Electromagnet full-automatic temperature rise test bench and test system thereof
By designing a fully automatic temperature rise test bench for electromagnets including base, heat dissipation hole, mount, guide rod, electric push rod, load-bearing partition, sample tray, heating components and temperature monitor, the problem of the inability to effectively detect electromagnets in the prior art is solved, and high accuracy and applicability detection is achieved, and safety performance is improved through intuitive data display and temperature monitoring.
Patent Information
- Application Number
- CN202421907610.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-08-08
AI Technical Summary
Existing electromagnet temperature-raising detection equipment cannot effectively detect electromagnets of different specifications and shapes, and the sample contact with the equipment poorly during the heating process, which affects the accuracy of the detection results. At the same time, it is impossible to intuitively monitor the reaction of electromagnets under different temperatures.
A fully automatic temperature rise test bench of the electromagnet and its testing system are designed, including base, heat dissipation hole, mount, guide rod, electric push rod, load-bearing partition, sample tray, heating components and temperature monitor. Through the coordinated work of these components, the detection and temperature monitoring of electromagnets of different specifications are realized.
The system can effectively detect electromagnets of different specifications, improve the applicability and accuracy of detection, and reflect the reaction of electromagnets at different temperatures in real time through intuitive data display and temperature monitoring, improving safety performance.
Smart Images

Figure CN223038001U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electromagnet testing devices, in particular to a full-automatic temperature rise test bench for electromagnets and its test system. Background Art
[0002] At present, electromagnets are widely used and are indispensable tools for electromagnetic material research, electrical appliances, electric power, motors, and electronic equipment development. Therefore, after the production of electromagnets, it is necessary to detect the quality of electromagnets.
[0003] However, in some electromagnet temperature rise detection devices, due to the wide range of use of electromagnets, the shapes and sizes of electromagnets are diverse. And some detection devices can only detect electromagnets of a single specification or material. When some test samples cannot contact the detection device during the temperature rise process, it is easy to affect the accuracy of the detection results. Therefore, there are certain limitations. At the same time, some temperature rise detection devices cannot intuitively monitor the reactions of electromagnets under different temperature conditions, so this needs to be solved. Summary of the Utility Model
[0004] The purpose of the utility model is to solve the problems existing in the prior art: in some electromagnet temperature rise detection devices, due to the wide range of use of electromagnets, the shapes and sizes of electromagnets are diverse. And some detection devices can only detect electromagnets of a single specification or material. When some test samples cannot contact the detection device during the temperature rise process, it is easy to affect the accuracy of the detection results. Therefore, there are certain limitations. At the same time, some temperature rise detection devices cannot intuitively monitor the reactions of electromagnets under different temperature conditions.
[0005] To achieve the above purpose, the utility model adopts the following technical scheme: a full-automatic temperature rise test bench for electromagnets and its test system, including: a base; heat dissipation holes opened on the surface of the base; and also including:
[0006] A mounting seat fixedly installed on the surface of the base. Guide rods are fixedly installed on the inner walls at the symmetrical positions of the mounting seat, and one ends of the two guide rods are fixedly installed on the surface of the base.
[0007] An electric push rod fixedly installed on the surface of the base. A load-bearing partition is fixedly installed on the output end surface of the electric push rod, and the load-bearing partition is movably sleeved on the outer surfaces of the two guide rods.
[0008] Preferably, a sample tray is fixedly installed on the surface of the load-bearing partition away from the electric push rod, and the outer surface of the sample tray is slidably embedded in the interior of the mounting seat.
[0009] The technical effect of adopting the above further solution is: the load-bearing partition provides a supporting force for the sample tray on the surface.
[0010] Preferably, a placement groove is formed on the surface of the sample tray away from the base, and an inner cavity is formed inside the sample tray.
[0011] The technical effect of adopting the above further solution is: the placement groove on the surface of the sample tray facilitates the placement of samples, and at the same time, the inner cavity fixes the internal parts.
[0012] Preferably, a heating component is arranged inside the inner cavity, and a temperature monitor is fixedly installed on one inner wall of the inner cavity.
[0013] The technical effect of adopting the above further solution is: the inner cavity installs the internal heating component, and in addition, the temperature monitor monitors the temperature inside the inner cavity and reflects it on the display screen.
