WO2019024159A1 - 光学检查设备及光学检查方法 - Google Patents

光学检查设备及光学检查方法 Download PDF

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Publication number
WO2019024159A1
WO2019024159A1 PCT/CN2017/099858 CN2017099858W WO2019024159A1 WO 2019024159 A1 WO2019024159 A1 WO 2019024159A1 CN 2017099858 W CN2017099858 W CN 2017099858W WO 2019024159 A1 WO2019024159 A1 WO 2019024159A1
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WIPO (PCT)
Prior art keywords
detecting
detecting device
optical inspection
inductor
sensing
Prior art date
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Ceased
Application number
PCT/CN2017/099858
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English (en)
French (fr)
Inventor
李坤原
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
HKC Co Ltd
Chongqing HKC Optoelectronics Technology Co Ltd
Original Assignee
HKC Co Ltd
Chongqing HKC Optoelectronics Technology Co Ltd
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Publication date
Application filed by HKC Co Ltd, Chongqing HKC Optoelectronics Technology Co Ltd filed Critical HKC Co Ltd
Priority to US16/634,806 priority Critical patent/US20200386588A1/en
Publication of WO2019024159A1 publication Critical patent/WO2019024159A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • G01D21/02Measuring two or more variables by means not covered by a single other subclass
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/84Systems specially adapted for particular applications
    • G01N21/88Investigating the presence of flaws or contamination
    • G01N21/8803Visual inspection
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B11/00Measuring arrangements characterised by the use of optical techniques
    • G01B11/14Measuring arrangements characterised by the use of optical techniques for measuring distance or clearance between spaced objects or spaced apertures
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01PMEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
    • G01P13/00Indicating or recording presence, absence, or direction, of movement
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N21/00Investigating or analysing materials by the use of optical means, i.e. using sub-millimetre waves, infrared, visible or ultraviolet light
    • G01N21/84Systems specially adapted for particular applications
    • G01N21/88Investigating the presence of flaws or contamination
    • G01N21/8851Scan or image signal processing specially adapted therefor, e.g. for scan signal adjustment, for detecting different kinds of defects, for compensating for structures, markings, edges
    • G01N2021/8887Scan or image signal processing specially adapted therefor, e.g. for scan signal adjustment, for detecting different kinds of defects, for compensating for structures, markings, edges based on image processing techniques
    • G01N2021/8893Scan or image signal processing specially adapted therefor, e.g. for scan signal adjustment, for detecting different kinds of defects, for compensating for structures, markings, edges based on image processing techniques providing a video image and a processed signal for helping visual decision
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F2201/00Constructional arrangements not provided for in groups G02F1/00 - G02F7/00
    • G02F2201/58Arrangements comprising a monitoring photodetector

Definitions

  • the present application relates to the field of optical inspection, and in particular to an optical inspection apparatus and an optical inspection method.
  • the traditional optical giant inspection equipment is a single person corresponding to one device.
  • This method can be understood as one person and one machine, but since the time of personnel inspection and the time of device exchange and positioning are close to 1:1, this means that The personnel waited for half of the time, and the personnel could not perform the inspection work while waiting, resulting in wasted staff time.
  • the devices will be placed side by side. Because the personnel move in the middle, such mobile time consumption still causes time consumption.
  • the main object of the present application is to provide an optical inspection apparatus, which aims to solve the problem of waste and inefficiency of the existing giant inspection personnel.
  • an optical inspection apparatus includes a first detecting device, a second detecting device, and an sensing device.
  • the first detecting device includes a first display device and a first control device, the first control device is connected to the first display device, the first control device is configured to control a state of the first display device;
  • the detecting device includes a second display device and a second control device, the second control device is connected to the second display device, and the second control device is configured to control a state of the second display device; wherein a first display device is disposed opposite to the second display device; the sensing device is configured to sense a target position movement and send a signal to the first control device and the second control device, the sensing device being disposed on the first Between a detecting device and the second detecting device.
  • the sensing device comprises a first inductor connected to the first control device and a second sensor connected to the second control device.
  • the first inductor and the second inductor are symmetrically disposed, and the first sensing The device is disposed on a side close to the first detecting device, and the second sensor is disposed on a side close to the second detecting device.
  • a signal connection is between the first inductor and the second inductor.
  • the first detecting device further includes a first interrupter connected to the first inductor
  • the second detecting device further includes a second interrupter connected to the second inductor
  • the first interrupter and the second interrupter are respectively configured to turn off or turn on the first detecting device or the second detecting according to a position of the target movement sensed by the first sensor and the second sensor The light source of the device.
  • the first interrupter includes a signal receiver for receiving an induced signal of the first inductor
  • the second interrupter also includes a signal for receiving an induced signal of the second inductor receiver.
  • the first detecting device and the second detecting device are arranged side by side.
  • the sensing target position movement is a sensing person position movement, or a robot position movement.
  • the first detecting device and the second detecting device are symmetrically disposed in a mirror image.
  • the first detecting device and the second detecting device perform optical detection of the display panel.
  • the present application further provides an optical inspection method, the optical inspection method comprising the following steps:
  • the step of controlling the turning off and on of the light source in the first detecting device and the second detecting device according to the received target position signal sent by the sensing device comprises: determining whether the target is located near the second detecting a position of the device, when the target is located near the second detecting device, controlling the light source of the first detecting device to be turned off, the light source of the second detecting device is turned on; and determining whether the target is located near the first The position of the detecting device is controlled.
  • the light source of the second detecting device is controlled to be turned off, and the light source of the first detecting device is turned on.
  • the present application further provides an optical inspection apparatus, including a first inspection. Measuring device, second detecting device and sensing device.
