Non-wiring type stroboscopic interval time detection device for automobile steering lamp
By using a wire-free testing device that is directly installed on the turn signal for testing, the problem of complex disassembly and wiring in existing technologies is solved, and efficient and accurate detection of turn signal flashing interval time is achieved.
Patent Information
- Application Number
- CN202520293398.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-20
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-02-20
AI Technical Summary
Existing technologies require disassembly and wiring for automotive turn signal flashing interval detection devices, resulting in low efficiency and inapplicability to different vehicle models.
A wire-free detection device is adopted, which directly installs the touch acquisition module and the strobe acquisition module on the turn signal for detection. The integrated control box performs signal processing, avoiding disassembly and wiring operations.
It improves detection efficiency and accuracy, reduces human interference, is applicable to various vehicle models, and enhances the versatility and convenience of detection.
Smart Images

Figure CN223926593U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a car performance test tool technical field especially relates to a car steering lamp non-wiring type stroboscopic interval time detection device. BACKGROUND
[0002] The car steering lamp non-wiring type stroboscopic interval time detection has important significance. First, it can ensure that the steering lamp meets domestic and foreign regulations and standards, such as GB 17509-2008, ECE R6, etc., so that the vehicle can be legally on the road, and it can also adapt to changes in regulations and adjust in time to meet new requirements. Secondly, detection helps to ensure driving safety. Appropriate stroboscopic interval time can improve the warning effect, so that other road users can clearly understand the intention of the driver and reduce the risk of accidents. If the stroboscopic is abnormal, the steering lamp fault can be found and repaired in time. In addition, this detection plays an important role in optimizing product design and controlling quality for car manufacturers, and can provide a basis for design to ensure that the products produced meet the quality standards and improve the efficiency and quality of after-sales maintenance.
[0003] In the prior art, a wired steering lamp detection device is used to collect the synchronous stroboscopic time interval of the steering lamp. During use, the detection equipment is usually directly connected to the steering lamp circuit to measure the current, voltage or flash frequency in the circuit to determine the working state of the steering lamp. This method often has the following disadvantages: for different vehicles, due to inconsistent vehicle models, for early vehicles with non-central wire harness wiring form, the wired connection method of the stroboscopic receiver is used to connect the steering lamp stroboscopic tester, which results in that during testing, the insulation layer of the wire harness is damaged for wiring, and the disassembly of the steering lamp wire and the wiring workload are increased, and the efficiency is low. For vehicles with centralized wire harness wiring form, it is more complex to disassemble the wire, which is not conducive to the development of the testing process. SUMMARY
[0004] The utility model provides a car steering lamp non-wiring type stroboscopic interval time detection device to solve the problem of complex installation and disassembly in the prior art.
[0005] In order to achieve the above purpose, the technical scheme adopted by the utility model is as follows:
[0006] The application discloses a non-wiring type flash interval time detection device for a car steering lamp, which comprises a touch collection module and a flash collection module, the touch collection module is detachably installed on a lever of the steering lamp to collect a lever signal of the lever, and the flash collection module is sleeved on a surface of the steering lamp to collect a flash signal of the steering lamp; an integrated control box and an upper computer, the integrated control box is in communication connection with the touch collection module, the flash collection module and the upper computer, and the integrated control box is configured to receive the lever signal and the flash signal and transmit the lever signal and the flash signal to the upper computer.
[0007] According to the above technical means, the flash interval time of the car lamp is detected by the non-wiring type detection device, without the need of disassembling and wiring operation, the touch collection module is directly installed on the lever of the steering lamp, and the flash collection module is sleeved on the surface of the steering lamp to perform detection, so that the preparation time and workload are greatly saved, and the detection efficiency is greatly improved; meanwhile, the device is convenient to install, without the need of complex adjustment or additional disassembling work due to the difference of the car type, so that the universality and convenience of detection are further improved, and the device can be efficiently applied to the flash interval time detection of the steering lamp of various car types; the lever signal and the flash signal are automatically and accurately collected by the touch collection module and the flash collection module, and are analyzed and processed by the upper computer, so that the interference of human factors is avoided, the flash interval time of the steering lamp can be accurately acquired, and the detection precision is improved.
