Adaptive signal compensation transmitter

By using a modular design and an adaptive signal compensation transmitter with one-to-one connection channels, the problems of rigid module layout, insufficient heat dissipation, and inconvenient operation of signal transmitters are solved, achieving high stability, convenience, and high-precision signal transmission for the equipment.

CN121843008APending Publication Date: 2026-04-10BEIFANG WEIJIAMAO COAL POWER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
BEIFANG WEIJIAMAO COAL POWER CO LTD
Filing Date
2026-01-05
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing signal transmitters suffer from problems such as rigid module layout, insufficient heat dissipation, inconvenient operation, and complex assembly, which affect signal compensation accuracy and equipment stability.

Method used

The adaptive signal compensation transmitter adopts a modular design, which achieves precise limiting and physical separation of the circuit board through the isolation design. The innovative operation control panel can be flipped and adjusted to ensure the independence of signal transmission and heat dissipation efficiency. The one-to-one connection channel design eliminates cross interference.

Benefits of technology

It improves the stability and lifespan of the equipment, enhances ease of operation and signal accuracy, and ensures high reliability and high precision in data interaction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a self-adaptive signal compensation transmitter, the self-adaptive signal compensation transmitter comprises a signal compensation transmitter main body used for signal compensation, and the signal compensation transmitter main body is formed by enclosing a back plate, two side plates, a bottom plate, a front plate and a top plate; a base is installed on the side, facing the top plate, of the bottom plate. A plurality of partitions are installed on the base at equal intervals in the width direction of the base. Wherein the base is equally divided into N parts by the plurality of partitions, and each part is provided with a compensation transmitter inner circuit board which is distributed along the length direction of the base; a storage cavity is formed in the side, away from the bottom plate, of the top plate, an operation assembly is installed in the storage cavity, and the operation assembly is electrically connected with a circuit board in the compensation transmitter. According to the self-adaptive signal compensation transmitter, the stability and the service life of equipment can be improved, the operation convenience and the adaptability are enhanced, and the signal precision and the reliability are ensured.
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Description

Technical Field

[0001] The embodiments disclosed herein belong to the field of compensation transmitter technology, specifically relating to an adaptive signal compensation transmitter. Background Technology

[0002] With the rapid development of industrial automation, data acquisition, and signal processing technologies, signal transmitters, as a crucial component connecting sensors and control systems, are widely used in fields such as power, chemical, manufacturing, and environmental monitoring. Their main function is to convert various non-standard electrical signals (such as voltage, current, and frequency) into standard signals, achieving signal isolation, amplification, and transmission, thus ensuring the accuracy of data acquisition and the stability of system control.

[0003] Most signal transmitters on the market today adopt a modular integrated design, often containing multiple independent transmission modules, such as voltage transmission modules, low-voltage current transmission modules, and high-voltage current transmission modules. These modules are connected through internal circuits. Although this achieves parallel processing of multiple signals, its module layout and connection method still have the following shortcomings: 1. Rigid connection method: Most transmitters adopt a fixed or stacked module layout, and there is no one-to-one dedicated connection channel between the external interface and the internal circuit board, which leads to the risk of signal path crossing and interference, affecting the accuracy of signal compensation.

[0004] 2. Insufficient heat dissipation structure: Under long-term operation or high load, the close arrangement of multiple modules can easily cause local heat accumulation, accelerate the aging of electronic components, and reduce the overall stability and service life of the equipment.

[0005] 3. Poor ease of operation: Traditional equipment often has the control panel fixed on the surface of the chassis, which cannot be adjusted in angle and position according to the usage scenario or operator habits, which is not conducive to on-site operation, teaching demonstration and multi-user collaborative work.

[0006] 4. Complex assembly and maintenance: The circuit board lacks a dedicated positioning structure, making it prone to displacement under vibration; the lack of physical barriers between modules makes disassembly and replacement cumbersome, affecting maintenance efficiency and system reliability.

