A laser photoelectric glass detection device
Patent Information
- Application Number
- CN202522323221.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-03
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-11-03
AI Technical Summary
[0004]本实用新型的目的在于提供一种激光光电玻璃检测装置,旨在解决现有的光电传感器为美国LOCON公司生产的产品,在装配过程中需对原装置支架进行改动才可实现更换,进而导致便捷较低的问题
[0010]本实用新型的一种激光光电玻璃检测装置,在进行对光电玻璃的检测作业时,将所述发射极配合所述第一装配件装配在所述第一支撑件上然后通过所述第一锁紧旋钮进行固定,所述接收极配合所述第二装配件装配在所述第二支撑件上然后通过所述第二锁紧旋钮进行固定,当所述发射极和所述接收极固定好后,将所述第一支撑件和所述第二支撑件分别装配在,光热玻璃加工线两侧,使得所述发射极和所述接收极呈镜像设置,通电后,当有玻璃经过所述发射极中间位置时,所述接收极光线被阻断,输出端常开点触发接通,将高电平信号传至驱动器,完成信号触发,从而解决了现有的光电传感器为美国LOCON公司生产的产品,在装配过程中需对原装置支架进行改动才可实现更换,进而导致便捷较低的问题。
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Figure CN224816240U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of production and processing technology of slotted mirror photothermal glass, and in particular to a laser photoelectric glass inspection device. Background Technology
[0002] In the production and processing of trough-type mirror heat-cooled glass, a photoelectric sensor needs to be installed before the glass exits the furnace acceleration section. The photoelectric sensor verifies the glass position calculated by the servo and determines whether the glass condition is normal. If so, the glass is accelerated to the forming section for tempering or returned to the inlet waste collection box, thereby ensuring the safety of the tempering furnace equipment.
[0003] Currently, the existing photoelectric sensors are products manufactured by LOCON in the United States. During the assembly process, the original device bracket needs to be modified to replace them, which results in low convenience. Utility Model Content
[0004] The purpose of this invention is to provide a laser optoelectronic glass inspection device, which aims to solve the problem that existing optoelectronic sensors are products manufactured by LOCON Corporation of the United States, and that the original device bracket needs to be modified during the assembly process to replace them, resulting in low convenience.
[0005] To achieve the above objectives, this utility model provides a laser optoelectronic glass detection device, including a first support member, a second support member, an emitter, a signal status indicator light, a receiver, a first assembly, a second assembly, a first locking knob, and a second locking knob. The transmitter is located on one side of the first support member; the signal status indicator is electrically connected to the transmitter and is located on one side of the transmitter; the receiver is located on one side of the second support member; the first assembly is located on one side of the transmitter; the second assembly is located on one side of the receiver; the first locking knob is threadedly connected to the transmitter and is located on one side of the transmitter; the second locking knob is threadedly connected to the receiver and is located on one side of the receiver.
[0006] The first support includes a first mounting base and a first assembly frame. The first assembly frame is fixedly connected to the first mounting base and is located on one side of the first mounting base. The first mounting base has a plurality of first assembly slots, which are respectively located on one side of the first mounting base. The first assembly frame has a first assembly hole, which is located on one side of the first assembly frame.
[0007] The second support includes a second mounting base and a second assembly frame. The second assembly frame is fixedly connected to the second mounting base and is located on one side of the second mounting base. The second mounting base has a plurality of second assembly slots, which are respectively located on one side of the second mounting base. The second assembly frame has a second assembly hole, which is located on one side of the second assembly frame.
[0008] The first assembly includes a first docking seat and a first docking pad. The first docking seat is fixedly connected to the emitter and is located on one side of the emitter. The first docking pad is fixedly connected to the first docking seat and is located on one side of the first docking seat.
[0009] The second assembly includes a second docking seat and a second docking pad. The second docking seat is fixedly connected to the receiving electrode and is located on one side of the receiving electrode. The second docking pad is fixedly connected to the second docking seat and is located on one side of the second docking seat.