  • the first detecting device includes a first display device and a first control device, the first control device is connected to the first display device, the first control device is configured to control a state of the first display device;
  • the detecting device includes a second display device and a second control device, the second control device is connected to the second display device, and the second control device is configured to control a state of the second display device; wherein
  • the first display device is opposite to the second display device and symmetrically disposed;
  • the sensing device is configured to sense a target position movement and send a signal to the first control device and the second control device, the sensing device being disposed at the a line of symmetry between the first detecting device and the second detecting device;
  • the optical inspection device further comprising a lifting device, the lifting device being disposed between the first detecting device and the second detecting device The sensing device is disposed on the lifting device to
  • the optical inspection device is configured such that the first display device and the second display device are oppositely disposed, so that the user only needs to move a small distance when performing optical detection, saving time, and simultaneously operating the first detecting device and the first Two detection devices.
  • an inductive device is disposed between the first detecting device and the second detecting device, and the positional movement of the user when operating the optical giant inspection device is sensed by the sensing device, thereby controlling the first detecting device and the second detecting according to the position of the user moving.
  • the light source of the device is turned off and on.
  • the optical inspection device of the present application can reduce staffing, avoid a large amount of mobile consumption, and can automatically switch the light source, reducing detection interference.
  • FIG. 1 is a schematic structural view of an optical inspection apparatus according to an embodiment of the present application.
  • FIG. 2 is a schematic flow chart of an optical inspection method in an embodiment of the present application.
  • FIG. 3 is a schematic flow chart of another embodiment of an optical inspection method according to an embodiment of the present application.
  • FIG. 4 is a schematic block diagram of an optical inspection system in an embodiment of the present application.
  • FIG. 5 is a schematic block diagram of another embodiment of an optical inspection system according to an embodiment of the present application.
  • FIG. 6 is a block diagram of an apparatus of an optical inspection apparatus according to an embodiment of the present application.
  • first”, “second”, and the like in this application are used for descriptive purposes only, and are not to be construed as indicating or implying their relative importance or implicitly indicating the number of technical features indicated.
  • features defining “first” and “second” may include at least one of the features, either explicitly or implicitly.
  • the meaning of "a plurality” is at least two, such as two, three, etc., unless specifically defined otherwise.
  • fixed may be a fixed connection, or may be a detachable connection, or may be integrated; It may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and may be an internal connection of two elements or an interaction relationship of two elements unless explicitly defined otherwise.
  • fix may be a fixed connection, or may be a detachable connection, or may be integrated; It may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and may be an internal connection of two elements or an interaction relationship of two elements unless explicitly defined otherwise.
  • specific meanings of the above terms in the present application can be understood on a case-by-case basis.
  • the present application proposes an optical inspection device, which aims to solve the problem of waste and inefficiency of the existing giant inspection personnel.
  • the optical inspection apparatus 100 includes:
  • a first detecting device 10 comprising a first display device 11 and a first control device 13, the first control device 13 being connected to the first display device 11, the first control device 13 for controlling the first The state of the display device 11;
  • the second detecting device 20 includes a second display device 21 and a second control device 23, the second control device 23 is connected to the second display device 21, and the second control device 23 is for controlling the second The state of the display device 21;
  • first display device 11 is disposed opposite to the second display device 21;
  • the sensing device 30 is configured to sense a target position movement and send a signal to the first control device 13 and the second control device 23, and the sensing device 30 is disposed at the first detecting device 10 and the second Between the detection devices 20.
  • the first display device 11 and the second display device 21 in the optical inspection device are disposed opposite each other, that is, the first detecting device 10 and the second detecting device 20 are arranged side by side.
  • This design allows the two detectors to be monitored by moving a small distance while performing optical inspections, taking advantage of the time people wait for the machine to operate in place.
  • the optical detecting device since the optical detecting device emits a large amount of light, when the first detecting device 10 and the second detecting device 20 work simultaneously, both devices will emit a large amount of light to interfere with each other's detection.
  • the optical inspection apparatus 100 in this embodiment further includes an inductive device 30 for sensing a target position movement and transmitting a signal to the control device.
  • the sensing device 30 is disposed between the first detecting device 10 and the second detecting device 20, and when the sensing device 30 senses that a person moves from the first detecting device 10 to the second detecting device 20 or senses which one is detected by the person
  • the signal can be sent to the control device, and the control device further controls the light source of the first detecting device 10 to be turned off according to the signal, and controls the light source of the second detecting device 20 to be turned on, thereby avoiding when the person is from the first detecting device 10
  • the light of the first detecting device 10 causes interference to the detection.
  • the optical giant detection device of the embodiment the personnel configuration is effectively reduced, a large amount of mobile consumption is avoided, and the light source can be automatically switched, and the detection interference is reduced.
  • the optical detection can also be implemented by an intelligent robot.
  • the sensing device senses the movement of the target position, and the specific sensing may be the movement of the robot.
  • the sensing device 30 is a position sensing device. By sensing the position at which the person moves, the direction in which the person moves is determined, and then the person is judged from the first detecting device 10 according to the direction in which the person moves. Whether to move to the second detecting device 20 or from the second detecting device 20 to the first detecting device 10, or in another embodiment, to control the light source of the detecting device by sensing which side of the detecting device is located in particular Turn it on or off.
  • the sensing device includes a first sensor 12 coupled to the control device of the first detecting device 10 and a second sensor 22 coupled to the control device of the second detecting device 20.
  • the two sensors are respectively sent to the first control device and the second control device, and the signal transmission and reception are performed on the two sensors and the two control devices, respectively, improving the transmission and analysis efficiency.
  • first inductor 12 and the second inductor 22 are symmetrically disposed, and the first inductor 12 is disposed on a side close to the first detecting device 10, and the second inductor 22 is disposed in a vicinity of the second detecting device 20. side.
  • the first inductor 12 and the second inductor 22 are symmetrically arranged, not only structurally beautiful, but also the first sensor 12 is connected to the first detecting device 10, and the second sensor 22 is connected to the second detecting device 20.
  • the first sensor 12 and the second sensor 22 sense the order in which the position of the person is moved or the position of the person determines whether the light sources of the first detecting device 10 and the second detecting device 20 are turned on or off. Therefore, in the embodiment, the first inductor 12 and the second inductor 22 are disposed on both sides.