[0014] Preferably, a mounting frame is fixedly installed on the surface of the base, and a testing device is fixedly installed on the surface of the mounting frame close to the base.
[0015] The technical effect of adopting the above further solution is: the base supports the mounting frame on the surface, and the mounting frame positions the testing device, facilitating contact with the test sample.
[0016] Preferably, a power supply device is fixedly installed on the surface of the base, and a display screen is fixedly installed on the surface of the power supply device away from the base.
[0017] The technical effect of adopting the above further solution is: the base provides a supporting force for the power supply device, and at the same time, the display screen arranged on the surface of the power supply device facilitates the intuitive analysis of data.
[0018] Preferably, a control device is fixedly arranged on one side surface of the power supply device, and a processing system is arranged on the surface of the power supply device.
[0019] The technical effect of adopting the above further solution is: through the control device on the surface of the power supply device, it is convenient to control the heating component to work, and at the same time, the processing system controls the operation of the overall device.
[0020] Preferably, a processing system includes a data receiving module, a data transmitting module, and a protection module. The output end of the protection module is connected to the input end of the data receiving module through a wire. The output end of the data receiving module is connected to the input end of the data transmitting module through a wire. The output end of the data transmitting module is connected to the input end of the display screen through a wire. The data receiving module is configured to receive signals sent by a testing device and transmit the signals to the inside of the display screen through the data transmitting module, so that the data results are displayed on the surface of the display screen in a chart form.
[0021] The technical effect of adopting the above further solution is as follows: By contacting the testing device with the sample, the detection data of the sample in different temperature ranges is transmitted to the data receiving module, and then transmitted to the display screen through the data transmitting module for real-time reflection and comparison of the data. The temperature inside the inner cavity is detected by a temperature monitor. At the same time, through the cooperation of the protection module and the data receiving module, when the temperature is too high, power-off protection and overload protection are carried out to improve the safety performance.
[0022] Compared with the prior art, the advantages and positive effects of the present utility model are as follows.
[0023] 1. In the present utility model, during use, power is provided to the electrical components through the power supply device on the surface of the base. Before detection, the sample is placed inside the placement groove. When the electric push rod works, it drives the load-bearing partition on the surface of the output end to move on the outer surface of the guide rod. The guide rod is fixedly installed on the inner wall of the mounting seat, thereby providing a limiting effect. At the same time, it drives the sample tray on the surface of the load-bearing partition to move in height. Through the movement of the position, it is convenient to detect electromagnet samples of different specifications, improving the applicability.
[0024] 2. In the present utility model, by operating the control device on the surface of the power supply device, the heating component inside the inner cavity is started to work to heat up the sample inside the placement groove. At the same time, it cooperates with the testing device on the surface of the mounting frame to contact the sample, so that the detection data of the sample in different temperature ranges is transmitted to the data receiving module, and then transmitted to the display screen through the data transmitting module for real-time reflection and comparison of the data. The temperature inside the inner cavity is detected by a temperature monitor and reflected on the display screen in cooperation with the data receiving module and the data transmitting module. Thus, the temperature can be adjusted through the control device. At the same time, through cooperation with the protection module, when the temperature is too high, power-off protection and overload protection are carried out to improve the safety performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 FIG. 18 is a schematic side view structure diagram of a full-automatic temperature rise test bench for electromagnets and its test system proposed by the present utility model;
[0026] Figure 2 The present utility model provides a sectional structure schematic diagram of a full-automatic temperature rise test bench for an electromagnet and its test system;
[0027] Figure 3 The present utility model provides an enlarged structure schematic diagram at position A of a full-automatic temperature rise test bench for an electromagnet and its test system;
[0028] Figure 4 The present utility model provides a working process structure schematic diagram of a full-automatic temperature rise test bench for an electromagnet and its test system.
[0029] Legend description:
[0030] 1. Base; 101. Heat dissipation holes; 102. Electric push rod; 103. Mounting seat; 1031. Guide rod; 1032. Load-bearing partition; 104. Sample tray; 1041. Placing groove; 1042. Inner cavity; 1043. Heating component; 1045. Temperature monitor; 105. Mounting frame; 106. Testing device; 2. Power supply device; 201. Display screen; 202. Processing system; 2021. Data receiving module; 2022. Data transmission module; 2023. Protection module; 203. Control device. Specific implementation manner
[0031] In order to more clearly understand the above-mentioned objects, features, and advantages of the present utility model, the present utility model will be further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
[0032] In the following description, many specific details are set forth in order to fully understand the present utility model. However, the present utility model can also be implemented in other ways different from those described herein. Therefore, the present utility model is not limited by the specific embodiments disclosed in the following specification.