[0008] Further, the flash collection module comprises a shell and a photosensitive sensor, the shell is used for sleeving on the surface of the steering lamp, a cavity is formed in the shell, and the photosensitive sensor is installed in the cavity; the shell is used for protecting the photosensitive sensor, the photosensitive sensor is used for collecting the flash signal, and the photosensitive sensor is in communication connection with the integrated control box and is used for transmitting the flash signal to the integrated control box.
[0009] According to the above technical means, the shell can protect the photosensitive sensor inside, can effectively prevent dust and moisture from invading, can reduce the impact of vibration on the sensor, can prolong the service life of the photosensitive sensor, can enhance the stability and reliability of the equipment, and can reduce the maintenance cost of the equipment; the shell can play a certain fixing and buffering role, can reduce the possibility of loosening, can ensure that the signal is stably and continuously transmitted to the integrated control box, can avoid detection failure caused by communication interruption or signal loss, and can facilitate the dismounting and mounting of the flash collection module.
[0010] Further, the flash collection module further comprises a sealing strip, two sides of the sealing strip are connected with the shell and the surface of the steering lamp respectively, so that the photosensitive sensor is prevented from being disturbed by external light sources.
[0011] According to the above technical means, the two sides of the sealing strip are connected with the surface of the first shell and the surface of the turn signal lamp respectively, so that the sealing strip can form a sealed whole with the shell, effectively block the interference of external light sources, ensure that the light-sensitive sensor can only receive the stroboscopic light of the turn signal lamp itself, thereby improving the accuracy of stroboscopic signal acquisition and making the detection result more reliable.
[0012] Further, the integrated control box comprises a network switch, which is in communication connection with the touch acquisition module, the light-sensitive sensor and the upper computer respectively, so that the touch sensor and the light-sensitive sensor can transmit the toggle signal and the stroboscopic signal to the network switch, and the network switch can transmit the toggle signal and the stroboscopic signal to the upper computer.
[0013] According to the above technical means, the integrated control box can communicate with the touch acquisition module, the light-sensitive sensor and the upper computer at the same time through the network switch, which simplifies the connection mode of the device, improves the communication efficiency of the system, and makes the data transmission between devices more smooth and stable; at the same time, the network switch can effectively manage data transmission, reduce data conflict and congestion, and ensure that data transmission between devices is more stable and reliable.
[0014] Further, the integrated control box further comprises a photoelectric conversion module and a relay module, the photoelectric conversion module is in communication connection with the light-sensitive sensor, the photoelectric conversion module is used for receiving the stroboscopic signal and converting the stroboscopic signal into an electrical signal; the relay module is in communication connection with the photoelectric conversion module and the digital switch input and output module respectively, the relay module is configured to transmit the electrical signal from the photoelectric conversion module to the digital switch input and output module; the digital switch input and output module is used for converting the electrical signal into a digital signal, and the digital signal is transmitted to the upper computer for processing and display through the network switch.
[0015] According to the above technical means, the digital quantity switch input and output module is in communication connection with the touch collection module, so that the dialing signal collected by the touch collection module can be transmitted to the digital quantity switch input and output module, and the digital quantity switch input and output module is in communication connection with the network switch, so that the dialing signal can pass through the touch collection module, the digital quantity switch input and output module, the network switch and the upper computer in sequence, so that the signal received by the upper computer is accurate, thereby improving the accuracy of the detection result; the digital quantity switch input and output module can ensure the integrity of the signal in the transmission process, reduce the data loss or distortion caused by signal interference or transmission error, improve the anti-interference ability of the system through the processing of the digital signal, ensure the stable transmission of the signal, and improve the reliability of the system.
[0016] Further, the integrated control box further comprises a photoelectric conversion module, the photoelectric conversion module is in communication connection with the photosensitive sensor, and the photoelectric conversion module is used for receiving the stroboscopic signal and converting the stroboscopic signal into an electric signal.
[0017] According to the above technical means, the photoelectric conversion module can receive the stroboscopic signal collected by the photosensitive sensor and convert the stroboscopic signal into an electric signal.
[0018] Further, the integrated control box further comprises a relay module, the relay module is in communication connection with the photoelectric conversion module and the digital quantity switch input and output module respectively, and the relay module is configured to transmit the electric signal from the photoelectric conversion module to the digital quantity switch input and output module; the digital quantity switch input and output module is used for converting the electric signal into a digital signal, and the digital signal is transmitted to the upper computer through the network switch.
