Fiber pH detection device

By using a motor-driven screw system and a moving base structure, the problem of labor-intensive installation and disassembly of the test bottle in the fiber pH testing device is solved, achieving convenient installation and efficient testing.

CN224189938UActive Publication Date: 2026-05-01NANCHONG FIBER INSPECTION INST
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NANCHONG FIBER INSPECTION INST
Filing Date
2025-05-08
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing fiber pH testing devices require considerable physical effort to install and remove the testing bottles, resulting in poor testing results.

Method used

The system employs a motor-driven lead screw system and a moving seat structure. The motor drives the lead screw to rotate, and the moving seat moves along the lead screw. The increased spacing between the control rods enables convenient installation and removal of the test bottles, which are then fixed by a limiting groove. Combined with the rinsing and testing components, this improves testing efficiency.

Benefits of technology

It simplifies the installation and disassembly process of the test bottles, improves testing efficiency and accuracy, reduces manpower consumption, and enhances testing results.

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Abstract

The utility model relates to the technical field of fiber detection, in particular to a fiber pH detection device which comprises a detection box, a fixing assembly, a flushing assembly and a detection assembly, the fixing assembly comprises motors, screw rods, moving seats and a control rod, the two motors are fixedly connected with the detection box and located on the outer side of the detection box, the two screw rods are connected with the motors and penetrate through the detection box, and the multiple moving seats are slidably connected with the detection box and located on the outer sides of the screw rods; the multiple control rods are fixedly connected with the movable seats and located between the movable seats, the flushing assembly and the detection assembly are connected with the detection box, and the problems that when the fiber pH detection device is used, each detection bottle is fixed through an elastic bottle clamp, more physical strength needs to be consumed when the detection bottles are mounted and dismounted, and the detection efficiency is high are solved. And the detection effect on the detection bottle is not good.
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Description

A fiber pH detection device Technical Field

[0001] This utility model relates to the field of fiber detection technology, and in particular to a fiber pH detection device. Background Technology

[0002] pH value is a safety indicator for textiles. The current national standard GB 18401, "National Basic Safety Technical Specifications for Textile Products", requires a pH value of 4.0 to 9.0. In the current technology, the pH value of fibers is mainly tested manually by testing personnel, which is not only inefficient but also inaccurate.

[0003] Publication number CN218956469U discloses a fiber pH detection device, including a tray, a base, a pH meter, and an electrode cleaning device. The tray has multiple elastic bottle clamps for quick installation and turnover of test bottles. The pH meter includes multiple detection electrodes, allowing for simultaneous multiple measurements and improving detection efficiency. The electrode cleaning device includes multiple annular rinsing seats, each with an annular water outlet on its inner side. The water outlet forms an annular jet to rinse the detection electrodes. The electrode cleaning device can simultaneously perform 360-degree jet rinsing on multiple detection electrodes, improving rinsing efficiency.

[0004] However, when using the aforementioned fiber pH testing device, each testing bottle is fixed by an elastic bottle clamp, which requires a lot of physical effort to install and remove the testing bottles, resulting in poor testing results. Summary of the Invention

[0005] The purpose of this invention is to provide a fiber pH detection device that solves the problem that each detection bottle is fixed by an elastic bottle clamp during use, which requires a lot of physical effort to install and remove the detection bottles, resulting in poor detection results.

[0006] To achieve the above objectives, this utility model provides a fiber pH detection device, including a detection box, a fixing assembly, a rinsing assembly, and a detection component. The fixing assembly includes a motor, a lead screw, a movable seat, and control rods. There are two motors, each fixedly connected to the detection box and located on the outside of the detection box. There are two lead screws, each connected to a motor and passing through the detection box. There are multiple movable seats, each slidably connected to the detection box and located on the outside of the lead screw. There are multiple control rods, each fixedly connected to a movable seat and located between the movable seats. The rinsing assembly and the detection component are respectively connected to the detection box.

[0007] The rinsing assembly includes rinsing cylinders, inlet pipes, and outlet pipes. There are multiple rinsing cylinders, each fixedly connected to the detection box and located inside the detection box. There are multiple inlet pipes, each fixedly connected to the rinsing cylinder and passing through both the rinsing cylinder and the detection box. There are multiple outlet pipes, each fixedly connected to the rinsing cylinder and passing through both the rinsing cylinder and the detection box.

[0008] The detection component includes a support frame and telescopic columns. The support frame is fixedly connected to the detection box and located on top of the detection box. There are multiple telescopic columns, each fixedly connected to the support frame and located on top of the support frame.

[0009] The detection assembly further includes an electric guide rail and a movable frame. There are two electric guide rails, which are fixedly connected to the telescopic column and located on the top of the telescopic column. The movable frame is slidably connected to the electric guide rails and located between the two electric guide rails.

[0010] The detection assembly further includes a detection rod, a detection electrode, and a sealing strip. There are multiple detection rods, each fixedly connected to the movable frame and passing through the movable frame. Each detection rod has a detection electrode fixedly connected to its bottom. There are multiple sealing strips, each fixedly connected to the detection rod and located at the bottom of the detection rod.

