laser sensor 110 when starting to focus, the laser sensor 110 will emit light in a specific frequency band, including but not limited to an infrared laser beam, at this time, start timing, and then receive the reflection from the photographed object or obstacle through the laser sensor 110 The returned light stops timing at this time.
- the distance between the camera module 100 and the obstacle can be obtained. At this time, the distance can be sent to the focus controller in the camera module 100 to Control the focus motor to run to the focal plane to achieve focus.
- the transmittance and reflectance curves of the filtering reflection layer are shown in FIG. 7 , it can be seen that the first frequency band is the visible light frequency band, and the second frequency band is the infrared light frequency band.
- the visible light can be completely reflected and the infrared light can be completely transmitted, so as to meet the detection requirements of the laser sensor 110 for infrared light , and due to the complete reflection of visible light, it can also meet the imaging requirements of imaging sensors.
- the visible light frequency range is 380 nm-700 nm
- the infrared light frequency range is 760 nm-1 mm.
- the transmittance and reflectivity curves of the filtering reflection layer are shown in FIG. 8
- the first frequency band is the infrared light frequency band
- the second frequency band is the visible light frequency band
- the reflector 102 includes a first mirror body 1028 and a second The mirror body 1029, the light exit surface 1026 of the first mirror body 1028 and the light entrance surface 1022 of the second mirror body 1029 are arranged opposite to each other, and the filter reflection layer 108 is arranged on the light-reflecting and light-transmitting surface 1024 of the second mirror body 1029, wherein the external light The light enters the second mirror body 1029 through the light entrance surface 1022 , the reflective light transmission surface 1024 and the light exit surface 1026 of the first mirror body 1028 , and the external light passes through the light entrance surface 1022 , the reflective light transmission surface 1024 and the light output surface of the second mirror body 1029 .
- the filtering and reflecting layer 108 is directed toward the image sensor 106, and the ranging light enters the first mirror body 1028 through the light-emitting surface 1026, the reflective light-transmitting surface 1024, the filtering and reflecting layer 108, and the light-entering surface 1022 of the second mirror body 1029 in sequence, and the measured light is measured.
- the distance light is sequentially emitted outward through the light-emitting surface 1026 , the light-reflecting and light-transmitting surface 1024 and the light-entering surface 1022 of the first mirror body 1028 .
- the component 102 includes two mirror bodies, the light-emitting surface 1026 of one mirror body and the light-entering surface 1022 of the other mirror body are arranged opposite to each other, and a filter reflection layer 108 is provided on the light-reflecting and light-transmitting surface 1024 of the second mirror body 1029. , when the light propagates, it will be directed to the imaging sensor and the laser sensor 110 through the two mirror bodies.
- the filter reflection layer 108 functions to transmit visible light and reflect infrared light, under the effect of the filter reflection layer 108, the When the light from the light-emitting surface 1026 of the first mirror body 1028 is emitted from the light-incoming surface 1022 of the second mirror body 1029 to the light-reflecting and light-transmitting surface 1024 of the second mirror body 1029, if it is a ranging light, the infrared light will be reflected to the laser light The sensor 110, while the normal visible light directly enters the imaging sensor through the reflective light-transmitting surface 1024.
- the external light is visible light, and its propagation path is to enter the second mirror body 1029 through the light entrance surface 1022 , the reflective light transmission surface 1024 and the light exit surface 1026 of the first mirror body 1028 , and the external light passes through the second mirror body 1029
- the light entrance surface 1022 , the reflective light transmission surface 1024 and the filter reflection layer 108 are directed toward the image sensor 106 .
- the distance-measuring light is infrared light, and its propagation path is to enter the first mirror body 1028 through the light-emitting surface 1026 of the second mirror body 1029 , the reflective light-transmitting surface 1024 , the filter reflection layer 108 and the light-entering surface 1022 in sequence, and the distance measurement is performed.
- the light is sequentially emitted outward through the light-emitting surface 1026 , the light-reflecting and light-transmitting surface 1024 and the light-entering surface 1022 of the first mirror body 1028 .
- the filter reflection layer 108 is a dichroic mirror filter; or the filter reflection layer 108 is an interference filter optical coating.
- the filtering and reflecting layer 108 is a dichroic mirror filter, and a mature dichroic mirror filter is used, which is attached to the light-reflecting and light-transmitting surface 1024 of the reflector 102 by optical glue, and the processing procedure is relatively simple.
- the dichroic mirror is realized by using an interference filter optical coating, and the characteristics of visible light reflection and infrared light transmission similar to the dichroic mirror can be realized through the multi-layer interference filter technology. Compared with the solution of directly using the filter, this embodiment has a higher degree of integration.
