An environmental temperature control device and control method for electronic water valve testing

By designing an ambient temperature control device for testing electronic water valves, and adopting an automated sliding mechanism and temperature control module, the problems of low efficiency and large data errors in existing water valve testing have been solved, achieving efficient and accurate water valve testing.

CN116466764BActive Publication Date: 2025-11-18SHANGHAI QIANHETAI TECH CO LTD
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Patent Information

Application Number
CN202310406941.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-04-17
Publication Date
2025-11-18
Estimated Expiration
2043-04-17

AI Technical Summary

Technical Problem

Existing water valve testing equipment is inefficient and manual data analysis is prone to errors, affecting data accuracy.

Method used

Design an ambient temperature control device for testing electronic water valves, including a positioning cylinder, a controller, a T-shaped column, an annular plate, and an arc plate. The device collects data and generates command signals through a temperature control module, and an automated sliding mechanism removes the water valve body, enabling simultaneous testing of multiple data points.

Benefits of technology

It improved the efficiency of water valve testing, reduced errors in manual data analysis, and increased data accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an environmental temperature control device and control method for electronic water valve testing, and relates to the technical field of water valve testing. The application comprises a positioning cylinder, a controller and two T-shaped columns are arranged on the positioning cylinder, so that the controller and the T-shaped columns are arranged on the outer sidewall of the positioning cylinder through the second ring-shaped plate; two first ring-shaped plates are arranged on one end of the T-shaped column, so that the first ring-shaped plate is arranged on one end of the T-shaped column. The second ring-shaped plate is arranged, so that the water valve body is screwed into the second ring-shaped plate through the second ring-shaped groove, the two water valve bodies are conveniently tested, the efficiency of analyzing various data of the water valve body product is improved, the efficiency of testing the water valve body is improved, errors caused by manual data analysis are reduced, and the accuracy of the data is improved.
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Description

Technical Field

[0001] This invention belongs to the field of electronic water valve testing, specifically, it relates to an ambient temperature control device and control method for testing electronic water valves. Background Technology

[0002] During the manufacturing process of water valves, it is necessary to test the water valves after they have been processed.

[0003] However, existing water valve test temperature control devices have the following drawbacks when in use:

[0004] 1. However, previous tests were conducted separately on indicators such as inlet and outlet water pressure and flow rate of the water valve. Data was recorded for each test, and after all the required tests were completed, the data was manually aggregated and finally analyzed. This resulted in low testing efficiency for the water valve, and manual data analysis was prone to errors, affecting the accuracy of the final data.

[0005] To address these shortcomings, an ambient temperature control device and method for testing electronic water valves are proposed. Summary of the Invention

[0006] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide an ambient temperature control device and control method for testing electronic water valves.

[0007] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows:

[0008] An ambient temperature control device for testing electronic water valves includes a positioning cylinder, on which a controller and two T-shaped columns are mounted, facilitating the mounting of the controller and the T-shaped columns on the outer wall of the positioning cylinder via a second annular plate;

[0009] Two first annular plates are mounted on one end of the T-shaped column, which facilitates the mounting of the first annular plates on one end of the T-shaped column. The inner sidewall of the first annular plate is elastically and slidably fitted with three arc-shaped plates, which facilitates the sliding of the arc-shaped plates on the inner sidewall of the first annular plate.

[0010] Two water valve bodies are provided, with one end of each water valve body threaded onto the outer wall of the positioning cylinder, facilitating the fitting of the water valve body onto the positioning cylinder. The inner wall of the arc-shaped plate fits against the outer wall of the water valve body, facilitating the positioning of the water valve body inside the first annular plate via the arc-shaped plate.

[0011] A method for controlling the ambient temperature during testing of an electronic water valve includes the following steps:

[0012] Step 1: Obtain the data collected by the temperature control module. This data includes whether there is water flowing inside the water valve body. If so, obtain the water temperature at the temperature control module and send the water temperature information to the display screen of the controller.

[0013] Step 2: Obtain the temperature trajectory data processed by the controller display screen, process the data to generate a command signal, and send the command signal to the sliding mechanism. The sliding mechanism is used to move the arc-shaped plate away from the water valve body and remove the water valve body from the inside of the second annular groove.