  • a signal connection is between the first inductor 12 and the second inductor 22.
  • the first inductor 12 and the second inductor 22 are connected in signal so that they can transmit signals to each other.
  • the first detecting device 10 further includes a first interrupter 14 connected to the first inductor 12, and the second detecting device 20 further includes a second interrupter 24 connected to the second inductor 22, the first interrupter 14 and the second interrupter 24 are respectively configured to close or turn on the first detecting device 10 or the second detecting device 20 according to the position of the person's movement sensed by the first sensor 12 and the second sensor 22 or the position where the person finally stands.
  • Light source In this embodiment, the first detecting device 10 and the second detecting device 20 are respectively provided with a first interrupter 14 and a second interrupter 24, and the first interrupter 14 and the second interrupter 24 are used for turning off or turning on the light source.
  • the second sensor 22 sends a signal of the sensed person movement to the second circuit breaker 24, and the first sensor 12 senses The incoming signal precedes the second sensor 22, the first interrupter 14 turns off the light source of the first detecting device 10, and the second interrupter 24 does not.
  • the first interrupter 14 includes a signal receiver for receiving the first sensor 12, and the second interrupter 24 also includes signal reception for receiving the sensing signal of the second sensor 22. Device. By receiving signal reception of the received signal in the first interrupter 14 and the second interrupter 24 The receivers are configured to receive signals transmitted by the first sensor 12 and the second sensor 22.
  • the first detecting device 10 and the second detecting device 20 are mirror-symmetrically arranged.
  • the first detecting device 10 and the second detecting device 20 are mirror-symmetrically arranged, so that when performing optical detection, a person can simultaneously operate two detecting devices.
  • the device 20 performs the operation of the second detecting device 20, fully utilizes the waiting time of the personnel, improves the work efficiency, and simultaneously operates two machines by one person, thereby reducing the staffing.
  • the sensing device 30 is disposed on the symmetry line of the first detecting device 10 and the second detecting device 20, so that the spacing between the sensing device 30 and the first detecting device 10 and the second detecting device 20 is the same.
  • the reduction sensing device 30 senses the deviation of the detecting devices on both sides due to the different distances.
  • the optical inspection apparatus further includes a lifting device (not shown), the lifting device is disposed between the first detecting device and the second detecting device, and the sensing device is disposed on the lifting device To adjust the height of the sensing device setting.
  • the height of the sensing device is adjusted by the lifting device, and the height of the sensing device can be adjusted according to the height of different detecting personnel, thereby improving the sensitivity of the sensing device to sense the position of the person.
  • the optical inspection method includes the following steps:
  • Step S10 receiving a target position signal sent by the sensing device 30;
  • Step S20 controlling the turning off and on of the light source in the first detecting device 10 and the second detecting device 20 according to the received target position signal sent by the sensing device.
  • the control device in the first detecting device 10 and the second detecting device 20 receives the personnel position signal sent by the sensing device 30.
  • the control device will control the first The light source of the detecting device 10 is turned on, and the light source of the second detecting device 20 is controlled to be turned off; when the person is located at the second detecting device 20, the control device turns off the light source that controls the first detecting device 10, and controls the light source of the second detecting device 20 to be turned on. .
  • the steps of controlling the turning off and on of the light sources in the first detecting device 10 and the second detecting device 20 according to the received user position signal in the above steps include:
  • Step S21 determining whether the target is located close to the second detecting device 20, and when the target user is located close to the second detecting device 20, controlling the light source of the first detecting device 10 to be turned off, and the light source of the second detecting device 20 Open
  • Step S22 determining whether the target is located close to the first detecting device 10, when the target user bit At a position close to the first detecting device 10, the light source of the second detecting device 20 is controlled to be turned off, and the light source of the first detecting device 10 is turned on.
  • the position of the user moving controls the closing and opening of the light sources of the first detecting device 10 and the second detecting device 20.
  • the sensing device 30 includes the first sensor 12 and the second sensor 22, the light sources of the first detecting device 10 and the second detecting device 20 are controlled according to the order of the sensing signals received by the control device. For example, when the first sensor 12 first receives the position signal of the person, the first sensor 12 first sends a signal to the control device of the first detecting device 10 or the first interrupter, and the control device controls the first detecting device 10 The light source is turned on, and the light source of the second detecting device 20 is controlled to be turned off; when the second sensor 22 receives the position signal of the person, the second sensor 22 sends a signal to the control device of the second detecting device 20 or the second interrupter. The control device controls the light source of the second detecting device 20 to be turned on, and controls the light source of the first detecting device 10 to be turned off. With this control method, the two detecting devices are prevented from causing interference with each other during the detecting process.
  • the prepared display panel is installed in the optical detecting device, and the user operates in front of the optical detecting device.
  • Two oppositely disposed optical detecting devices are respectively mounted with a display panel to be tested, and the user first debugs the parameters of the first detecting device 10, etc., at this time, the light source of the first detecting device 10 is turned on to facilitate user debugging;
  • the debugging of the second detecting device 20 is continued, at which time the user will move from the position of the first detecting device 10 to the second detecting device 20, and the first sensor 12 and the second sensor
  • the sensor 22 can sense the location information of the user.
  • the first sensor When the first sensor senses the position of the user, it indicates that the user is located at one side of the first detecting device 10 at this time, and the second sensor 22 sends a signal to the second control device, thereby controlling the second detecting device 20
  • the light source is off.
  • the second sensor 22 When the user moves to one side of the second detecting device 20, the second sensor 22 will sense the position information of the user.
  • the first sensor 12 sends a signal to the first control device of the first detecting device 10.
  • the light source of the first detecting device is controlled to be turned off, and the user further debugs the parameters of the second detecting device 20 and the like, so that the second detecting device 20 simultaneously performs optical detection of the display panel.
  • the display panel can be an LCD display panel, an OLED display panel, a QLED display panel, a curved display panel, or other display panel.