[0019] According to the above technical means, the two ends of the photoelectric conversion module are in communication connection with the photosensitive sensor and the relay module respectively, and the electric signal is transmitted to the relay module, and the relay module is in communication connection with the digital quantity switch input and output module, so that the electric signal can pass through the relay module, the digital quantity switch input and output module, the network switch and the upper computer in sequence, so that the signal received by the upper computer is accurate.
[0020] Further, the integrated control box further comprises a power supply module, the power supply module is installed in the integrated control box, and the power supply module is used for supplying power to the network switch, the touch collection module, the stroboscopic collection module, the digital quantity switch input and output module and the relay module.
[0021] According to the above technical means, the power supply module is installed in the integrated control box, and is used for providing stable power supply for the network switch, the touch acquisition module, the frequency flash acquisition module, the digital quantity switch input and output module and the relay module, ensuring the basis for normal work of each module, avoiding unstable work or failure of the modules caused by power fluctuation, and thereby improving the stability and reliability of the whole detection system.
[0022] Further, the integrated control box further comprises a switch button assembly connected with the power supply module to control the on-off of the power supply module.
[0023] According to the above technical means, the switch button assembly can control the on-off of the power supply module, so that the power supply module stops power supply when not in use, the power supply module can be disconnected when no detection is performed, so as to save energy, or the power supply module can be disconnected to increase safety during the detection process when an emergency occurs.
[0024] Further, the integrated control box is formed with a heat dissipation hole.
[0025] According to the above technical means, the heat dissipation hole can dissipate heat generated during operation of the integrated control box to the external environment, reduce the operating temperature of the integrated control box, prevent the operating speed from being reduced due to the excessively high operating temperature of the integrated control box, and further cause errors in the test process.
[0026] The beneficial effects of the utility model are as follows:
[0027] 1. The vehicle lamp frequency flash detection is performed by the non-wiring detection device, without the need of disassembling and wiring operation, the touch acquisition module is directly installed on the steering lamp lever, and the frequency flash acquisition module is sleeved on the surface of the steering lamp to perform detection, so that the preparation time and workload are greatly saved, and the detection efficiency is significantly improved; meanwhile, the device is convenient to install, without the need of complex adjustment or additional disassembly work due to the difference of vehicle types, the detection universality and convenience are further improved, and the device can be efficiently applied to the detection of the frequency flash interval time of steering lamps of various vehicle types.
[0028] 2. The touch acquisition module and the frequency flash acquisition module automatically and accurately collect the switching signal and the frequency flash signal, and the upper computer analyzes and processes the signals, so as to avoid the interference of human factors, accurately acquire the frequency flash interval time of the steering lamp, and improve the detection precision. BRIEF DESCRIPTION OF DRAWINGS
[0029] Figure 1 It is a specific structure diagram of the utility model;
[0030] Figure 2 It is a data transmission diagram of the utility model.
[0031] Reference signs:
[0032] 1-touch acquisition module;
[0033] 2-stroboscopic acquisition module, 21-housing, 22-photosensitive sensor, 23-sealing strip;
[0034] 3-integrated control box, 31-network switch, 32-digital switch input and output module, 33-optoelectronic conversion module, 34-relay module, 35-power supply module, 36-switch button assembly, 37-heat dissipation hole;
[0035] 4-upper computer.
[0036] The accompanying drawings are only intended to illustrate the present application and should not be construed as limiting the present application; in order to better illustrate the embodiments, some components in the drawings can be omitted, enlarged or reduced, and do not represent the actual product size; for those skilled in the art, it can be understood that some well-known structures and their descriptions in the drawings can be omitted; the same or similar reference numerals correspond to the same or similar components; the positional relationship described in the drawings is only intended to illustrate the present application and should not be construed as limiting the present application. DETAILED DESCRIPTION
[0037] The advantages and effects of the present application can be easily understood by those skilled in the art from the disclosure in the specification. The present application can also be implemented or applied by different specific embodiments, and various modifications or changes can be made to the details in the specification based on different views and applications without departing from the spirit of the present application. It should be understood that the preferred embodiments are only for illustrating the present application, and are not intended to limit the protection scope of the present application.