[0007] Therefore, in order to address the shortcomings of existing signal transmitters in terms of signal compensation accuracy, heat dissipation capacity, operational flexibility, and structural reliability, there is an urgent need for a new type of signal compensation transmitter with adaptive compensation capability, optimized heat dissipation layout, and support for flexible operation and reliable assembly, so as to meet the dual requirements of modern industry for high precision, high reliability, and user-friendly operation. Summary of the Invention

[0008] The embodiments disclosed herein are intended to at least address one of the technical problems existing in the prior art, and to provide an adaptive signal compensation transmitter.

[0009] Embodiments of this disclosure provide an adaptive signal compensation transmitter, the adaptive signal compensation transmitter including a signal compensation transmitter body for signal compensation, the signal compensation transmitter body being formed by a back plate, two side plates, a bottom plate, a front plate and a top plate; A base is mounted on the side of the base plate facing the top plate, and multiple partitions are equally spaced along the width direction of the base; wherein, the multiple partitions divide the base into N equal parts, and each part is equipped with a compensation transmitter internal circuit board distributed along the length direction of the base. The top plate has a storage cavity on the side opposite to the bottom plate. An operating component is installed in the storage cavity, and the operating component is electrically connected to the circuit board inside the compensation transmitter.

[0010] Optionally, the back plate and the front plate are distributed along the length direction of the base, the two side plates are distributed along the width direction of the base, and the bottom plate and the top plate are distributed along the height direction of the base. The back plate and the front plate are provided with multiple sets of corresponding connection through holes, and each set of connection through holes corresponds to a circuit board inside the compensation transmitter.

[0011] Optionally, each of the two side plates has multiple protrusions evenly spaced along the length of the base on opposite sides.

[0012] Optionally, the convex strip has an outward convex structure.

[0013] Optionally, the operating components include an operating control panel, a motor, a rotating rod, and wires; The motor is installed inside the receiving cavity, and the output end of the motor is connected to the rotating rod. The operating control panel is sleeved on the rotating rod, and the operating control panel is electrically connected to the circuit boards inside each of the compensation transmitters via wires. The control panel is flipped in and out of the storage cavity under the control of the motor and the rotating rod.

[0014] Optionally, the back plate, side plate, bottom plate, front plate, and top plate are fixedly connected by screws through positioning holes.

[0015] The adaptive signal compensation transmitter of the embodiments of this disclosure has the following beneficial effects: (1) Improve equipment stability and lifespan: The isolation design realizes the precise limiting and physical separation of the circuit board inside the compensation transmitter, effectively improves heat dissipation, prevents heat accumulation, and thus significantly enhances the long-term operating stability of the equipment and extends its service life.

[0016] (2) Enhanced ease of operation and adaptability: The innovative flip-out control panel can be adjusted at multiple angles according to the usage scenario and operator habits, which not only reduces operator fatigue, but also improves the visibility of information in teaching, display and other scenarios, and optimizes the human-computer interaction experience.

[0017] (3) Ensure signal accuracy and reliability: Through the connection through hole, it can form a "one-to-one" exclusive correspondence with each circuit board in the internal compensation transmitter, build an independent signal transmission channel, fundamentally eliminate cross interference between channels, and ensure high accuracy and high reliability of signal compensation and data interaction. Attached Figure Description

[0018] Figure 1 This is an exploded three-dimensional structural diagram of an adaptive signal compensation transmitter according to an embodiment of the present disclosure. Figure 2 This is an exploded side view of the overall three-dimensional structure of an adaptive signal compensation transmitter according to another embodiment of the present disclosure; Figure 3 This is a schematic diagram of the overall structure of an adaptive signal compensation transmitter according to another embodiment of the present disclosure; Figure 4 This is a schematic diagram showing the fit between the base, the partition, and the circuit board inside the compensation transmitter. Figure 5 This is a schematic diagram of the specific structure of the operating component. Detailed Implementation

[0019] To enable those skilled in the art to better understand the technical solutions of this disclosure, the disclosure will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0020] like Figures 1 to 5 As shown, an embodiment of this disclosure provides an adaptive signal compensation transmitter, which includes a signal compensation transmitter body 1 for signal compensation. The signal compensation transmitter body 1 is formed by a back plate 101, two side plates 102, a bottom plate 103, a front plate 104, and a top plate 105. A base 301 is mounted on the bottom plate 103 facing the top plate 105, and a plurality of partitions 302 are equally spaced along the width direction of the base 301. The plurality of partitions 302 divide the base 301 into N equal parts, and each part holds a compensation transmitter internal circuit board 3 distributed along the length direction of the base 301. A receiving cavity 109 is formed on the side of the top plate 105 away from the bottom plate 103. An operating component is installed in the receiving cavity 109, and the operating component is electrically connected to the compensation transmitter internal circuit board 3.

