Multifunctional debugging interface board of control system
By designing a multi-functional debugging interface board, a wealth of debugging functions are integrated, solving the problems of unintuitive and cumbersome hardware debugging, and realizing efficient and convenient debugging of electrical control systems. It is suitable for debugging PLCs and microcontrollers.
Patent Information
- Application Number
- CN202423230632.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2034-12-26
AI Technical Summary
In existing technologies, hardware debugging is cumbersome and not intuitive, making it difficult to comprehensively evaluate the performance of the electronic control system in a laboratory environment, and the application scope of traditional software simulation methods is limited.
A multi-functional debugging interface board for control systems was designed, integrating functions such as limit switch action simulation, LED digital tube display, multiple communication interfaces, encoder pulse output, five-way button, single-channel output, and analog quantity debugging interface. It supports rich switch inputs, flexible operation, and high-precision signal verification, and simulates various sensor states.
It enables comprehensive evaluation of electrical control systems in a laboratory environment, improves debugging convenience and efficiency, reduces costs, meets various debugging needs, and is suitable for debugging PLCs and microcontrollers.
Smart Images

Figure CN223692659U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to interface board technical field, concretely relates to control system multifunctional debugging interface board. BACKGROUND
[0002] In the research and development design process of the electric control system, the hardware debugging is an indispensable link, and traditionally we rely on the software simulation to simulate the work flow, although this method can help us understand the running logic of the system to a certain extent, but its non-intuitive and cumbersome operation always limits its application range, in order to overcome these shortcomings, we design a control system multifunctional debugging interface board, which aims at providing more convenient and intuitive debugging means.
[0003] The design intention of this debugging interface board is to solve the deficiencies in the prior art, through it, we can verify whether the product logic function meets the design requirements without debugging in the complex field environment, the test board can simulate the state of the sensor under various environments, so that the research and development personnel can comprehensively evaluate the performance of the electric control system in the laboratory environment.
[0004] In addition, this debugging interface board also has strong practicability, it can not only be used for the debugging of programmable controller (PLC), but also can be widely used in the debugging work of single-chip microcomputer and other control circuits, and this wide applicability makes it become an indispensable tool in the research and development process of the electric control system. CONTENT OF THE UTILITY MODEL
[0005] The utility model is directed to the existing device control system multifunctional debugging interface board to solve the problems in the background art.
[0006] In order to solve the above technical problems, the utility model provides the following technical scheme: control system multifunctional debugging interface board, including multifunctional debugging interface board, the one end of multifunctional debugging interface board is fixedly installed with first limit switch action simulation debugging interface, the other end of multifunctional debugging interface board is fixedly installed with second limit switch action simulation debugging interface;
[0007] LED nixie tube debugging interface is also fixedly installed on the multifunctional debugging interface board and is located at the side of second limit switch action simulation debugging interface;
[0008] Power input is also fixedly installed on the multifunctional debugging interface board and is located at the side of LED nixie tube debugging interface;
[0009] 232 turns TTL interface and 458 interface are fixedly installed on the side of multifunctional debugging interface board.
[0010] The utility model further illustrates, another side fixed mounting of multi -functional debugging interface board has encoder pulse output;
[0011] The other side of the multi -functional debugging interface board also fixedly installs a five -way button, which is located on one side of the encoder pulse output.
[0012] The other side of the multi -functional debugging interface board also fixedly installs a second single -channel output and a first single -channel output, which are located on one side of the five -way button.
[0013] The utility model further illustrates that an analog quantity debugging interface is also fixedly installed on the multi -functional debugging interface board and located on one side of the first single -channel output.
[0014] The utility model further illustrates that four protection frames are detachably installed around the multi -functional debugging interface board, a first heat dissipation block is fixedly installed at one end of the outer portion of the protection frame, and a second heat dissipation block is fixedly installed at the other end of the outer portion of the protection frame.
[0015] The utility model further illustrates that a first fixing block is detachably installed at one end of the interior of the multi -functional debugging interface board, and a second fixing block is detachably installed at the other end of the interior of the multi -functional debugging interface board, and the two fixing blocks are made of soft silica gel.
[0016] The utility model further illustrates that the multi -functional debugging interface board is connected to a computer and a pre -debugging PLC in a workshop.