  • the optical inspection apparatus 100 of the present application includes the following modules:
  • the receiving module 101 is configured to receive a target position signal sent by the sensing device 30;
  • the control module 102 is configured to control the turning off and on of the light sources in the first detecting device 10 and the second detecting device 20 according to the received target position signal.
  • the receiving module 101 and the control module 102 are both disposed in the first detecting device 10 and the second detecting device 20.
  • the control module 102 in the first detecting device 10 and the second detecting device 20 receives the person position signal transmitted by the sensing device 30. For example, when the person is located in the first detecting device 10, the control module 102 will control the first detecting device 10 The light source is turned on, and the light source of the second detecting device 20 is controlled to be turned off; when the person is located at the second detecting device 20, the control module 102 turns off the light source that controls the first detecting device 10, and controls the light source of the second detecting device 20 to be turned on.
  • control module 102 includes:
  • the first determining unit 102a is configured to determine whether the target is located near the second detecting device 20, and when the target user is located close to the second detecting device 20, control the light source of the first detecting device 10 to be turned off, and the second detecting The light source of device 20 is turned on;
  • the second determining unit 102b is configured to determine whether the target is located close to the first detecting device 10, and when the target user is located close to the first detecting device 10, control the light source of the second detecting device 20 to be turned off, the first detecting The light source of device 10 is turned on.
  • the position of the user moving controls the closing and opening of the light sources of the first detecting device 10 and the second detecting device 20.
  • the sensing device 30 includes the first sensor 12 and the second sensor 22
  • the light sources of the first detecting device 10 and the second detecting device 20 are controlled according to the order of the sensing signals received by the control module 102.
  • the first sensor 12 first receives the position signal of the person
  • the first sensor 12 first sends a signal to the control device of the first detecting device 10 or the first interrupter 14, and the control module 102 will control the first detection.
  • the light source of the device 10 is turned on, and the light source of the second detecting device 20 is controlled to be turned off; when the second sensor 22 receives the position signal of the person, the second sensor 22 sends a signal to the control device of the second detecting device 20 or the second
  • the circuit breaker 24 controls the control unit 102 to turn on the light source that controls the second detecting device 20 to control the light source of the first detecting device 10 to be turned off. With this control method, the two detecting devices are prevented from causing interference with each other during the detecting process.