[0038] It should be noted that the drawings provided in the following embodiments only illustrate the basic concept of the present application in a schematic manner, and only show the components related to the present application in the drawings, not the number, shape and size of the components when actually implemented. The actual implementation of each component can be arbitrarily changed in type, number and proportion, and the component layout pattern can also be more complex.
[0039] In the embodiments of the present application, the terms "first" and "second" are only for descriptive purposes, and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" can explicitly or implicitly include one or more of the features.
[0040] In the embodiments of the present application, unless specifically defined and limited otherwise, the term "connection" should be understood in a broad sense, for example, "connection" can be fixed connection, or detachable connection, or integral; can be directly connected, or indirectly connected through an intermediate medium.
[0041] In the embodiments of the present application, the terms "comprising", "containing" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such process, method, article or device. Without more limitations, the element defined by the statement "including a" does not exclude the presence of other identical elements in the process, method, article or device including the element.
[0042] As shown in Figure 1 The automobile steering lamp non-wiring stroboscopic interval time detection device in the embodiment includes a touch collection module 1 and a stroboscopic collection module 2. The touch collection module 1 is used to be detachably installed on the lever of the steering lamp to collect the lever signal. The stroboscopic collection module 2 is used to be sleeved on the surface of the steering lamp to collect the stroboscopic signal of the steering lamp. An integrated control box 3 and a host computer 4 are in communication connection with the touch collection module 1, the stroboscopic collection module 2 and the host computer 4. The integrated control box 3 is configured to receive the lever signal and the stroboscopic signal and transmit the lever signal and the stroboscopic signal to the host computer 4.
[0043] As shown in Figure 1 The specific implementation of the automobile steering lamp non-wiring stroboscopic interval time detection device in the embodiment is that before testing, the touch collection module 1, the stroboscopic collection module 2 and the host computer 4 are connected with the integrated control box 3 respectively, and then the stroboscopic collection module 2 is sleeved on the car lamp to make the stroboscopic collection module 2 closely combined with the car lamp. The touch collection module 1 is installed on the lever of the steering lamp. During the testing process, force is applied on the lever of the steering lamp to make the steering lamp function start. At this time, the touch collection module 1 collects the lever signal, and the steering lamp flashes synchronously. At this time, the stroboscopic collection module 2 collects the stroboscopic signal. The lever signal and the stroboscopic signal are transmitted to the host computer 4 through the integrated control box 3 for processing. The integrated control box 3 converts the lever signal and the stroboscopic signal into first electric signal and second electric signal, and then transmits the first electric signal and the second electric signal to the host computer 4. The host computer 4 acquires the test time according to the start time and the end time of the first electric signal, acquires the first extinguishing time and the first lighting time according to the second electric signal, and then acquires the number of lightings in the second electric signal. The ratio of the number of lightings in the second electric signal to the test time is the stroboscopic frequency.
[0044] The frequency flash detection of the vehicle lamp is performed by the non-wired detection device, without the need of such disassembly and wiring operation, the touch collection module 1 is directly installed on the steering lamp lever, the frequency flash collection module 2 is sleeved on the surface of the steering lamp, and the detection can be performed, so that the preparation time and workload in the early stage are greatly saved, and the detection efficiency is significantly improved; meanwhile, the device is convenient to install, without the need of complex adjustment or additional disassembly work due to the difference of vehicle types, so that the universality and convenience of the detection are further improved, and the frequency flash interval time detection of the steering lamp of various vehicle types can be efficiently applied; the touch collection module 1 and the frequency flash collection module 2 automatically and accurately collect the lever signal and the frequency flash signal, and the upper computer 4 performs analysis and processing, so as to avoid the interference of human factors, accurately obtain the frequency flash interval time of the steering lamp, and improve the detection precision.
[0045] As shown in Figure 1 In the embodiment, the frequency flash collection module 2 includes a shell 21 and a photosensitive sensor 22, the shell 21 is used for sleeving on the surface of the steering lamp, so as to prevent the interference of external light sources; the shell 21 is formed with a cavity, the photosensitive sensor 22 is installed in the cavity, and the photosensitive sensor 22 is in communication connection with the integrated control box 3, and is used for transmitting the frequency flash signal to the integrated control box 3.