[0017] Compared with the prior art, the utility model has the beneficial effects that: the utility model, through the cooperation of the two sets of limit switch action simulation debugging interfaces, can provide rich switch input, meet various debugging requirements, simulate and actuate the state of each sensor in the system action process by each element on the multi -functional debugging interface board, replace each sensor for debugging in actual application, through the cooperation of the five -way button, the flexibility and diversity of debugging operation can be increased, through the cooperation of the two sets of single -channel outputs, various output signals can be supported, the system response can be verified conveniently, through the cooperation of the analog quantity debugging interface, the input and output of analog signals can be supported, the debugging precision is improved, the switch action direction is unified, the specific properties of the switch do not need to be paid attention to by the debugging personnel in the operation process, the use convenience is greatly improved, the multi -functional debugging interface board supports more than one hardware simulation debugging, covers common debugging scenes, makes the debugging process more comprehensive and efficient, meets the performance requirements, reduces the cost, and improves the performance -price ratio of the product. BRIEF DESCRIPTION OF DRAWINGS
[0018] The accompanying drawings are used to provide further understanding of the present application and constitute a part of the specification, and are used to explain the present application together with embodiments of the present application, and do not constitute a limitation to the present application. In the drawings:
[0019] Figure 1 is a schematic diagram of the overall structure of the present application;
[0020] Figure 2 is a schematic diagram of the protective frame of the present application;
[0021] Figure 3 is a schematic diagram of the protective frame of the present application from another perspective;
[0022] Figure 4 is a schematic diagram of the internal structure of the protective frame of the present application;
[0023] Figure 5 is a schematic diagram of the wiring of the multifunctional debugging interface board of the present application.
[0024] In the figure: 1, first limit switch action analog debugging interface; 2, second limit switch action analog debugging interface; 3, LED digital tube debugging interface; 4, power input; 5, 232 to TTL interface; 6, 458 interface; 7, encoder pulse output; 8, five-way button; 9, second single-channel output; 10, first single-channel output; 11, analog quantity debugging interface; 12, protective frame; 13, first heat dissipation block; 14, second heat dissipation block; 15, first fixed block; 16, second fixed block; 17, multifunctional debugging interface board. DETAILED DESCRIPTION
[0025] The technical solutions of the present application will be further and non-restrictively described in detail below in combination with preferred embodiments and drawings. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0026] Please refer to Figures 1-4 The present application provides a technical solution: a multifunctional debugging interface board of a control system, which comprises a multifunctional debugging interface board 17, a first limit switch action analog debugging interface 1 is fixedly installed at one end of the multifunctional debugging interface board 17, a second limit switch action analog debugging interface 2 is fixedly installed at the other end of the multifunctional debugging interface board 17, and two groups of switch action analog debugging interfaces are used to provide switch input for debugging;
[0027] The multifunctional debugging interface board 17 is further fixedly provided with an LED digital tube debugging interface 3, which is located at one side of the second limit switch action simulation debugging interface 2, and is used for intuitively displaying debugging information and system status.
[0028] The multifunctional debugging interface board 17 is further fixedly provided with a power input 4, which is located at one side of the LED digital tube debugging interface 3.
[0029] One side of the multifunctional debugging interface board 17 is fixedly provided with a 232-TTL interface 5 and a 458 interface 6, which are used for providing various communication interfaces and facilitating connection with other devices.
[0030] The other side of the multifunctional debugging interface board 17 is fixedly provided with an encoder pulse output 7, which is used for outputting signal values.
[0031] The other side of the multifunctional debugging interface board 17 is further fixedly provided with a five-way button 8, which is located at one side of the encoder pulse output 7.
[0032] The other side of the multifunctional debugging interface board 17 is further fixedly provided with a second single-channel output 9 and a first single-channel output 10, which are located at one side of the five-way button 8, and are used for outputting signal values.
[0033] The multifunctional debugging interface board 17 is further fixedly provided with an analog quantity debugging interface 11, which is located at one side of the first single-channel output 10.
[0034] Four groups of protection frames 12 are detachably installed around the multifunctional debugging interface board 17, which are used for protecting the multifunctional debugging interface board 17 during simulation, improving service life, and fixedly provided with a first heat dissipation block 13 at one end of the outside of the protection frame 12 and a second heat dissipation block 14 at the other end of the outside of the protection frame 12, which are used for heat dissipation operation to avoid high temperature of the multifunctional debugging interface board 17 affecting simulation effect during long-time simulation.
[0035] A first fixing block 15 is detachably installed at one end of the inside of the multifunctional debugging interface board 17, and a second fixing block 16 is detachably installed at the other end of the inside of the multifunctional debugging interface board 17, both of which are made of soft silica gel, which is convenient for quick installation around the multifunctional debugging interface board 17, and plays a role of non-destructive installation, which is convenient and fast, and reduces installation time.
[0036] During simulation debugging, the multifunctional debugging interface board 17 is externally connected to a computer and a pre-debugging PLC in a workshop.