[0010] This utility model discloses a laser optoelectronic glass inspection device. When inspecting optoelectronic glass, the emitter, in conjunction with the first fitting, is assembled onto the first support and then fixed using the first locking knob. The receiver, in conjunction with the second fitting, is assembled onto the second support and then fixed using the second locking knob. After the emitter and receiver are fixed, the first and second supports are respectively assembled on both sides of the photothermal glass processing line, so that the emitter and receiver are mirror images. When powered on, when glass passes through the middle position of the emitter, the light from the receiver is blocked, triggering the normally open contact at the output terminal to transmit a high-level signal to the driver, thus completing the signal triggering. This solves the problem that existing optoelectronic sensors, manufactured by LOCON Corporation in the United States, require modifications to the original device bracket during assembly, leading to lower convenience. Attached Figure Description
[0011] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0012] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0013] Figure 2 This is a front view of the entire utility model.
[0014] Figure 3 This is a structural schematic diagram of the entire utility model from another angle.
[0015] 102-Second support member, 103-Emitter, 104-Signal status indicator, 105-Receiver, 106-First assembly, 107-Second assembly, 108-First locking knob, 109-Second locking knob, 110-First mounting base, 111-First assembly frame, 112-Second mounting base, 113-Second assembly frame, 114-First docking seat, 115-First docking pad, 116-Second docking seat, 117-Second docking pad, 118-First assembly slot, 119-First assembly hole, 120-Second assembly slot, 121-Second assembly hole. Detailed Implementation
[0016] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0017] Please see Figures 1-3 ,in, Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a front view of the entire utility model. Figure 3 This is a structural schematic diagram of the entire utility model from another angle.
[0018] This utility model discloses a laser optoelectronic glass inspection device, comprising a first support 101, a second support 102, an emitter 103, a signal status indicator light 104, a receiver 105, a first assembly 106, a second assembly 107, a first locking knob 108, and a second locking knob 109. The first support 101 includes a first mounting base 110 and a first assembly frame 111. The second support 102 includes a second mounting base 112 and a second assembly frame 113. The first assembly 106 includes a first docking seat 114 and a first docking pad 115. 15. The first mounting base 110 has multiple first mounting slots 118, the first mounting bracket 111 has a first mounting hole 119, the second mounting accessory 107 includes a second docking seat 116 and a second docking pad 117, the second mounting base 112 has multiple second mounting slots 120, and the second mounting bracket 113 has a second mounting hole 121. The aforementioned solution solves the problem that existing photoelectric sensors are products manufactured by LOCON Corporation of the United States, and that the original device bracket needs to be modified during the assembly process to achieve replacement, which leads to low convenience.
[0019] The transmitter 103 is located on one side of the first support member 101; the signal status indicator light 104 is electrically connected to the transmitter 103 and is located on one side of the transmitter 103; the receiver 105 is located on one side of the second support member 102; the first assembly 106 is disposed on one side of the transmitter 103; the second assembly 107 is disposed on one side of the receiver 105; the first locking knob 108 is threadedly connected to the transmitter 103 and is located on one side of the transmitter 103; the second locking knob 109 is threadedly connected to the receiver 105 and is located on one side of the receiver 105. The transmitter 103 is assembled onto the first support member 101 with the first assembly 106 and then fixed by the first locking knob 108. The receiving electrode 105 is assembled on the second support member 102 in conjunction with the second mounting part 107 and then fixed by the second locking knob 109. After the emitting electrode 103 and the receiving electrode 105 are fixed, the first support member 101 and the second support member 102 are respectively assembled on both sides of the photothermal glass processing line, so that the emitting electrode 103 and the receiving electrode 105 are mirror images. After power is applied, when glass passes through the middle position of the emitting electrode 103, the light of the receiving electrode 105 is blocked, the normally open contact of the output terminal is triggered and connected, and a high-level signal is transmitted to the driver to complete the signal triggering. This solves the problem that the existing photoelectric sensors are products manufactured by LOCON Corporation of the United States, which require modification of the original device bracket during the assembly process to achieve replacement, resulting in low convenience.
[0020] Secondly, the first assembly frame 111 is fixedly connected to the first mounting base 110 and is located on one side of the first mounting base 110; a plurality of first assembly slots 118 are respectively located on one side of the first mounting base 110; the first assembly hole 119 is located on one side of the first assembly frame 111, the first assembly frame 111 cooperates with the first assembly hole 119 to assemble the emitter 103, and the plurality of first assembly slots 118 are used to adapt to various types of bolts to fix the first mounting base 110.