[0046] The shell 21 of the frequency flash collection module 2 is sleeved on the surface of the steering lamp, forms a closed cavity, can play a protection role on the internal photosensitive sensor 22, can effectively block the invasion of dust and moisture, reduce the impact of vibration on the sensor, thereby prolonging the service life of the photosensitive sensor 22, enhancing the stability and reliability of the equipment, and reducing the maintenance cost of the equipment; the shell 21 can play a certain fixing and buffering role, reduce the possibility of such looseness, ensure that the signal can be stably and continuously transmitted to the integrated control box 3, avoid detection failure caused by communication interruption or signal loss; meanwhile, the detachable installation mode facilitates the disassembly and installation of the frequency flash collection module 2.
[0047] Preferably, the shell 21 can be designed and adjusted according to the shape and size of the steering lamp of different vehicle types. Whether it is a common round, square steering lamp or a steering lamp with a special shape, the frequency flash receiver can be adaptively installed by customizing the shell 21, so that the detection device can be widely applied to various vehicle types, improve the universality and flexibility of the detection, and reduce the detection difficulty and cost caused by the difference of vehicle types.
[0048] As shown in Figure 1As shown, in this embodiment, the stroboscopic acquisition module 2 further comprises a sealing strip 23, the two sides of the sealing strip 23 are connected with the shell 21 and the surface of the turn signal lamp respectively, so as to prevent the photosensitive sensor 22 from being disturbed by external light sources. The two sides of the sealing strip 23 are connected with the shell 21 and the surface of the turn signal lamp respectively, so that the sealing strip 23 can form a sealed whole with the shell 21, effectively block the interference of external light sources, and ensure that the photosensitive sensor 22 can only receive the stroboscopic light of the turn signal lamp itself, thereby improving the accuracy of stroboscopic signal acquisition and making the detection result more reliable.
[0049] As shown in Figure 1 and Figure 2 In this embodiment, the integrated control box 3 comprises a network switch 31, which is in communication connection with the touch acquisition module 1, the photosensitive sensor 22 and the upper computer 4 respectively, so that the touch sensor 1 and the photosensitive sensor 22 can transmit the dialing signal and the stroboscopic signal to the network switch 31, and the network switch 31 can transmit the dialing signal and the stroboscopic signal to the upper computer 4.
[0050] The integrated control box 3 can communicate with the touch acquisition module 1, the photosensitive sensor 22 and the upper computer 4 through the network switch 31, which simplifies the connection mode of the device, improves the communication efficiency of the system, and makes the data transmission between the devices more smooth and stable; at the same time, the network switch 31 can effectively manage data transmission, reduce data conflict and congestion, and ensure that data transmission between devices is more stable and reliable.
[0051] In other embodiments, if more sensors or other detection devices need to be added, they can be connected through the ports of the network switch 31 without the need for large-scale modification of the existing system, so that the detection device can flexibly adapt to detection requirements of different scales and complexities, improving the universality and expandability of the system.
[0052] Preferably, the design of the network switch 31 enables the integrated control box 3 to be compatible with multiple different types of devices, including touch acquisition modules 1, stroboscopic acquisition modules 2 and upper computers 4 of different brands and models, which not only improves the universality of the system, but also reduces the procurement and maintenance costs of the system, so that users can choose the most suitable devices according to their own needs.
[0053] As shown in Figure 1 and Figure 2 In this embodiment, the integrated control box 3 further comprises a digital switch input and output module 32, and the touch acquisition module 1 is in communication connection with the network switch 31 through the digital switch input and output module 32; the digital switch input and output module 32 is configured to transmit the dialing signal to the upper computer 4 through the network switch 31 for processing and display.
[0054] The digital switch input and output module 32 is in communication connection with the touch collection module 1, so that the dialing signal collected by the touch collection module 1 can be transmitted to the digital switch input and output module 32, and the digital switch input and output module 32 is in communication connection with the network switch 31, so that the dialing signal can pass through the touch collection module 1, the digital switch input and output module 32, the network switch 31 and the upper computer 4 in sequence, so that the signal received by the upper computer 4 is accurate and correct, thereby improving the accuracy of the detection result; the digital switch input and output module 32 can ensure the integrity of the signal in the transmission process, reduce the data loss or distortion caused by signal interference or transmission error, and through the processing of the digital signal, the anti-interference ability of the device can be improved, the stable transmission of the signal is ensured, and the reliability of the system is improved.