[0021] Furthermore, the back plate 101 and the front plate 104 are distributed along the length direction of the base 301, the two side plates 102 are distributed along the width direction of the base 301, and the bottom plate 103 and the top plate 105 are distributed along the height direction of the base 301. The back plate 101 and the front plate 104 have multiple sets of corresponding connecting through holes 108, and each set of connecting through holes 108 corresponds to one circuit board 3 inside the compensation transmitter.

[0022] Specifically, such as Figures 1 to 5 As shown, the core of the adaptive signal compensation transmitter in the embodiments of this disclosure lies in a signal compensation transmitter body 1 for signal compensation. The housing of the signal compensation transmitter body 1 adopts a modular design and is formed by a back plate 101, two side plates 102, a bottom plate 103, a front plate 104 and a top plate 105, forming a structurally stable hexahedral chassis.

[0023] The back plate 101, side plate 102, bottom plate 103, front plate 104, and top plate 105 are fixedly connected by screws through positioning holes 107. Figure 1 , Figure 2 As shown, positioning holes 107 are pre-drilled on the mating edges of the back panel 101, side panel 102, bottom panel 103, front panel 104, and top panel 105. During assembly, high-strength screws can be used to pass through these corresponding positioning holes 107 to precisely align and securely connect the various panels, ensuring the rigidity and sealing of the overall structure and providing a reliable protective environment for the internal precision electronic components.

[0024] Reference Figure 1 , Figure 2 and Figure 4 A long strip-shaped base 301 is fixedly installed on the inner side of the base plate 103 (i.e., the side facing the top plate 105). This base 301 extends along its width direction (i.e.,...) Figure 1 Multiple partitions 302 are installed at equal intervals in the left-right direction (the direction in which the two side panels are opposite each other). These parallel partitions 302 divide the upper surface of the base 301 into N independent installation areas (N is an integer greater than 1, such as 2, 3, 4, 6, etc., which can be configured according to the number of channels).

[0025] Within each area separated by partition 302, along the length direction of base 301 (i.e. Figure 1A compensation transmitter internal circuit board 3 is placed in the front-to-back direction (facing opposite each other on the front and back panels). Each compensation transmitter internal circuit board 3 constitutes an independent signal processing and compensation channel. The physical separation of the partition 302 effectively avoids heat accumulation caused by the close stacking of multiple compensation transmitter internal circuit boards 3, forming a natural heat dissipation channel, significantly improving the overall heat dissipation efficiency, thereby enhancing the stability and lifespan of the equipment under long-term high-load operation.

[0026] To achieve accurate signal connection, embodiments of this disclosure also design a dedicated interface with a one-to-one correspondence. For example... Figure 1 and Figure 2 As shown, multiple sets of corresponding connection through holes 108 are provided on the front panel 104 and the back panel 101. Importantly, each set of connection through holes 108 spatially corresponds precisely to a mounting area on the base 301 and its internal circuit board 3 of the compensation transmitter. This one-to-one mapping relationship allows external input / output cables to be directly connected to the corresponding circuit board 3 of the compensation transmitter through a dedicated physical channel, fundamentally eliminating path crossing and mutual interference of multiple signals at the interface, ensuring the accuracy of signal compensation and the reliability of data transmission.

[0027] For example, such as Figure 1 and Figure 3 As shown, on each of the two side plates 102 facing away from each other, there are multiple protrusions 106 evenly distributed along the length direction of the base 301. The protrusions 106 are outwardly convex structures.