  • the optical inspection apparatus 100 of the present application can be used to detect various electronic devices, such as display devices, but is not limited thereto. When applied to the detection of a display device, it can be used to detect the display panel.
  • the prepared display panel is installed in the optical detecting device, and the user operates in front of the optical detecting device.
  • Two oppositely disposed optical detecting devices are respectively mounted with a display panel to be tested, and the user first debugs the parameters of the first detecting device 10, etc., at this time, the light source of the first detecting device 10 is turned on to facilitate user debugging;
  • the debugging of the second detecting device 20 is continued, at which time the user will move from the position of the first detecting device 10 to the second detecting device 20, and the first sensor 12 and the second sensor
  • the sensor 22 can sense the location information of the user.
  • the first sensor 12 When the first sensor 12 senses the position of the user, it indicates that the user is located at one side of the first detecting device 10, and the second sensor 22 sends a signal to the second control device 23, thereby controlling the second detecting.
  • the light source of device 20 is turned off.
  • the second sensor 22 When the user moves to one side of the second detecting device 20, the second sensor 22 will sense the position information of the user. At this time, the first sensor 12 sends a signal to the first control device of the first detecting device 10. 13. Further, the light source of the first detecting device 10 is controlled to be turned off, and the user further debugs the parameters of the second detecting device 20 and the like, so that the second detecting device 20 simultaneously performs optical detection of the display panel.
  • the display panel can be an LCD display panel, an OLED display panel, a QLED display panel, a curved display panel, or other display panel.

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Abstract

一种光学检查设备及光学检查方法,该光学检查设备(100)包括;第一检测装置(10),包括第一显示装置(11)和第一控制装置(13),第一控制装置(13)与第一显示装置(11)连接,第一控制装置(13)用于控制第一显示装置(11)的状态;第二检测装置(20),包括第二显示装置(21)和第二控制装置(23),第二控制装置(23)与第二显示装置(21)连接,第二控制装置(23)用于控制第二显示装置(21)的状态;其中,第一显示装置(11)与第二显示装置(12)相对设置;以及感应装置(30),用于感应目标位置移动并将信号发送至第一控制装置(13)与第二控制装置(23),感应装置(30)设置于第一检测装置(10)和第二检测装置(20)之间。该光学检查设备(100)可以减少人员配置,避免了大量移动消耗,并且可自动切换光源,减少了检测干扰。

Description

光学检查设备及光学检查方法 技术领域
本申请涉及光学检测领域,尤其涉及一种光学检查设备及光学检查方法。
背景技术
传统的光学巨观检查设备都是单独一人对应一台设备,这种方法可以理解为一人一机,但由于人员检查的时间与设备交换片及定位的时间接近1:1的时间,这意味着人员有一半的时间在等待,并且等待的时候人员无法进行检查作业,造成人员时间上的浪费。一般若要克服这样的问题都会将设备并排在一起,由于人员在中间移动,这样的移动时间消耗仍然造成时间上的消耗,后续就有将两台设备镜像设计的方式,并排减少人员的移动时间损耗,但这样两台相对设置的设备的光源会相互干扰,影响检测结果,同时时间的利用上也仍存在可改进的空间。
发明内容
本申请的主要目的是提供一种光学检查设备,旨在解决现有的巨观检查人员浪费、效率低下的问题。
为实现上述目的,本申请提出的光学检查设备,包括第一检测装置、第二检测装置以及感应装置。第一检测装置包括第一显示装置和第一控制装置,所述第一控制装置与所述第一显示装置连接,所述第一控制装置用于控制所述第一显示装置的状态;第二检测装置包括第二显示装置和第二控制装置,所述第二控制装置与所述第二显示装置连接,所述第二控制装置用于控制所述第二显示装置的状态;其中,所述第一显示装置与所述第二显示装置相对设置;感应装置用于感应目标位置移动并将信号发送至所述第一控制装置与所述第二控制装置,所述感应装置设置于所述第一检测装置和所述第二检测装置之间。
可选地,所述感应装置包括与所述第一控制装置相连的第一感应器和与所述第二控制装置相连的第二感应器。
可选地,所述第一感应器和所述第二感应器对称设置,且所述第一感应 器设置在靠近所述第一检测装置的一侧,所述第二感应器设置在靠近所述第二检测装置的一侧。
可选地,所述第一感应器与所述第二感应器之间信号连接。