[0055] In other embodiments, if more sensors or other detection devices need to be added, they can be connected through the ports of the digital switch input and output module 32, without the need to make large-scale changes to the existing system, thereby improving the expandability of the system and reducing the maintenance cost and time of the system.
[0056] As shown in Figure 1 and Figure 2 , in the embodiment, the integrated control box 3 further comprises a photoelectric conversion module 33, the photoelectric conversion module 33 is in communication connection with the photosensitive sensor 22, and the photoelectric conversion module 33 is configured to receive the stroboscopic signal. The photoelectric conversion module 33 can receive the stroboscopic signal collected by the photosensitive sensor 22 and convert the stroboscopic signal into an electrical signal.
[0057] As shown in Figure 1 and Figure 2 , in the embodiment, the integrated control box 3 further comprises a relay module 34, the relay module 34 is in communication connection with the photoelectric conversion module 33 and the digital switch input and output module 32 respectively, and the relay module 34 is configured to transmit the electrical signal from the photoelectric conversion module to the digital switch input and output module 32; the digital switch input and output module 32 is configured to convert the electrical signal into a digital signal, and the digital signal is transmitted to the upper computer 4 through the network switch 31.
[0058] The two ends of the photoelectric conversion module 33 are in communication connection with the photosensitive sensor 22 and the relay module 34 respectively, and the electrical signal is transmitted to the relay module, and the relay module 34 is in communication connection with the digital switch input and output module 32, so that the electrical signal can pass through the relay module 34, the digital switch input and output module 32, the network switch 31 and the upper computer 4 in sequence, so that the signal received by the upper computer 4 is accurate and correct.
[0059] Preferably, the photoelectric conversion module 33 is a separate module of the integrated control box 3, and the modular design makes the system more convenient to expand and upgrade. For example, the QSFP-40G-ER4 type photoelectric conversion module 33 has 4 channels, and each channel has a pluggable interface with a transmission rate of 10Gbps. It is a compact hot-plug optical module for data communication applications, and has four independent optical signal transmission and reception channels. It is mainly used for high-speed data transmission of switches, routers and data center equipment. If the signal conversion function needs to be optimized or upgraded, only the photoelectric conversion module 33 needs to be replaced or updated, without the need to make large-scale changes to the entire integrated control box 3.
[0060] As shown in Figure 1 and Figure 2 , in this embodiment, the integrated control box 3 further comprises a power supply module 35. The power supply module 35 is installed in the integrated control box 3, and the power supply module 35 is used to supply power to the network switch 31, the touch acquisition module 1, the stroboscopic acquisition module 2, the digital quantity switch input and output module 32 and the relay module 34. The power supply module 35 is installed in the integrated control box 3 and is used to provide stable power supply for the network switch 31, the touch acquisition module 1, the stroboscopic acquisition module 2, the digital quantity switch input and output module 32 and the relay module 34, ensuring the normal work of each module, avoiding the instability or failure of the module caused by power fluctuation, and thus improving the stability and reliability of the entire detection system.
[0061] Preferably, the power supply module 35 can be designed to adapt to different voltage and current power supply environments, so that the detection device can be used on different types of vehicles without the need for additional power adapters or converters. This design improves the versatility and compatibility of the system and reduces the user's use cost.
[0062] As shown in Figure 1 , in this embodiment, the integrated control box 3 further comprises a switch button assembly 36. The switch button assembly 36 is connected with the power supply module 35 to control the on-off of the power supply module 35. The switch button assembly 36 can control the on-off of the power supply module 35, so that the power supply module 35 stops supplying power when not in use. When not testing, the power supply module 35 can be disconnected to save energy, or when encountering an emergency, the power supply module 35 can be disconnected to increase safety during testing.