[0028] Specifically, such as Figure 1 and Figure 3 As shown, on the opposite outer surfaces of the two side plates 102, multiple protrusions 106 are evenly distributed along the length of the base 301. These protrusions 106 are outwardly convex rib-like structures, which not only increase the surface area of ​​the shell to improve the natural convection heat dissipation effect, but also significantly enhance the mechanical strength of the side plates 102, making the equipment more resistant to vibration and impact during handling and installation.

[0029] Furthermore, such as Figure 1 , Figure 2 , Figure 3 and Figure 5As shown, the operating components include an operating control panel 2, a motor 201, a rotating rod 202, and a wire 203. The motor 201 is installed inside the receiving cavity 109. The output end of the motor 201 is connected to the rotating rod 202. The operating control panel 2 is sleeved on the rotating rod 202. The operating control panel 2 is electrically connected to the circuit boards 3 inside each of the compensation transmitters via the wire 203. The operating control panel 2 is tilted in and out of the receiving cavity 109 under the control of the motor 201 and the rotating rod 202.

[0030] Specifically, such as Figure 1 , Figure 2 , Figure 3 and Figure 5 As shown, a storage cavity 109 is provided at the top of the top plate 105. An operating assembly is installed in the storage cavity 109, which includes an operating control panel 2, a motor 201, a rotating rod 202, and a wire 203.

[0031] The motor 201 is fixedly installed inside the receiving cavity 109. The output shaft of the motor 201 is connected to the rotating rod 202, and the operation control panel 2 (such as a touch screen or button panel) is sleeved on the rotating rod 202 and can rotate with it. The operation control panel 2 is electrically connected to the circuit boards 3 inside each compensated transmitter on the base 301 through flexible wires 203 for parameter setting, status monitoring and signal interaction.

[0032] When not in use or during transport, the control panel 2 flips inward under the drive of the motor 201, completely folding into and embedding itself in the storage cavity 109, keeping the top surface of the device flat, facilitating stacking and storage, and effectively protecting the panel from bumps and dust contamination.

[0033] When operation is required, the motor 201 is started, driving the rotating rod 202 to flip the operation control panel 2 out of the storage cavity 109. The operation control panel 2 can stay at multiple preset angles, and users can adjust it to the most comfortable and best viewing angle according to their own height, operating habits, or the needs of on-site teaching demonstrations, greatly improving the convenience of operation and human-computer interaction experience.

[0034] To better understand the adaptive signal compensation transmitter of the embodiments of this disclosure, its working principle is described below: When the adaptive signal compensation transmitter is working, multiple external signals are connected through corresponding dedicated connection holes 108 on the front panel 104 or back panel 101. Each signal is transmitted directly to the corresponding circuit board 3 inside the compensation transmitter through its independent physical path. The circuit boards 3 inside each compensation transmitter isolate, amplify, and compensate the received signals, converting them into standard output signals, which are then sent out through the corresponding output channels. Since each channel is completely independent in terms of physical structure (isolation 302) and connection path (corresponding connection holes 108), true inter-channel signal isolation and dedicated compensation are achieved, ensuring high accuracy and high reliability. At the same time, the optimized heat dissipation structure and adjustable operation panel jointly ensure long-term stable operation and convenient maintenance of the equipment.

[0035] The adaptive signal compensation transmitter of this disclosure adopts a modular precision assembly structure. Its back plate, side plates, bottom plate, front plate, and top plate are precisely fastened together using high-strength screws. The uniform gaps between the plates ensure the overall stability of the main structure and provide reliable protective space for internal components. The pre-set connection holes in the main body correspond one-to-one with the circuit boards inside the compensation transmitter, ensuring accurate and error-free signal transmission paths between the internal circuit boards and external interfaces, thus laying a structural foundation for the stable operation of the device's core functions.