[0033] Embodiment 1, as Figures 1-4 shown, the present utility model provides a full-automatic temperature rise test bench for an electromagnet and its test system, including: a base 1; heat dissipation holes 101 opened on the surface of the base 1; further including: a mounting seat 103 fixedly installed on the surface of the base 1, guide rods 1031 fixedly installed on the inner walls at the symmetrical positions of the mounting seat 103, and one ends of the two guide rods 1031 are fixedly installed on the surface of the base 1; an electric push rod 102 fixedly installed on the surface of the base 1, and a load-bearing partition 1032 is fixedly installed on the output end surface of the electric push rod 102, and the load-bearing partition 1032 is movably sleeved on the outer surfaces of the two guide rods 1031.
[0034] In this embodiment, during use, power is provided to the power components through the power supply device 2 on the surface of the base 1. Before detection, the sample is placed inside the placement groove 1041. When the electric push rod 102 operates, it drives the load-bearing partition 1032 on the surface of the output end to move on the outer surface of the guide rod 1031. Since the guide rod 1031 is fixedly installed on the inner wall of the mounting seat 103, a limiting effect is provided. At the same time, the sample tray 104 on the surface of the load-bearing partition 1032 is driven to move in height. Through the movement of the position, it is convenient to detect electromagnet samples of different specifications, improving applicability.
[0035] Embodiment 2, a sample tray 104 is fixedly installed on the surface of the load-bearing partition 1032 away from the electric push rod 102. The outer surface of the sample tray 104 is slidably embedded inside the mounting seat 103. A placement groove 1041 is formed on the surface of the sample tray 104 away from the base 1. An inner cavity 1042 is formed inside the sample tray 104. A heating component 1043 is arranged inside the inner cavity 1042. A temperature monitor 1045 is fixedly installed on one inner wall of the inner cavity 1042. A mounting frame 105 is fixedly installed on the surface of the base 1. A testing device 106 is fixedly installed on the surface of the mounting frame 105 close to the base 1. A power supply device 2 is fixedly installed on the surface of the base 1. A display screen 201 is fixedly installed on the surface of the power supply device 2 away from the base 1. A control device 203 is fixedly arranged on one side surface of the power supply device 2; it includes: a processing system 202, and the processing system 202 includes a data receiving module 2021, a data transmission module 2022, and a protection module 2023. The output end of the protection module 2023 is electrically connected to the input end of the data receiving module 2021 through a wire. The output end of the data receiving module 2021 is electrically connected to the input end of the data transmission module 2022 through a wire. The output end of the data transmission module 2022 is electrically connected to the input end of the display screen 201 through a wire. The data receiving module 2021 is used to receive the signal sent by the testing device 106 and transmit the signal to the inside of the display screen 201 through the data transmission module 2022, so that the data result is displayed in a chart form on the surface of the display screen 201.
[0036] In this embodiment, by operating the control device 203 on the surface of the power supply device 2, the heating component 1043 inside the inner cavity 1042 is started to work, and the sample placed in the placement groove 1041 is heated. At the same time, the test device 106 on the surface of the mounting bracket 105 is cooperated to contact the sample, so as to transmit the detection data of the sample at different temperature segments to the data receiving module 2021, and then transmit the data to the display screen 201 through the data transmission module 2022 for real-time reflection and comparison of the data. The temperature inside the inner cavity 1042 is detected by the temperature monitor 1045, and is reflected on the display screen 201 in cooperation with the data receiving module 2021 and the data transmission module 2022, so as to adjust the temperature through the control device 203. At the same time, in cooperation with the protection module 2023, when the temperature is too high, power-off protection and overload protection work are carried out to improve the safety performance.