[0037] Example one:
[0038] When the staff needs to comprehensively evaluate the electrical control system of the sensor, the staff can use the multifunctional debugging interface board 17 to carry out analog debugging operation, the staff first places the multifunctional debugging interface board 17 on the operation table, then connects the 232 to TTL interface 5 with the computer using the connecting line, and then connects the 232 to TTL interface 5 with the pre-debugging PLC communication interface, after the connection is completed, the staff connects the first limit switch action analog debugging interface 1, the second limit switch action analog debugging interface 2, and the five-way button 8 with the input interface of the pre-debugging PLC using the connecting line, after the connection is completed, the staff connects the second single-channel output 9, the first single-channel output 10 with the output interface of the pre-debugging PLC using the connecting line, and then connects the analog quantity debugging interface 11 with the analog quantity input interface of the pre-debugging PLC using the connecting line, after the connection is completed, the staff connects the encoder pulse output 7 with the high-speed pulse input of the pre-debugging PLC using the connecting line, after the connection is completed, the analog debugging operation can be carried out;
[0039] Before the above operation, the staff first manually grabs the protection frame 12 and clamps it around the multifunctional debugging interface board 17, the board body edge of the multifunctional debugging interface board 17 is clamped into the two groups of fixed blocks on the protection frame 12, achieving the effect of non-destructive installation, during the debugging process, the two groups of heat dissipation blocks on the protection frame 2 can dissipate the heat on the multifunctional debugging interface board 17 to the outside;
[0040] Through the cooperation of the two groups of limit switch action analog debugging interfaces, rich switch input can be provided to meet various debugging needs, the state of each sensor in the system action process is simulated and action emulated by each element on the multifunctional debugging interface board 17 to replace each sensor in actual application for debugging, through the cooperation of the five-way button 8, the flexibility and diversity of the debugging operation can be increased, through the cooperation of the two groups of single-channel outputs, various output signals can be supported to facilitate verification of system response, through the cooperation of the analog quantity debugging interface 11, the input and output of analog signals can be supported to improve the debugging precision, and the switch action direction is unified, so that the debugging personnel do not need to pay attention to the specific properties of the switch during the operation process, greatly improving the use convenience, the multifunctional debugging interface board 17 supports more than 6 kinds of hardware analog debugging, covering common debugging scenarios, making the debugging process more comprehensive and efficient, while meeting the performance requirements, reducing the cost, and improving the performance-price ratio of the product.
[0041] In the description of the utility model, need understanding is, the term "upper", "lower", "front", "back", "left", "right" and so on indicated orientation or position relation is based on the orientation or position relation shown in the drawing, only is for the convenience of describing the utility model, and is not indicating or suggesting the device or element indicated must have a particular orientation, with a particular orientation structure and operation, therefore can not be understood as the limitation to the utility model.
[0042] Finally, it should be pointed out that: the above examples are only used to illustrate the technical solutions of the utility model, but not limit them. Although the utility model has been described in detail with reference to the foregoing examples, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing examples, or make equivalent replacement to part of the technical features, and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the utility model.
Claims
1. Control system multifunctional commissioning interface board, comprising a multifunctional commissioning interface board (17), characterized in that, One end of the multifunctional debugging interface board (17) is fixedly installed with a first limit switch action simulation debugging interface (1), and the other end of the multifunctional debugging interface board (17) is fixedly installed with a second limit switch action simulation debugging interface (2). An LED digital tube debugging interface (3) is also fixedly installed on the multifunctional debugging interface board (17) and located on one side of the second limit switch action simulation debugging interface (2). A power input (4) is also fixedly installed on the multifunctional debugging interface board (17) and located on one side of the LED digital tube debugging interface (3). A 232 to TTL interface (5) and a 458 interface (6) are fixedly installed on one side of the multifunctional debugging interface board (17).
2. The control system multi-functional commissioning interface board of claim 1, wherein, An encoder pulse output (7) is fixedly installed on the other side of the multifunctional debugging interface board (17). A five-way button (8) is also fixedly installed on the other side of the multifunctional debugging interface board (17) and located on one side of the encoder pulse output (7). A second single-channel output (9) and a first single-channel output (10) are also fixedly installed on the other side of the multifunctional debugging interface board (17) and located on one side of the five-way button (8).
3. The control system multi-functional commissioning interface board of claim 2, wherein, An analog quantity debugging interface (11) is also fixedly installed on the multifunctional debugging interface board (17) and located on one side of the first single-channel output (10).
4. The control system multi-functional commissioning interface board of claim 3, wherein, Four groups of protection frames (12) are detachably installed around the multifunctional debugging interface board (17), a first heat dissipation block (13) is fixedly installed on one end of the protection frame (12), and a second heat dissipation block (14) is fixedly installed on the other end of the protection frame (12).
5. The control system multi-functional commissioning interface board of claim 4, wherein, A first fixed block (15) is detachably installed on one end of the multifunctional debugging interface board (17), and a second fixed block (16) is detachably installed on the other end of the multifunctional debugging interface board (17), and both the fixed blocks are made of soft silica gel.
6. The control system multi-functional commissioning interface board of claim 5, wherein, The multifunctional debugging interface board (17) is externally connected to a computer and a pre-debugging PLC in a workshop.