可选地,所述第一检测装置还包括与所述第一感应器连接的第一遮断器,所述第二检测装置还包括与所述第二感应器连接的第二遮断器,所述第一遮断器和所述第二遮断器分别用于根据所述第一感应器和所述第二感应器感应到的目标移动的位置关闭或开启所述第一检测装置或所述第二检测装置的光源。
可选地,所述第一遮断器包括用于接收所述第一感应器的感应信号的信号接收器,所述第二遮断器也包括用于接收所述第二感应器的感应信号的信号接收器。
可选地,所述第一检测装置和所述第二检测装置并排间隔设置。
可选地,所述感应目标位置移动是感应人员位置移动、或机器人位置移动。
可选地,所述第一检测装置与所述第二检测装置镜像对称设置。
可选地,所述第一检测装置和所述第二检测装置是进行显示面板的光学检测。
此外,为实现上述目的,本申请还提供一种光学检查方法,所述光学检查方法包括如下步骤:
接收感应装置发送过来的目标位置信号;以及根据接收到的所述感应装置发送的目标位置信号,控制第一检测装置和第二检测装置内光源的关闭和开启。
可选地,所述根据接收到的所述感应装置发送的目标位置信号,控制第一检测装置和第二检测装置内光源的关闭和开启的步骤包括:判断目标是否位于靠近所述第二检测装置的位置,当目标位于靠近所述第二检测装置的位置时,则控制所述第一检测装置的光源关闭,所述第二检测装置的光源开启;及判断目标是否位于靠近所述第一检测装置的位置,当目标位于靠近所述第一检测装置的位置时,则控制所述第二检测装置的光源关闭,所述第一检测装置的光源开启。
此外,为实现上述目的,本申请还提供一种光学检查设备,包括第一检 测装置、第二检测装置以及感应装置。第一检测装置包括第一显示装置和第一控制装置,所述第一控制装置与所述第一显示装置连接,所述第一控制装置用于控制所述第一显示装置的状态;第二检测装置包括第二显示装置和第二控制装置,所述第二控制装置与所述第二显示装置连接,所述第二控制装置用于控制所述第二显示装置的状态;其中,所述第一显示装置与所述第二显示装置相对且对称设置;感应装置用于感应目标位置移动并将信号发送至所述第一控制装置与所述第二控制装置,所述感应装置设置于所述第一检测装置和所述第二检测装置之间的对称线上;所述光学检查设备还包括升降装置,所述升降装置设置在所述第一检测装置与所述第二检测装置之间,所述感应装置设置在所述升降装置上,以调节所述感应装置设置的高度。
本申请技术方案中,该光学检查设备通过将第一显示装置和第二显示装置相对设置,使得用户在进行光学检测时只需移动少量距离,节约时间,并且可以同时操作第一检测装置和第二检测装置。同时在第一检测装置和第二检测装置之间设置感应装置,通过感应装置感应用户在操作光学巨观检查设备时的位置移动,从而根据用户移动的位置来控制第一检测装置和第二检测装置的光源的关闭和开启。
本申请的光学检查设备可以减少人员配置,避免了大量移动消耗,并且可自动切换光源,减少了检测干扰。
附图说明
为了更清楚地说明本申请实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图示出的结构获得其他的附图。
图1为本申请实施例中光学检查设备的结构示意图;
图2为本申请实施例中光学检查方法的流程示意图;
图3为本申请实施例中光学检查方法另一实施例的流程示意图;
图4为本申请实施例中光学检查系统的模块示意图;
图5为本申请实施例中光学检查系统另一实施例的模块示意图;以及
图6为本申请实施例中光学检查设备的装置模块图。
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本申请的一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有作出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
需要说明,本申请实施例中所有方向性指示(诸如上、下、左、右、前、后……)仅用于解释在某一特定姿态(如附图所示)下各部件之间的相对位置关系、运动情况等,如果该特定姿态发生改变时,则该方向性指示也相应地随之改变。
另外,在本申请中如涉及“第一”、“第二”等的描述仅用于描述目的,而不能理解为指示或暗示其相对重要性或者隐含指明所指示的技术特征的数量。由此,限定有“第一”、“第二”的特征可以明示或者隐含地包括至少一个该特征。在本申请的描述中,“多个”的含义是至少两个,例如两个,三个等,除非另有明确具体的限定。
在本申请中,除非另有明确的规定和限定,术语“连接”、“固定”等应做广义理解,例如,“固定”可以是固定连接,也可以是可拆卸连接,或成一体;可以是机械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连,可以是两个元件内部的连通或两个元件的相互作用关系,除非另有明确的限定。对于本领域的普通技术人员而言,可以根据具体情况理解上述术语在本申请中的具体含义。
另外,本申请各个实施例之间的技术方案可以相互结合,但是必须是以本领域普通技术人员能够实现为基础,当技术方案的结合出现相互矛盾或无法实现时应当认为这种技术方案的结合不存在,也不在本申请要求的保护范围之内。
本申请提出一种光学检查设备,旨在解决现有的巨观检查人员浪费、效率低下的问题。
请参照图1和图6,在本申请一实施例中,该光学检查设备100包括:
第一检测装置10,包括第一显示装置11和第一控制装置13,所述第一控制装置13与所述第一显示装置11连接,所述第一控制装置13用于控制所述第一显示装置11的状态;
第二检测装置20,包括第二显示装置21和第二控制装置23,所述第二控制装置23与所述第二显示装置21连接,所述第二控制装置23用于控制所述第二显示装置21的状态;
其中,所述第一显示装置11与所述第二显示装置21相对设置;以及
感应装置30,用于感应目标位置移动并将信号发送至所述第一控制装置13与所述第二控制装置23,所述感应装置30设置于所述第一检测装置10和所述第二检测装置20之间。
本实施例中,将光学检查设备中的第一显示装置11与第二显示装置21相对设置,即第一检测装置10和第二检测装置20并排间隔设置。这样的设计使得人员在进行光学检测时,移动少量的距离就可对两台检测装置进行监控,充分利用了人员在等待机器操作到位时的时间。同时由于光学检测装置均会发出大量的光,因此第一检测装置10和第二检测装置20同时工作时,两台机器都将发出大量的光而对彼此的检测造成干扰。为了避免这种情况的出现,本实施例中的光学检查设备100还包括用于感应目标位置移动并将信号发送至控制装置的感应装置30。该感应装置30设置于第一检测装置10和第二检测装置20之间,当感应装置30感应到人员从第一检测装置10向第二检测装置20移动时或者感应到人员靠近哪一台检测装置时,可将该信号发送至控制装置,控制装置进一步地根据该信号控制第一检测装置10的光源关闭,控制第二检测装置20的光源开启,从而避免了当人员从第一检测装置10移动到第二检测装置20进行光学检测时,第一检测装置10的光对检测造成干扰。采用本实施例的光学巨观检测设备,有效地减少了人员配置,避免了大量移动消耗,并且可自动切换光源,减少了检测干扰。
当然在其他实施例中,光学检测也可以通过智能机器人来实现,此时感应装置感应目标位置移动,具体感应的可以是机器人的移动。
可选地,感应装置30为位置感应装置。通过感应人员移动的位置,判断人员移动的方向,进而根据人员移动的方向判断出人员是从第一检测装置10 向第二检测装置20移动还是从第二检测装置20向第一检测装置10移动,或者在另一实施例中,通过感应人员具体位于靠近哪一个检测装置的一边,进而来控制检测装置的光源的开启或关闭。