[0037] Working principle: During use, the power supply device 2 on the surface of the base 1 provides power for the electrical components. Before detection, the sample is placed inside the placement groove 1041. When the electric push rod 102 works, it drives the load-bearing partition 1032 on the output end surface to move on the outer surface of the guide rod 1031. Since the guide rod 1031 is fixedly installed on the inner wall of the mounting seat 103, a limiting effect is provided. At the same time, it drives the sample tray 104 on the surface of the load-bearing partition 1032 to move in height. At the same time, the control device 203 on the surface of the power supply device 2 is operated to start the heating component 1043 inside the inner cavity 1042 to work, and the sample placed in the placement groove 1041 is heated. At the same time, the test device 106 on the surface of the mounting bracket 105 is cooperated to contact the sample, so as to transmit the detection data of the sample at different temperature segments to the data receiving module 2021, and then transmit the data to the display screen 201 through the data transmission module 2022 for real-time reflection and comparison of the data. Through the movement of the position, it is convenient to detect electromagnet samples of different specifications, improving the applicability. In addition, the temperature inside the inner cavity 1042 is detected by the temperature monitor 1045, and is reflected on the display screen 201 in cooperation with the data receiving module 2021 and the data transmission module 2022, so as to adjust the temperature through the control device 203. At the same time, in cooperation with the protection module 2023, when the temperature is too high, power-off protection and overload protection work are carried out to improve the safety performance.
[0038] The above is only a preferred embodiment of the present invention, and does not limit the present invention in other forms. Any person skilled in the art may use the disclosed technical content to make changes or modifications into equivalent embodiments with equivalent changes and apply them to other fields. However, as long as it does not depart from the technical solution content of the present invention, any simple modification, equivalent change and modification made to the above embodiments based on the technical essence of the present invention still belong to the protection scope of the technical solution of the present invention.
Claims
1. An electromagnet fully automatic temperature rise test bench, comprising: Base (1); The heat dissipation hole (101) is provided on the surface of the base (1); characterized in that it also comprises: A mounting seat (103) is fixedly mounted on the surface of the base (1); guide rods (1031) are fixedly mounted on the inner wall at a symmetrical position of the mounting seat (103); and one end surface of two guide rods (1031) is fixedly mounted on the surface of the base (1); The electric push rod (102) is fixedly mounted on the surface of the base (1), and a load-bearing partition (1032) is fixedly mounted on the output end surface of the electric push rod (102), and the load-bearing partition (1032) is movably sleeved on the outer surfaces of the two guide rods (1031).
2. The fully automatic temperature rise test bench for electromagnets according to claim 1, characterized in that: A sample tray (104) is fixedly mounted on a surface of one side of the load-bearing partition (1032) away from the electric push rod (102), and an outer surface of the sample tray (104) is slidably embedded in the interior of the mounting seat (103).
3. The fully automatic temperature rise test bench for electromagnets according to claim 2 is characterized in that: A placement groove (1041) is provided on a surface of the sample tray (104) away from the base (1), and an inner cavity (1042) is provided inside the sample tray (104).
4. The fully automatic temperature rise test bench for electromagnets according to claim 3 is characterized in that: A heating component (1043) is disposed inside the inner cavity (1042), and a temperature monitor (1045) is fixedly mounted on an inner wall of one side of the inner cavity (1042).
5. The fully automatic temperature rise test bench for electromagnets according to claim 4 is characterized in that: A mounting frame (105) is fixedly mounted on the surface of the base (1), and a testing device (106) is fixedly mounted on the mounting frame (105) close to the surface of the base (1).
6. The fully automatic temperature rise test bench for electromagnets according to claim 5, characterized in that: A power supply device (2) is fixedly mounted on the surface of the base (1), and a display screen (201) is fixedly mounted on the surface of the power supply device (2) away from the base (1).
7. The fully automatic temperature rise test bench for electromagnets according to claim 6, characterized in that: A control device (203) is fixedly arranged on one side surface of the power supply device (2).
8. An electromagnet fully automatic temperature rise test system, characterized in that: include: A processing system (202), the processing system (202) comprising a data receiving module (2021), a data transmission module (2022) and a protection module (2023), the output end of the protection module (2023) being connected to the input end of the data receiving module (2021) via a wire, the output end of the data receiving module (2021) being connected to the input end of the data transmission module (2022) via a wire, the output end of the data transmission module (2022) being connected to the input end of a display screen (201) via a wire, the data receiving module (2021) being used to receive a signal sent by a test device (106), and transmitting the signal to the inside of the display screen (201) via the data transmission module (2022), so that the data result is displayed in a graphical form on the surface of the display screen (201).