[0021] Furthermore, the second mounting bracket 113 is fixedly connected to the second mounting base 112 and is located on one side of the second mounting base 112; a plurality of second mounting slots 120 are respectively located on one side of the second mounting base 112; the second mounting hole 121 is located on one side of the second mounting bracket 113, and the second mounting bracket 113 cooperates with the second mounting hole 121 to assemble the receiving electrode 105, and the plurality of second mounting slots 120 are used to adapt to various types of bolts to fix the second mounting base 112.
[0022] In addition, the first docking seat 114 is fixedly connected to the emitter 103 and is located on one side of the emitter 103; the first docking pad 115 is fixedly connected to the first docking seat 114 and is located on one side of the first docking seat 110. The first docking seat 114 cooperates with the first docking pad 115 to assemble the emitter 103 onto the first assembly frame 111.
[0023] Furthermore, the second docking seat 116 is fixedly connected to the receiving electrode 105 and is located on one side of the receiving electrode 105; the second docking pad 117 is fixedly connected to the second docking seat 116 and is located on one side of the second docking seat 112. The second docking seat 116 cooperates with the second docking pad 117 to assemble the receiving electrode 105 onto the second assembly frame 113.
[0024] In using this utility model, the emitter 103 is assembled onto the first support 101 with the first docking seat 114 and the first docking pad 115, and then fixed by the first locking knob 108. The receiver 105 is assembled onto the second assembly frame 113 with the second docking seat 116 and the second docking pad 117, and then fixed by the second locking knob 109. After the emitter 103 and receiver 105 are fixed, the first support 101 and the second support 102 are respectively assembled on both sides of the photothermal glass processing line. The first assembly frame 111 assembles the emitter 103 with the first assembly hole 119, and multiple first assembly slots are used. 118 is used to adapt to various types of bolts to fix the first mounting base 110. The second mounting bracket 113 cooperates with the second mounting hole 121 to assemble the receiving electrode 105. Multiple second mounting slots 120 are used to adapt to various types of bolts to fix the second mounting base 112, so that the emitting electrode 103 and the receiving electrode 105 are set in a mirror image. After power is applied, when glass passes through the middle position of the emitting electrode 103, the light of the receiving electrode 105 is blocked, the normally open contact of the output terminal is triggered and connected, and a high-level signal is transmitted to the driver to complete the signal triggering. This solves the problem that the existing photoelectric sensors are products manufactured by LOCON Corporation of the United States, and the original device bracket needs to be modified during the assembly process to achieve replacement, which leads to low convenience.
[0025] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A laser optoelectronic glass inspection device, characterized in that, It includes a first support member, a second support member, a transmitter, a signal status indicator light, a receiver, a first assembly, a second assembly, a first locking knob, and a second locking knob; The transmitter is located on one side of the first support member; the signal status indicator is electrically connected to the transmitter and is located on one side of the transmitter; the receiver is located on one side of the second support member; the first assembly is located on one side of the transmitter; the second assembly is located on one side of the receiver; the first locking knob is threadedly connected to the transmitter and is located on one side of the transmitter; the second locking knob is threadedly connected to the receiver and is located on one side of the receiver.
2. The laser optoelectronic glass inspection device as described in claim 1, characterized in that, The first support includes a first mounting base and a first assembly frame. The first assembly frame is fixedly connected to the first mounting base and is located on one side of the first mounting base. The first mounting base has a plurality of first assembly slots, which are respectively located on one side of the first mounting base. The first assembly frame has a first assembly hole, which is located on one side of the first assembly frame.
3. The laser optoelectronic glass inspection device as described in claim 2, characterized in that, The second support includes a second mounting base and a second assembly frame. The second assembly frame is fixedly connected to the second mounting base and is located on one side of the second mounting base. The second mounting base has a plurality of second assembly slots, which are respectively located on one side of the second mounting base. The second assembly frame has a second assembly hole, which is located on one side of the second assembly frame.
4. The laser optoelectronic glass inspection device as described in claim 3, characterized in that, The first assembly includes a first docking seat and a first docking pad. The first docking seat is fixedly connected to the emitter and is located on one side of the emitter. The first docking pad is fixedly connected to the first docking seat and is located on one side of the first docking seat.
5. The laser optoelectronic glass inspection device as described in claim 4, characterized in that, The second assembly includes a second docking seat and a second docking pad. The second docking seat is fixedly connected to the receiving electrode and is located on one side of the receiving electrode. The second docking pad is fixedly connected to the second docking seat and is located on one side of the second docking seat.