作为上一实施例的优选方案,感应装置包括与第一检测装置10的控制装置相连的第一感应器12和与第二检测装置20的控制装置相连的第二感应器22。通过设置两个感应器分别将感应到的信号发送给第一控制装置与第二控制装置,信号的发送和接收分别在两个感应器和两个控制装置上完成,提高传送和分析效率。
进一步地,第一感应器12和第二感应器22对称设置,且第一感应器12设置在靠近第一检测装置10的一侧,第二感应器22设置在靠近第二检测装置20的一侧。将第一感应器12和第二感应器22对称设置,不仅是结构上的美观,而且第一感应器12与第一检测装置10是连接的,第二感应器22与第二检测装置20连接,第一感应器12和第二感应器22感应到人员位置移动的顺序或者人员具体的位置决定了第一检测装置10和第二检测装置20的光源是开启还是关闭的状态。因此,本实施例中将第一感应器12和第二感应器22分设于两侧。
可选地,第一感应器12和第二感应器22之间信号连接。本实施例中使第一感应器12和第二感应器22信号连接,使其可以相互传输信号。
可选地,第一检测装置10还包括与第一感应器12连接的第一遮断器14,第二检测装置20还包括与第二感应器22连接的第二遮断器24,第一遮断器14和第二遮断器24分别用于根据第一感应器12和第二感应器22感应到的人员移动的位置或者人员最终站定的位置关闭或开启第一检测装置10或第二检测装置20的光源。本实施例中,在第一检测装置10和第二检测装置20都分别设置第一遮断器14和第二遮断器24,第一遮断器14和第二遮断器24用于关闭或开启光源,当第一感应器12将感应到的人员移动的信号发送至第一遮断器14,第二感应器22将感应到的人员移动的信号发送至第二遮断器24,并且第一感应器12感应到的信号先于第二感应器22,则第一遮断器14关闭第一检测装置10的光源,而第二遮断器24则不进行操作。
作为上一实施例的可选方式,第一遮断器14包括用于接收第一感应器12的信号接收器,第二遮断器24也包括用于接收第二感应器22的感应信号的信号接收器。通过在第一遮断器14和第二遮断器24内设置接收信号的信号接收 器来实现对第一感应器12和第二感应器22发送过来的信号的接收。
可选地,第一检测装置10和第二检测装置20镜像对称设置。镜像对称设置的第一检测装置10和第二检测装置20,使得人员在进行光学检测时,可以同时操作两台检测装置,当第一检测装置10的操作到位时,人员可以转移到第二检测装置20,进行第二检测装置20的操作,充分利用了人员等待的时间,提高了工作效率,同时,一人操作两台机器,也减少了人员配置。并且所述感应装置30设置在所述第一检测装置10和所述第二检测装置20的对称线上,从而使感应装置30到第一检测装置10与第二检测装置20的间距相同,以减小感应装置30感应两侧检测装置由于距离不相同而带来的偏差。
此外,所述光学检查设备还包括升降装置(未图示),所述升降装置设置在所述第一检测装置与所述第二检测装置之间,所述感应装置设置在所述升降装置上,以调节所述感应装置设置的高度。通过升降装置来调节感应装置的高度,进而可以根据不同检测人员的身高来调整感应装置的高度,提高了感应装置感应人员位置的灵敏性。
本申请还提出一种光学检查方法,参照图2,所述光学检查方法包括如下步骤:
步骤S10,接收感应装置30发送过来的目标位置信号;
步骤S20,根据接收到的感应装置发送的目标位置信号,控制第一检测装置10和第二检测装置20内光源的关闭和开启。
本实施例中,第一检测装置10和第二检测装置20中的控制装置接收感应装置30发送过来的人员位置信号,例如,当人员位于第一检测装置10时,则控制装置将控制第一检测装置10的光源开启,控制第二检测装置20的光源关闭;当人员位于第二检测装置20时,则控制装置将控制第一检测装置10的光源关闭,控制第二检测装置20的光源开启。
其中,参照图3,上述步骤中根据接收到的用户位置信号,控制第一检测装置10和第二检测装置20内光源的关闭和开启的步骤包括:
步骤S21,判断目标是否位于靠近第二检测装置20的位置,当目标用户位于靠近第二检测装置20的位置时,则控制所述第一检测装置10的光源关闭,第二检测装置20的光源开启;
步骤S22,判断目标是否位于靠近第一检测装置10的位置,当目标用户位 于靠近第一检测装置10的位置,则控制所述第二检测装置20的光源关闭,第一检测装置10的光源开启。
具体地,在对第一检测装置10和第二检测装置20的光源进行控制时,主要通过用户移动的位置来判断用户是位于第一检测装置10还是位于第二检测装置20,进而根据人员的位置来控制第一检测装置10和第二检测装置20的光源的关闭和开启。
当感应装置30包括第一感应器12和第二感应器22,则根据控制装置接收到的感应信号的先后顺序来控制第一检测装置10和第二检测装置20的光源。如,当第一感应器12先接收到人员的位置信号,则第一感应器12先将信号发送至第一检测装置10的控制装置或第一遮断器,控制装置将控制第一检测装置10的光源开启,控制第二检测装置20的光源关闭;当第二感应器22接收到人员的位置信号,则第二感应器22将信号发送至第二检测装置20的控制装置或第二遮断器,控制装置将控制第二检测装置20的光源开启,控制第一检测装置10的光源关闭;采用这种控制方式,防止了两台检测装置在检测过程中彼此造成干扰。
具体地,应用在显示面板的生产中,在对显示面板进行光学检测时,将制备好的显示面板安装在光学检测装置内,用户在光学检测装置前操作。两台相对设置的光学检测装置均安装有待测的显示面板,用户先调试好第一检测装置10的参数等,此时该第一检测装置10的光源开启,以方便用户进行调试;待该第一检测装置10的调试工作准备好后,继续第二检测装置20的调试,此时用户将从第一检测装置10的位置向第二检测装置20移动,而第一感应器12和第二感应器22则可以感应到用户的位置信息。当第一感应器感应到用户的位置时,则表明用户此时位于第一检测装置10的一侧,此时第二感应器22将信号发送至第二控制装置,进而控制第二检测装置20的光源关闭。而当用户移动到第二检测装置20的一侧时,第二感应器22将感应到用户的位置信息,此时,第一感应器12将信号发送至第一检测装置10的第一控制装置,进而控制第一检测装置的光源关闭,用户则进一步地调试第二检测装置20的参数等,使第二检测装置20同时进行显示面板的光学检测。
具体的,显示面板可为LCD显示面板、OLED显示面板、QLED显示面板、曲面显示面板或其他显示面板。
参照图4,本申请光学检查设备100包括如下模块:
接收模块101,用于接收感应装置30发送过来的目标位置信号;以及
控制模块102,用于根据接收到的目标位置信号,控制第一检测装置10和第二检测装置20内光源的关闭和开启。
本实施例中,所述接收模块101与所述控制模块102均设置于所述第一检测装置10以及第二检测装置20中。第一检测装置10和第二检测装置20中的控制模块102接收感应装置30发送过来的人员位置信号,例如,当人员位于第一检测装置10时,则控制模块102将控制第一检测装置10的光源开启,控制第二检测装置20的光源关闭;当人员位于第二检测装置20时,则控制模块102将控制第一检测装置10的光源关闭,控制第二检测装置20的光源开启。
进一步地,参照图5,所述控制模块102包括:
第一判断单元102a,用于判断目标是否位于靠近第二检测装置20的位置,当目标用户位于靠近第二检测装置20的位置,则控制所述第一检测装置10的光源关闭,第二检测装置20的光源开启;以及
第二判断单元102b,用于判断目标是否位于靠近第一检测装置10的位置,当目标用户位于靠近第一检测装置10的位置,则控制所述第二检测装置20的光源关闭,第一检测装置10的光源开启。
具体地,在对第一检测装置10和第二检测装置20的光源进行控制时,主要通过用户移动的位置来判断用户是位于第一检测装置10还是位于第二检测装置20,进而根据人员的位置来控制第一检测装置10和第二检测装置20的光源的关闭和开启。