[0011] This utility model discloses a fiber pH testing device. The testing box provides support for the device, the motor provides power to the fixing component, the lead screw provides control for the moving seat, and the control rod is used to fix the testing bottle. In use, the motor rotates, driving the lead screw to rotate, and simultaneously moving the moving seat to both sides along the lead screw. At the same time, the distance between the control rods increases. The testing bottle is then placed inside the testing box, and the limiting groove at the bottom of the testing box provides a limiting position for the testing bottle. The rotation of the motor drives the lead screw to rotate, and simultaneously moves the moving seat and the control rod, facilitating the installation and removal of the testing bottle. This solves the problem that in fiber pH testing devices, each testing bottle is fixed by an elastic bottle clamp, requiring a lot of physical effort during installation and removal, resulting in poor testing results. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.

[0013] Figure 1 is a schematic diagram of the overall structure of the fiber pH detection device according to the first embodiment of this utility model.

[0014] Figure 2 is a structural schematic diagram of the fixing component of the first embodiment of this utility model.

[0015] Figure 3 is a schematic diagram of the rinsing assembly of the first embodiment of this utility model.

[0016] In the diagram: 101-Detection box, 102-Motor, 103-Lead screw, 104-Moving seat, 105-Control lever, 106-Rinsing tube, 107-Inlet pipe, 108-Outlet pipe, 109-Support frame, 110-Telescopic column, 111-Electric guide rail, 112-Moving frame, 113-Detection rod, 114-Detection electrode, 115-Sealing strip. Detailed Implementation

[0017] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.

[0018] The first embodiment of this application is as follows:

[0019] Please refer to Figures 1 to 3. Figure 1 is a schematic diagram of the overall structure of the fiber pH detection device according to the first embodiment of the present invention. Figure 2 is a schematic diagram of the structure of the fixing component according to the first embodiment of the present invention. Figure 3 is a schematic diagram of the structure of the rinsing component according to the first embodiment of the present invention. The present invention provides a fiber pH detection device, including a detection box 101, a fixing component, a rinsing component, and a detection component. The fixing component includes a motor 102, a lead screw 103, a moving seat 104, and a control rod 105. The rinsing component includes a rinsing cylinder 106, a water inlet pipe 107, and a water outlet pipe 108. The detection component includes a support frame 109, a telescopic column 110, an electric guide rail 111, a moving frame 112, a detection rod 113, a detection electrode 114, and a sealing strip 115. The aforementioned solution solves the problem that when using the fiber pH detection device, each detection bottle is fixed by an elastic bottle clamp, which requires a lot of physical effort to install and remove the detection bottles, resulting in poor detection results.

[0020] In this specific embodiment, there are two motors 102, each fixedly connected to the detection box 101 and located on the outside of the detection box 101. There are also two lead screws 103, each connected to one of the motors 102 and passing through the detection box 101. Multiple movable seats 104 are slidably connected to the detection box 101 and located on the outside of the lead screws 103. Multiple control rods 105 are fixedly connected to each movable seat 104 and located between them. The rinsing assembly and the detection assembly are connected to the detection box 101. The testing box 101 provides support for the device, the motor 102 provides power to the fixing assembly, the lead screw 103 provides control for the moving seat 104, and the control rod 105 is used to fix the testing bottle. In use, the motor 102 rotates, driving the lead screw 103 to rotate, and simultaneously driving the moving seat 104 to move to both sides along the lead screw 103, while also increasing the distance between the control rods 105. At this time, the testing bottle is placed inside the testing box 101, and the limiting groove provided at the bottom of the testing box 101 provides a limiting position for the testing bottle. The rotation of the motor 102 drives the lead screw 103 to rotate, and simultaneously drives the moving seat 104 and the control rod 105 to move, facilitating the installation and removal of the testing bottle.

[0021] The system includes multiple rinsing cylinders 106, each fixedly connected to and located inside the detection box 101. Multiple water inlet pipes 107 are also fixedly connected to and pass through both the rinsing cylinders 106 and the detection box 101. Multiple water outlet pipes 108 are also fixedly connected to and pass through both the rinsing cylinders 106 and the detection box 101. The rinsing cylinders 106 are used to rinse the detection electrode 114. Each rinsing cylinder 106 has a drying device on its outer side. The rinsing water enters the rinsing cylinder 106 through the inlet pipe 107 and then exits from the rinsing cylinder 106 through the outlet pipe 108. In use, the moving frame 112 is moved to the top of the rinsing cylinder 106 by the electric guide rail 111, and then moves downward by the telescopic column 110 to insert the detection electrode 114 into the rinsing cylinder 106 for rinsing. After rinsing, the rinsing water in the rinsing cylinder 106 is drained through the outlet pipe 108, and then the detection electrode 114 is dried by the drying device set on the outside of the rinsing cylinder 106 to prevent the undried detection electrode 114 from causing errors in subsequent detection.