[0014] Optionally, the inner wall of the first annular plate has a first annular groove and three threaded holes, the threaded holes communicating with the first annular groove. The arc-shaped plate slides within the first annular groove, facilitating its sliding and improving its stability during sliding. Multiple fixing cylinders are installed on the inner wall of the first annular groove, facilitating their installation. A sliding rod is slidably fitted to one end of each fixing cylinder, facilitating its sliding within the cylinder and improving its stability during sliding. One end of the sliding rod is installed on the outer wall of the arc-shaped plate, facilitating its installation within the first annular groove via the sliding rod. A connection is established between the outer wall of the arc-shaped plate and the inner wall of the first annular groove. Multiple springs are provided to facilitate the reset of the arc-shaped plate under the action of the springs. The springs are sleeved on the periphery of the fixed cylinder and the sliding rod, facilitating the sliding of the springs on the periphery of the fixed cylinder and the sliding rod. A threaded rod is threaded into the threaded hole, facilitating the threaded rod to be threaded into the threaded hole. A rotating rod is installed at one end of the threaded rod, facilitating the user to drive the threaded rod to rotate inside the threaded hole. A T-shaped rod is installed at the other end of the rotating rod, facilitating the installation of the T-shaped rod on the rotating rod. A T-shaped hole is opened on the outer wall of the arc-shaped plate, and the T-shaped rod rotates inside the T-shaped hole, rotatably engaging inside the T-shaped hole. A friction pad is installed on the rotating rod, facilitating the reduction of friction between the rotating rod and the user's hand.

[0015] Optionally, a second annular plate is mounted on the positioning cylinder, and the controller is mounted on the outer wall of the second annular plate, facilitating its mounting. A T-shaped post is also mounted on the outer wall of the second annular plate, facilitating its mounting. Second annular grooves are formed at both ends of the second annular plate, allowing the water valve body to be threaded into the second annular groove via an external thread. An external thread is provided on the second annular groove, and an internal thread is provided on the inner wall of the water valve body. The external thread and the internal thread engage. The arc-shaped plate... A first rubber pad is installed on the inner sidewall, which is attached to the outer sidewall of the water valve body. This facilitates increasing the friction between the outer sidewall of the water valve body and the inner sidewall of the arc-shaped plate. A second rubber pad is installed on the second annular groove, which cooperates with the outer sidewall of the water valve body. This facilitates increasing the friction between the water valve body and the inner sidewall of the second annular groove. A third rubber pad is installed on the inner sidewall of the first annular plate, which cooperates with the outer sidewall of the water valve body. This facilitates increasing the friction between the water valve body and the first annular plate.

[0016] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art. Of course, any product implementing the present invention does not necessarily need to achieve all of the following advantages at the same time:

[0017] The second annular plate is designed so that the water valve body can be threaded into the second annular groove inside the second annular plate. This facilitates the testing of the two water valve bodies, improves the efficiency of analyzing various data of the water valve body products, increases the efficiency of water valve body testing, reduces errors that are easily caused by manual data analysis, and improves the accuracy of the data.

[0018] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description

[0019] The accompanying drawings described below are merely some embodiments. Those skilled in the art can obtain other drawings based on these drawings without any creative effort.

[0020] In the picture:

[0021] Figure 1 This is a three-dimensional structural schematic diagram of an embodiment of the present invention;

[0022] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle;

[0023] Figure 3 This is a schematic diagram of a T-shaped column structure according to an embodiment of the present invention;

[0024] Figure 4 This is a cross-sectional structural diagram of an embodiment of the present invention;

[0025] Figure 5 for Figure 4 Schematic diagram of the structure at point B;

[0026] Figure 6 for Figure 4 Schematic diagram of the structure at point C.

[0027] The attached diagram lists the components represented by each number as follows:

[0028] Positioning cylinder 1, second annular plate 101, controller 102, second annular groove 103

[0029] T-shaped column 2, first annular plate 201, first annular groove 202, arc plate 203, T-shaped hole 204, threaded hole 205, rotating rod 206, threaded rod 207;

[0030] Water valve body 3.

[0031] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the invention in any way, but rather to illustrate the concept of the invention to those skilled in the art by referring to specific embodiments. Detailed Implementation

[0032] The invention will now be described in further detail with reference to the accompanying drawings.

[0033] Please see Figure 1-6 As shown, this embodiment provides an ambient temperature control device for testing electronic water valves, including a positioning cylinder 1. The positioning cylinder 1 is equipped with a controller 102 and two T-shaped columns 2, which facilitates the controller 102 and the T-shaped columns 2 to be installed on the outer wall of the positioning cylinder 1 through the second annular plate 101.

[0034] Two first annular plates 201 are installed on one end of the T-shaped column 2, which facilitates the installation of the first annular plates 201 on one end of the T-shaped column 2. The inner sidewall of the first annular plate 201 is elastically and slidably fitted with three arc-shaped plates 203, which facilitates the sliding of the arc-shaped plates 203 on the inner sidewall of the first annular plate 201.