当感应装置30包括第一感应器12和第二感应器22,则根据控制模块102接收到的感应信号的先后顺序来控制第一检测装置10和第二检测装置20的光源。如,当第一感应器12先接收到人员的位置信号,则第一感应器12先将信号发送至第一检测装置10的控制装置或第一遮断器14,控制模块102将控制第一检测装置10的光源开启,控制第二检测装置20的光源关闭;当第二感应器22接收到人员的位置信号,则第二感应器22将信号发送至第二检测装置20的控制装置或第二遮断器24,控制模块102将控制第二检测装置20的光源开启,控制第一检测装置10的光源关闭;采用这种控制方式,防止了两台检测装置在检测过程中彼此造成干扰。
本申请的光学检查设备100可以用于检测各种电子装置,诸如显示装置,然而不限于此。应用于显示装置的检测时,可以用于对显示面板进行检测。
具体地,应用在显示面板的生产中,在对显示面板进行光学检测时,将制备好的显示面板安装在光学检测装置内,用户在光学检测装置前操作。两台相对设置的光学检测装置均安装有待测的显示面板,用户先调试好第一检测装置10的参数等,此时该第一检测装置10的光源开启,以方便用户进行调试;待该第一检测装置10的调试工作准备好后,继续第二检测装置20的调试,此时用户将从第一检测装置10的位置向第二检测装置20移动,而第一感应器12和第二感应器22则可以感应到用户的位置信息。当第一感应器12感应到用户的位置时,则表明用户此时位于第一检测装置10的一侧,此时第二感应器22将信号发送至第二控制装置23,进而控制第二检测装置20的光源关闭。而当用户移动到第二检测装置20的一侧时,第二感应器22将感应到用户的位置信息,此时,第一感应器12将信号发送至第一检测装置10的第一控制装置13,进而控制第一检测装置10的光源关闭,用户则进一步地调试第二检测装置20的参数等,使第二检测装置20同时进行显示面板的光学检测。
具体的,显示面板可为LCD显示面板、OLED显示面板、QLED显示面板、曲面显示面板或其他显示面板。
以上所述仅为本申请的优选实施例,并非因此限制本申请的专利范围,凡是在本申请的构思下,利用本申请说明书及附图内容所作的等效结构变换,或直接/间接运用在其他相关的技术领域均包括在本申请的专利保护范围内。

Claims (20)

  1. 一种光学检查设备,包括:
    第一检测装置,包括第一显示装置和第一控制装置,所述第一控制装置与所述第一显示装置连接,所述第一控制装置用于控制所述第一显示装置的状态;
    第二检测装置,包括第二显示装置和第二控制装置,所述第二控制装置与所述第二显示装置连接,所述第二控制装置用于控制所述第二显示装置的状态;
    其中,所述第一显示装置与所述第二显示装置相对设置;以及
    感应装置,用于感应目标位置移动并将信号发送至所述第一控制装置与所述第二控制装置,所述感应装置设置于所述第一检测装置和所述第二检测装置之间。
  2. 根据权利要求1所述的光学检查设备,其中,所述感应装置包括与所述第一控制装置相连的第一感应器和与所述第二控制装置相连的第二感应器。
  3. 根据权利要求2所述的光学检查设备,其中,所述第一感应器和所述第二感应器对称设置,且所述第一感应器设置在靠近所述第一检测装置的一侧,所述第二感应器设置在靠近所述第二检测装置的一侧。
  4. 根据权利要求2所述的光学检查设备,其中,所述第一感应器与所述第二感应器之间信号连接。
  5. 根据权利要求2所述的光学检查设备,其中,所述第一检测装置还包括与所述第一感应器连接的第一遮断器,所述第二检测装置还包括与所述第二感应器连接的第二遮断器,所述第一遮断器和所述第二遮断器分别用于根据所述第一感应器和所述第二感应器感应到的目标移动的位置关闭或开启所述第一检测装置或所述第二检测装置的光源。
  6. 根据权利要求5所述的光学检查设备,其中,所述第一遮断器包括用于接收所述第一感应器的感应信号的信号接收器,所述第二遮断器也包括用于接收所述第二感应器的感应信号的信号接收器。
  7. 根据权利要求1所述的光学检查设备,其中,所述第一检测装置和所述第二检测装置并排间隔设置。
  8. 根据权利要求1所述的光学检查设备,其中,所述感应目标位置移动是感应人员位置移动、或机器人位置移动。
  9. 根据权利要求1所述的光学检查设备,其中,所述第一检测装置与所述第二检测装置镜像对称设置。
  10. 根据权利要求9所述的光学检查设备,其中,所述第一检测装置和所述第二检测装置是进行显示面板的光学检测。
  11. 一种光学检查方法,包括如下步骤:
    接收感应装置发送的目标位置信号;以及
    根据接收到的所述感应装置发送的目标位置信号,控制第一检测装置和第二检测装置内光源的关闭和开启。
  12. 根据权利要求11所述的光学检查方法,其中,所述根据接收到的所述感应装置发送的目标位置信号,控制第一检测装置和第二检测装置内光源的关闭和开启的步骤包括:
    判断目标是否位于靠近所述第二检测装置的位置,当目标位于靠近所述第二检测装置的位置时,则控制所述第一检测装置的光源关闭,所述第二检测装置的光源开启;及
    判断目标是否位于靠近所述第一检测装置的位置,当目标位于靠近所述第一检测装置的位置时,则控制所述第二检测装置的光源关闭,所述第一检测装置的光源开启。
  13. 一种光学检查设备,包括:
    第一检测装置,包括第一显示装置和第一控制装置,所述第一控制装置与所述第一显示装置连接,所述第一控制装置用于控制所述第一显示装置的状态;
    第二检测装置,包括第二显示装置和第二控制装置,所述第二控制装置与所述第二显示装置连接,所述第二控制装置用于控制所述第二显示装置的状态;
    其中,所述第一显示装置与所述第二显示装置相对且对称设置;以及
    感应装置,用于感应目标位置移动并将信号发送至所述第一控制装置与所述第二控制装置,所述感应装置设置于所述第一检测装置和所述第二检测装置之间的对称线上;
    所述光学检查设备还包括升降装置,所述升降装置设置在所述第一检测装置与所述第二检测装置之间,所述感应装置设置在所述升降装置上,以调节所述感应装置设置的高度。
  14. 根据权利要求13所述的光学检查设备,其中,所述感应装置包括与所述第一控制装置相连的第一感应器和与所述第二控制装置相连的第二感应器。
  15. 根据权利要求14所述的光学检查设备,其中,所述第一感应器和所述第二感应器对称设置,且所述第一感应器设置在靠近所述第一检测装置的一侧,所述第二感应器设置在靠近所述第二检测装置的一侧。
  16. 根据权利要求14所述的光学检查设备,其中,所述第一感应器与所述第二感应器之间信号连接。
  17. 根据权利要求14所述的光学检查设备,其中,所述第一检测装置还包括与所述第一感应器连接的第一遮断器,所述第二检测装置还包括与所述第二感应器连接的第二遮断器,所述第一遮断器和所述第二遮断器分别用于根据所述第一感应器和所述第二感应器感应到的目标移动的位置关闭或开启所述第一检测装置或所述第二检测装置的光源。
  18. 根据权利要求17所述的光学检查设备,其中,所述第一遮断器包括用于接收所述第一感应器的感应信号的信号接收器,所述第二遮断器也包括用于接收所述第二感应器的感应信号的信号接收器。
  19. 根据权利要求13所述的光学检查设备,其中,所述第一检测装置与所述第二检测装置镜像对称设置。
  20. 根据权利要求19所述的光学检查设备,其中,所述第一检测装置和所述第二检测装置是进行显示面板的光学检测。
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