- the laser sensor 110 includes: a signal transmitter 1102, the signal transmitter 1102 is used to send out ranging light, and the ranging light is emitted outward through the filtering reflection layer 108 and the reflection member 102; the signal receiver 1104, The signal receiver 1104 is used for receiving the ranging light that is reflected by the obstacle and then enters the signal receiver 1104 .
- the laser sensor 110 mainly includes a signal transmitter 1102 and a signal receiver 1104.
- the signal transmitter 1102 can send out ranging light so as to emit light in a specific frequency band when starting to focus, including but not limited to infrared laser beams, ranging light After passing through the filtering reflective layer 108 and the reflective member 102 in turn, it is emitted outward. At this time, the timing starts.
- the signal receiver 1104 receives the ranging light reflected by the photographed object or the obstacle. At this time, the timing is stopped. By calculating the time, the distance between the camera module 100 and the obstacle can be obtained. At this time, the distance can be sent to the focus controller in the camera module 100 to control the focus motor to run to the focal plane to achieve focusing.
- a housing 114 is included, the reflector 102 , the lens assembly 104 , the image sensor 106 , the filter reflective layer 108 and the laser sensor 110 are arranged in the housing 114 , and a wall surface of the housing 114 is provided with the reflector 102 Corresponding to the light inlet holes 1142 , the external light can enter the reflector 102 through the light inlet holes 1142 .
- the camera module 100 includes a housing 114 for accommodating other devices.
- the housing 114 can accommodate the reflector 102 , the lens assembly 104 , the image sensor 106 , the filter reflection layer 108 and the laser sensor 110 , so as to realize the reflective element 102 ,
- the protection of the lens assembly 104, the image sensor 106, the filter reflection layer 108 and the laser sensor 110, in addition, the wall surface of the housing 114 is provided with a light inlet hole 1142 corresponding to the reflector 102, that is, a viewfinder hole, through which light can pass through.
- the light entrance hole 1142 is incident into the reflector 102 , so as to be directed to the laser sensor 110 and the image sensor 106 respectively, so as to facilitate ranging and focusing of the laser sensor 110 , and facilitate the framing and imaging of the image sensor 106 .
- a flexible flat cable 112 disposed on the inner side of the casing 114, and the flexible flat cable 112 is electrically connected to the image sensor 106 and the laser sensor 110, respectively.
- the image formed by the image sensor 106 and the image information measured by the laser sensor 110 can be sent to the main control board, that is, the image sensor 106 and the laser sensor 110 can be formed respectively. It is electrically connected to the main control board to realize the function of fast auto focus.
- the flexible cable 112 is arranged on the inner side of the casing 114, and the image sensor 106 and the laser sensor 110 can also be fixed on the casing 114 through it. , to ensure the stability of the two sensors.
- the flexible cable 112 is an FPC cable, and the two sensors can be fixed through a relatively mature FPC cable connection process.
- the light entrance surface 1022 is perpendicular to the light exit surface 1026 , and the light entering the reflector 102 can be perpendicular to the light exit surface 1026 under the action of the reflective light transmission surface 1024 . parallel.
- the three facets can be at any angle with each other.
- the light-incoming surface 1022 and the light-exiting surface 1026 are vertically processed, and the light-incoming surface is limited. 1022 and the end faces of the light inlet holes 1142 are parallel, so that during the propagation of the light path, when the light enters the reflector 102, the light enters perpendicular to the light inlet surface 1022, and when it is emitted to the image sensor 106 through the light exit surface 1026, due to the limited light Under the action of the light-reflecting and light-transmitting surface 1024, the light-emitting surface 1026 is also emitted vertically, so that the light path can be changed under the action of the light-reflecting and light-transmitting surface 1024, thereby satisfying different imaging and space requirements.
- the lens assembly 104 includes a plurality of lenses 1042 whose optical axes are collinear.
- the lens assembly 104 includes a plurality of lenses 1042 with collinear optical axes, and the number of the lenses 1042 is multiple, so as to adjust the imaging focal length of the imaging sensor under the action of the plurality of lenses 1042 to achieve different multiples of For optical zoom, it can be understood that the types of the plurality of lenses 1042 include, but are not limited to, plane mirrors, concave mirrors, convex mirrors, and the like.
- an electronic device 200 which includes: a body 210 ; the camera module 100 in the above embodiment is disposed on the body 210 , wherein the camera module 100 is a front camera of the electronic device 200 . module and/or rear camera module.
- the electronic device 200 provided according to the embodiment of the present application includes the main body 210 and the camera module 100 of any of the above embodiments.