[0063] As shown in Figure 1 , in this embodiment, the integrated control box 3 is formed with a heat dissipation hole 37. The heat dissipation hole 37 is used to dissipate the heat generated during the operation of the integrated control box 3. The heat dissipation hole 37 can dissipate the heat generated during the operation of the integrated control box 3 to the external environment, reduce the operating temperature of the integrated control box 3, and prevent the operating speed from being reduced due to the high operating temperature of the integrated control box 3, which in turn causes errors in the testing process.
[0064] The above embodiments are only preferred embodiments of the present application for fully illustrating the present application, and the protection scope of the present application is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art based on the present application are within the protection scope of the present application.
Claims
1. A non-wired stroboscopic interval time detecting device for automobile turn signal, characterized by, The application relates to a touch and strobe signal acquisition device for a turn signal, which comprises the following parts: a touch acquisition module (1) and a strobe acquisition module (2), wherein the touch acquisition module (1) is detachably arranged on a lever of a turn signal to collect a lever signal of the lever, and the strobe acquisition module (2) is arranged on the surface of the turn signal to collect a strobe signal of the turn signal; an integrated control box (3) and an upper computer (4), wherein the integrated control box (3) is in communication connection with the touch acquisition module (1), the strobe acquisition module (2) and the upper computer (4) respectively, and the integrated control box (3) is configured to receive the lever signal and the strobe signal and transmit the lever signal and the strobe signal to the upper computer (4).
2. The automobile winker non-wiring stroboscopic interval time detecting device according to claim 1, characterized in that, The strobe acquisition module (2) comprises a shell (21) and a photosensitive sensor (22), the shell (21) is arranged on the surface of the turn signal, a cavity is formed in the shell (21), the photosensitive sensor (22) is arranged in the cavity, the shell (21) is used for protecting the photosensitive sensor (22), the photosensitive sensor (22) is used for collecting the strobe signal, and the photosensitive sensor (22) is in communication connection with the integrated control box (3) and is used for transmitting the strobe signal to the integrated control box (3).
3. The automobile winker non-wiring stroboscopic interval time detecting device according to claim 2, characterized in that, The strobe acquisition module (2) further comprises a sealing strip (23), the two sides of the sealing strip (23) are connected with the first shell (21) and the surface of the turn signal respectively, so that the photosensitive sensor (22) is prevented from being disturbed by external light sources.
4. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 2, characterized in that, The integrated control box (3) comprises a network switch (31), the network switch (31) is in communication connection with the touch acquisition module (1), the photosensitive sensor (22) and the upper computer (4) respectively, so that the touch acquisition module (1) and the photosensitive sensor (22) can transmit the lever signal and the strobe signal to the network switch (31), and the network switch (31) can transmit the lever signal and the strobe signal to the upper computer (4).
5. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 4, characterized in that, The integrated control box (3) further comprises a digital quantity switch input and output module (32), the touch acquisition module (1) is in communication connection with the network switch (31) through the digital quantity switch input and output module (32), and the digital quantity switch input and output module (32) is configured to transmit the lever signal to the upper computer (4) through the network switch (31).
6. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 5, characterized by The integrated control box (3) further comprises an optoelectronic conversion module (33), the optoelectronic conversion module (33) is in communication connection with the photosensitive sensor (22), the optoelectronic conversion module (33) is used for receiving the strobe signal and converting the strobe signal into an electric signal.
7. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 6, characterized in that, The integrated control box (3) further comprises a relay module (34) which is connected with the photoelectric conversion module (33) and the digital switch input and output module (32) respectively, and is configured to transmit the electric signal from the photoelectric conversion module (33) to the digital switch input and output module (32); the digital switch input and output module (32) is configured to convert the electric signal into a digital signal which is transmitted to the upper computer (4) through the network switch (31).
8. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 7, characterized by The integrated control box (3) further comprises a power supply module (35) which is installed in the integrated control box (3) and is configured to supply power to the network switch (31), the touch acquisition module (1), the stroboscopic acquisition module (2), the digital switch input and output module (32) and the relay module (34).
9. The automobile winker non-wiring stroboscopic interval time detecting device according to claim 8, characterized in that, The integrated control box (3) further comprises a switch button assembly (36) which is connected with the power supply module (35) to control the on-off of the power supply module (35).
10. The automobile winker non-wiring type stroboscopic interval time detecting device according to claim 1, characterized in that, The integrated control box (3) is provided with a heat dissipation hole (37).