[0035] Two water valve bodies 3, one end of which is threaded onto the outer wall of the positioning cylinder 1, which facilitates the water valve body 3 being fitted onto the positioning cylinder 1. The inner wall of the arc plate 203 fits against the outer wall of the water valve body 3, which facilitates the positioning of the water valve body 3 inside the first annular plate 201 by means of the arc plate 203.

[0036] A method for controlling the ambient temperature during testing of an electronic water valve includes the following steps:

[0037] Step 1: Obtain the data collected by the temperature control module. This data includes whether there is water flowing inside the water valve body 3. If so, obtain the water temperature at the temperature control module and send the water temperature information to the display screen of the controller 102.

[0038] Step 2: Obtain the temperature trajectory data processed by the display screen of controller 102, process the data, generate a command signal, and send the command signal to the sliding mechanism. The sliding mechanism is used to move the arc plate 203 away from the water valve body 3 and remove the water valve body 3 from the inside of the second annular groove 103.

[0039] When it is necessary to install the water valve body 3, first place the water valve body 3 inside the second annular groove 103 of the second annular plate 101, then rotate the water valve body 3, and the water valve body 3 is threaded into the second annular groove 103. Then the user rotates the rotating rod 206, and the rotating rod 206 drives the threaded rod 207 to rotate and engage in the threaded hole 205. The threaded rod 207 drives the arc plate 203 to slide inside the first annular groove 202. The arc plate 203 drives the sliding rod to slide inside the fixed cylinder and stretch the spring. The arc plate 203 positions the surface of the water valve body 3, thereby positioning the water valve body 3 on the second annular plate 101, thus completing the installation of the water valve body 3.

[0040] The second annular plate 101 is designed so that the water valve body 3 is threadedly engaged with the second annular groove 103 inside the second annular plate 101. This facilitates the testing of the two water valve bodies 3, improves the efficiency of analyzing various data of the water valve body 3, increases the testing efficiency of the water valve body 3, reduces errors that are easily caused by manual data analysis, and improves the accuracy of the data.

[0041] In this embodiment, the inner wall of the first annular plate 201 has a first annular groove 202 and three threaded holes 205. The threaded holes 205 are connected to the first annular groove 202. The arc-shaped plate 203 slides inside the first annular groove 202, which facilitates the sliding of the arc-shaped plate 203 inside the first annular groove 202 and improves the stability of the arc-shaped plate 203 during sliding. The inner wall of the first annular groove 202 is equipped with multiple fixing cylinders, which facilitates the installation of the fixing cylinders on the inner wall of the first annular groove 202. One end of the fixing cylinder is slidably fitted with a sliding rod, which facilitates the sliding of the sliding rod inside the fixing cylinder and improves the stability of the sliding rod during sliding. One end of the sliding rod is installed on the outer wall of the arc-shaped plate 203, which facilitates the installation of the arc-shaped plate 203 inside the first annular groove 202 through the sliding rod. The outer wall of the arc-shaped plate 203 and the inner wall of the first annular groove 202 are... Multiple springs are installed to facilitate the reset of the arc-shaped plate 203 under the action of the springs. The springs are sleeved on the periphery of the fixed cylinder and the sliding rod to facilitate the sliding of the springs on the periphery of the fixed cylinder and the sliding rod. The threaded hole 205 is threaded with a threaded rod 207, which is threaded into the threaded hole 205. One end of the threaded rod 207 is equipped with a rotating rod 206, which is convenient for the user to rotate the threaded rod 207 inside the threaded hole 205 by rotating the rod 206. The other end of the rotating rod 206 is equipped with a T-shaped rod, which is convenient for the T-shaped rod to be installed on the rotating rod 206. The outer wall of the arc-shaped plate 203 has a T-shaped hole 204, in which the T-shaped rod rotates and is rotatably engaged inside the T-shaped hole 204. A friction pad is installed on the rotating rod 206 to reduce the friction between the rotating rod 206 and the user's hand.