- the camera module 100 By disposing the camera module 100 on the main body 210, the image formed by the camera module 100 can be sent to on the main body 210 to facilitate subsequent secondary editing and sharing, wherein the camera module 100 may be a front module or a rear module, so that the front camera of the electronic device 200 has an anti-shake function, or The rear camera has an anti-shake function, and optionally, both the front and rear dual cameras have the anti-shake function of any of the above embodiments.
- the electronic device 200 includes the camera module 100 of any one of the above embodiments, it has the beneficial effects of the camera module 100 of any one of the above embodiments, which will not be repeated here.
- electronic devices 200 are various, for example, mobile phones, tablet computers, electronic readers, and other devices that require a camera module.
- the photosensitive unit and the focusing unit are simultaneously integrated in the image sensor.
- the extra space required for arranging the laser sensor in the prior art can be effectively solved, and on the other hand, it can improve the The degree of overlap of the field of view of the photosensitive unit in the laser sensor and the image sensor improves the accuracy of the focus point and is more conducive to the user's focus requirements when using the camera module for shooting.
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Abstract
Description
Claims (10)
- 一种摄像头模组,其中,包括:反射件,所述反射件上设有反光透光面;镜片组件和图像传感器,设于所述反射件的一侧,经所述反射件向外射出的光线经所述镜片组件射向所述图像传感器;滤波反射层,设于所述反光透光面上,所述滤波反射层能够反射第一频段的光线,且能够透过第二频段的光线;激光传感器,设于所述反光透光面远离所述进光面的一侧,且在所述激光传感器的安装面上,所述滤波反射层的投影与所述激光传感器至少部分重叠,所述激光传感器根据所述滤波反射层透过的所述第二频段的光线确定距离,所述镜片组件根据所述距离调焦;其中,所述第一频段和所述第二频段相互独立。
- 根据权利要求1所述的摄像头模组,其中,所述第一频段为红外光频段,所述第二频段为可见光频段,所述反射件包括第一镜体和第二镜体,所述第一镜体的出光面与所述第二镜体的进光面相对设置,所述滤波反射层设于所述第二镜体的反光透光面上,其中,外部光线经所述第一镜体的进光面、反光透光面和出光面射入所述第二镜体,且所述外部光线经所述第二镜体的进光面、反光透光面和所述滤波反射层射向所述图像传感器,所述测距光线依次经所述第二镜体的出光面、反光透光面、所述滤波反射层和所述进光面射入所述第一镜体,且所述测距光线依次经所述第一镜体的出光面、反光透光面和进光面向外射出。
- 根据权利要求1所述的摄像头模组,其中,所述滤波反射层为二向色镜滤波片;或所述滤波反射层为干涉滤波光学镀层。
- 根据权利要求1所述的摄像头模组,其中,所述反射件为三棱镜,所述反射件包括进光面、所述反光透光面和出光面,外部光线经所述进光面射入所述反射件,在所述反光透光面的反射下由所述出光面向所述镜片组件射出。
- 根据权利要求4所述的摄像头模组,其中,所述进光面与所述出光面相垂直,射入所述反射件的光线能够在所述反光透光面的作用下垂直射向所述出光面。
- 根据权利要求1所述的摄像头模组,其中,所述激光传感器包括:信号发射器,所述信号发射器用于向外发出测距光线,所述测距光线经所述滤波反射层和所述反射件向外射出;信号接收器,所述信号接收器用于接收所述测距光线经障碍物反射后射入所述信号接收器的测距光线。
- 根据权利要求1所述的摄像头模组,其中,包括:壳体,所述反射件、所述镜片组件、所述图像传感器、所述滤波反射层和所述激光传感器设于所述壳体内,且所述壳体的一个壁面上设有与所述反射件对应的进光孔,外部光线能够由所述进光孔射入所述反射件。
- 根据权利要求8所述的摄像头模组,其中,所述摄像头模组还包括:软排线,设于所述壳体的内侧,且所述软排线分别与所述图像传感器和所述激光传感器电连接。
- 根据权利要求1至5中任一项所述的摄像头模组,其中,所述镜片组件包括多个透镜,多个所述透镜的光轴共线。
- 一种电子设备,其中,包括:本体;如权利要求1至9中任一项所述的摄像头模组,设于所述本体上,其中,所述摄像头模组为所述电子设备的前置摄像模组和/或后置摄像模组。
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| CN114185166A (zh) * | 2021-11-26 | 2022-03-15 | 昆山丘钛微电子科技股份有限公司 | 一种潜望式摄像模组及终端设备 |
| CN115201853B (zh) * | 2022-07-14 | 2025-02-07 | 昆山丘钛微电子科技股份有限公司 | Tof模组 |
| CN115278088B (zh) * | 2022-08-19 | 2024-11-26 | 维沃移动通信有限公司 | 激光传感器、电子设备和对焦控制方法 |
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| CN113014764B (zh) | 2023-04-25 |
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