[0036] For the installation of the circuit boards inside the compensated transmitter, a special combination structure of a base and partition was designed: the base precisely limits the position of the circuit boards inside the compensated transmitter, preventing positional displacement caused by vibration during equipment operation. The partition physically separates multiple circuit boards inside the compensated transmitter, effectively preventing localized heat accumulation caused by direct contact between circuit boards. This prevents abnormal increases in the overall equipment temperature and reduces the impact of high-temperature environments on the aging rate of electronic components, ultimately significantly improving the long-term operational stability and service life of the equipment.

[0037] Using a motor as the core power unit, a stable driving force is provided to the entire transmission mechanism, thereby driving the rotating rod to rotate precisely and smoothly along a preset mechanical trajectory. Through the transmission action of the rotating rod, the control panel stored in the storage cavity can be smoothly flipped out, achieving an efficient switch from "storage state" to "operating state." Simultaneously, the control panel is firmly and stably connected to the circuit board inside the compensation transmitter via wires, ensuring both the accuracy of signal transmission and the reliability of power supply. Furthermore, it allows for flexible multi-angle adjustment of the control panel, accommodating operators of different heights and operating habits, reducing operator fatigue. In scenarios such as equipment demonstrations and on-site training, it also presents panel information to the observer at a clearer angle, ultimately significantly improving the equipment's ease of operation and adaptability to various scenarios, optimizing the overall user experience.

[0038] Each compensation transmitter's internal circuit board has a precise one-to-one correspondence with its connecting vias, creating a dedicated, independent connection unit. This "one-to-one" design architecture not only enables customized and precise matching during the compensation calibration process, ensuring that each signal can be transmitted through an independent channel, but also eliminates the possibility of cross-interference at the structural level. When signals are transmitted along their dedicated paths, attenuation is less and response is faster, significantly improving the accuracy of data interaction. Furthermore, the precise structural alignment simplifies the assembly process, reduces docking errors, and allows for more targeted component replacement during later maintenance, further ensuring the stability and reliability of the entire system and laying a solid foundation for the efficient operation of the equipment.

[0039] It is understood that the above embodiments are merely exemplary embodiments used to illustrate the principles of this disclosure, and this disclosure is not limited thereto. For those skilled in the art, various modifications and improvements can be made without departing from the spirit and substance of this disclosure, and these modifications and improvements are also considered to be within the scope of protection of this disclosure.

Claims

1. An adaptive signal compensation transmitter, characterized in that, The adaptive signal compensation transmitter includes a signal compensation transmitter body for signal compensation, which is formed by a back plate, two side plates, a bottom plate, a front plate and a top plate. A base is mounted on the side of the base plate facing the top plate, and multiple partitions are equally spaced along the width direction of the base; wherein, the multiple partitions divide the base into N equal parts, and each part is equipped with a compensation transmitter internal circuit board distributed along the length direction of the base. The top plate has a storage cavity on the side opposite to the bottom plate. An operating component is installed in the storage cavity, and the operating component is electrically connected to the circuit board inside the compensation transmitter.

2. The adaptive signal compensation transmitter according to claim 1, characterized in that, The back plate and the front plate are distributed along the length direction of the base, the two side plates are distributed along the width direction of the base, and the bottom plate and the top plate are distributed along the height direction of the base. The back plate and the front plate are provided with multiple sets of corresponding connection through holes, and each set of connection through holes corresponds to a circuit board inside the compensation transmitter.

3. The adaptive signal compensation transmitter according to claim 2, characterized in that, On the opposite sides of the two side plates, multiple protrusions are evenly distributed along the length of the base.

4. The adaptive signal compensation transmitter according to claim 3, characterized in that, The convex strip has an outward convex structure.

5. The adaptive signal compensation transmitter according to claim 1, characterized in that, The operating components include an operating control panel, a motor, a rotating rod, and wires; The motor is installed inside the receiving cavity, and the output end of the motor is connected to the rotating rod. The operating control panel is sleeved on the rotating rod, and the operating control panel is electrically connected to the circuit boards inside each of the compensation transmitters via wires. The control panel is flipped in and out of the storage cavity under the control of the motor and the rotating rod.

6. The adaptive signal compensation transmitter according to claim 1, characterized in that, The back plate, side plates, bottom plate, front plate, and top plate are fixedly connected by screws through positioning holes.