[0042] In this embodiment, a second annular plate 101 is mounted on the positioning cylinder 1. A controller 102 is mounted on the outer wall of the second annular plate 101, facilitating its installation. A T-shaped post 2 is also mounted on the outer wall of the second annular plate 101, facilitating its installation. Second annular grooves 103 are provided at both ends of the second annular plate 101, allowing the water valve body 3 to engage with the inner wall of the second annular groove 103 via external threads. External threads are provided on the second annular groove 103, and internal threads are provided on the inner wall of the water valve body 3, allowing the external and internal threads to engage. The inner wall of the arc-shaped plate 203 is equipped with a first rubber pad, which is attached to the outer wall of the water valve body 3. This facilitates the increase of friction between the outer wall of the water valve body 3 and the inner wall of the arc-shaped plate 203. The second annular groove 103 is equipped with a second rubber pad, which cooperates with the outer wall of the water valve body 3. This facilitates the increase of friction between the water valve body 3 and the inner wall of the second annular groove 103. The inner wall of the first annular plate 201 is equipped with a third rubber pad, which cooperates with the outer wall of the water valve body 3. This facilitates the increase of friction between the water valve body 3 and the first annular plate 201.

[0043] This invention is not limited to the embodiments described above. Anyone should understand that structural changes made under the guidance of this invention, and any technical solutions that are the same as or similar to this invention, fall within the protection scope of this invention. Technical aspects, shapes, and structures not described in detail in this invention are all publicly known technologies.

Claims

1. A method for controlling the ambient temperature during testing of an electronic water valve, characterized in that, The ambient temperature is controlled using an electronic water valve testing device, which includes: Positioning cylinder (1), on which a controller (102) and two T-shaped columns (2) are mounted; Two first annular plates (201) are installed on one end of the T-shaped column (2), and the inner sidewall of the first annular plate (201) is elastically and slidably fitted with three arc-shaped plates (203). Two water valve bodies (3), one end of the water valve body (3) is threaded onto the outer wall of the positioning cylinder (1), and the inner wall of the arc plate (203) is in contact with the outer wall of the water valve body (3). The method includes the following steps: Step 1: Obtain the data collected by the temperature control module. This data includes whether there is water flowing inside the water valve body (3). If so, obtain the water temperature where the temperature control module is located and send the water temperature information to the display screen of the controller (102). Step 2: Obtain the temperature trajectory data processed by the display screen of the controller (102), process the data, generate an instruction signal, and send the instruction signal to the sliding mechanism, wherein the sliding mechanism is used to move the arc plate (203) away from the water valve body (3) and remove the water valve body (3) from the inside of the second annular groove (103); The inner sidewall of the first annular plate (201) is provided with a first annular groove (202) and three threaded holes (205). The threaded holes (205) are connected to the first annular groove (202), and the arc plate (203) is slidably fitted inside the first annular groove (202). The inner wall of the first annular groove (202) is equipped with a plurality of fixed cylinders. One end of the fixed cylinder is slidably fitted with a sliding rod. One end of the sliding rod is installed on the outer wall of the arc plate (203). A plurality of springs are installed between the outer wall of the arc plate (203) and the inner wall of the first annular groove (202). The springs are sleeved around the fixed cylinders and the sliding rod.

2. The method for controlling the ambient temperature for testing an electronic water valve according to claim 1, characterized in that, The threaded hole (205) is internally threaded with a threaded rod (207). One end of the threaded rod (207) is equipped with a rotating rod (206), and the other end of the threaded rod (207) is equipped with a T-shaped rod. The outer wall of the arc plate (203) is provided with a T-shaped hole (204). The T-shaped rod is rotatably fitted inside the T-shaped hole (204). A friction pad is installed on the rotating rod (206).

3. The method for controlling the ambient temperature for testing an electronic water valve according to claim 1, characterized in that, The positioning cylinder (1) is equipped with a second annular plate (101), the controller (102) is installed on the outer wall of the second annular plate (101), and the T-shaped column (2) is installed on the outer wall of the second annular plate (101).

4. The method for controlling the ambient temperature for testing an electronic water valve according to claim 3, characterized in that, The second annular plate (101) has a second annular groove (103) at both ends. The second annular groove (103) has an external thread, and the inner side wall of the water valve body (3) has an internal thread. The external thread and the internal thread are threaded together.

5. The method for controlling the ambient temperature for testing an electronic water valve according to claim 1, characterized in that, The inner wall of the arc-shaped plate (203) is equipped with a first rubber pad, which is attached to the outer wall of the water valve body (3).

6. The method for controlling the ambient temperature for testing an electronic water valve according to claim 4, characterized in that, A second rubber pad is installed on the second annular groove (103), and the second rubber pad cooperates with the outer wall of the water valve body (3).

7. The method for controlling the ambient temperature for testing an electronic water valve according to claim 1, characterized in that, The inner wall of the first annular plate (201) is equipped with a third rubber pad, which cooperates with the outer wall of the water valve body (3).

Citation Information

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