[0022] Secondly, the support frame 109 is fixedly connected to the detection box 101 and located on top of the detection box 101. There are multiple telescopic columns 110, each fixedly connected to the support frame 109 and located on top of the support frame 109. The support frame 109 provides support for the detection assembly, and the telescopic columns 110 are used to control the height of the moving frame 112 and the detection electrode 114.

[0023] Furthermore, there are two electric guide rails 111, which are fixedly connected to the telescopic column 110 and located on the top of the telescopic column 110. The movable frame 112 is slidably connected to the electric guide rails 111 and located between the two electric guide rails 111. The electric guide rails 111 are used to control the horizontal position of the movable frame 112 and the detection electrode 114. The movable frame 112 provides support for the detection rod 113.

[0024] Finally, there are multiple detection rods 113, each fixedly connected to and passing through the movable frame 112. Each detection rod 113 has a detection electrode 114 fixedly connected to its bottom. There are also multiple sealing strips 115, each fixedly connected to and located at the bottom of a detection rod 113. The detection rods 113 provide support and fixation for the detection electrodes 114, which are used to detect the pH value inside the test bottle. The sealing strips 115 seal the connection between the detection rods 113 and the rinsing cylinder 106. In use, the movable frame 112 is moved above the rinsing cylinder 106 by the electric guide rail 111, and then the telescopic column 110... The electric guide rail 111 and the movable frame 112 descend, simultaneously pressing down the detection rod 113, causing the detection electrode 114 to insert into the rinsing cylinder 106. The sealing strip 115 seals the detection rod 113 and the rinsing cylinder 106, facilitating rinsing of the detection electrode 114. After rinsing, the telescopic column 110 moves the electric guide rail 111 and the movable frame 112 upward, simultaneously removing the rinsed detection electrode 114 from the rinsing cylinder 106. Then, the electric guide rail 111 moves the movable frame 112 to the top of the fixed test bottle. The telescopic column 110 then moves the movable frame 112 and the detection electrode 114 downward, inserting the detection electrode 114 into the test bottle for pH value detection.

[0025] In the fiber pH detection device of this embodiment, the detection box 101 provides support for the device, the motor 102 provides power to the fixing component, the lead screw 103 provides control for the moving seat 104, and the control rod 105 is used to fix the detection bottle. During use, the motor 102 rotates, driving the lead screw 103 to rotate, and simultaneously driving the moving seat 104 to move to both sides along the lead screw 103, while also increasing the distance between the control rods 105. At this time, the detection bottle is placed inside the detection box 101, and the limiting groove at the bottom of the detection box 101 provides a limiting position for the detection bottle. The motor 102 rotates, driving the lead screw 103 to rotate, and simultaneously driving the moving seat 104 and the control rod 105 to move, facilitating the installation and removal of the detection bottle. This solves the problem that in the fiber pH detection device, each detection bottle is fixed by an elastic bottle clamp, requiring considerable physical effort during installation and removal, resulting in poor detection results.

[0026] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.

Claims

1. A fiber pH detection device, comprising a detection chamber, characterized in that, It also includes a fixing component, a rinsing component, and a detection component; the fixing component includes a motor, a lead screw, a movable seat, and control rods. There are two motors, each fixedly connected to the detection box and located on the outside of the detection box. There are two lead screws, each connected to a motor and passing through the detection box. There are multiple movable seats, each slidably connected to the detection box and located on the outside of the lead screw. There are multiple control rods, each fixedly connected to a movable seat and located between the movable seats. The rinsing component and the detection component are respectively connected to the detection box.

2. The fiber pH detection device as described in claim 1, characterized in that, The rinsing assembly includes rinsing tubes, inlet pipes, and outlet pipes. There are multiple rinsing tubes, each fixedly connected to the detection box and located inside the detection box. There are multiple inlet pipes, each fixedly connected to the rinsing tube and passing through both the rinsing tube and the detection box. There are multiple outlet pipes, each fixedly connected to the rinsing tube and passing through both the rinsing tube and the detection box.

3. The fiber pH detection device as described in claim 1, characterized in that, The detection assembly includes a support frame and telescopic columns. The support frame is fixedly connected to the detection box and located on top of the detection box. There are multiple telescopic columns, each fixedly connected to the support frame and located on top of the support frame.

4. The fiber pH detection device as described in claim 3, characterized in that, The detection assembly also includes an electric guide rail and a movable frame. There are two electric guide rails, which are fixedly connected to the telescopic column and located on the top of the telescopic column, respectively. The movable frame is slidably connected to the electric guide rails and located between the two electric guide rails.

5. The fiber pH detection device as described in claim 4, characterized in that, The detection assembly further includes detection rods, detection electrodes, and sealing strips. There are multiple detection rods, each fixedly connected to the movable frame and passing through the movable frame. Each detection rod has a detection electrode fixedly connected to its bottom. There are multiple sealing strips, each fixedly connected to the detection rod and located at its bottom.