Ankle pump motion monitor for preventing lower limb deep venous thrombosis
The design of the limiting slide rail and limiting buckle solves the stability and safety issues of existing motion detectors during connection, ensuring the integrity and accuracy of the detection data of the ankle pump motion monitor for preventing deep vein thrombosis in the lower limbs.
Patent Information
- Application Number
- CN202422358493.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-09-26
AI Technical Summary
Existing motion detectors for preventing deep vein thrombosis in the lower limbs are prone to damage to internal electronic components or poor contact due to misoperation of the threaded sleeve during connection, affecting the integrity and accuracy of the detection data.
The design of limiting slide rails and limiting buckles is adopted. Through the cooperation of limiting slide rails, limiting slide rods and hollow limiting shaft cylinders, a stable connection between the module plug and the signal transmission module is achieved, avoiding misoperation of the threaded sleeve and ensuring the stability and safety of the connection.
It improves the stability and safety of the equipment, simplifies the operation process, ensures the integrity and accuracy of the test data, and avoids component damage or poor contact caused by misoperation of the threaded sleeve in traditional devices.
Smart Images

Figure CN223336122U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of motion monitors, in particular to an ankle pump motion monitor for preventing deep vein thrombosis of lower limbs. Background Art
[0002] Deep vein thrombosis (DVT) in the lower extremities is a common vascular disease that can lead to serious complications such as pulmonary embolism. Ankle pump exercises are a simple and effective way to prevent it. They can promote blood circulation by increasing the frequency and intensity of contraction and relaxation of the lower extremities.
[0003] When the existing motion detector for preventing deep vein thrombosis of the lower limbs is working, it is necessary to insert the module plug fixed at one end of the electrical signal monitoring sensor into the interior of the signal transmission module for connection. Most existing motion detectors usually have threads on the outer walls of the signal transmission module and the module plug, and a threaded sleeve is sleeved on the outer wall of the signal transmission module. When the module plug is inserted into the interior of the signal transmission module, the threaded sleeve is rotated so that the threaded sleeve follows the threads on the outer walls of the signal transmission module and the module plug and rotates between the signal transmission module and the module plug to fix the signal transmission module and the module plug. Although this structure can provide a reliable mechanical connection for the existing device and reduce the occurrence of looseness or disconnection due to daily use or exercise, the rotation operation of the threaded sleeve may cause over-tightening due to excessive manual force of the user, thereby damaging internal electronic components or causing poor contact. In view of this, we provide an ankle pump motion monitor for preventing deep vein thrombosis of the lower limbs. Utility Model Content
[0004] The purpose of the utility model is to make up for the deficiencies of the prior art and to provide an ankle pump motion monitor for preventing deep vein thrombosis of the lower limbs.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an ankle pump exercise monitor for preventing deep vein thrombosis of the lower limbs, comprising a main control circuit board, an energy storage module connected to an internal side of the main control circuit board through an electric wire, and multiple signal transmission modules are fixedly connected to one side of the top surface of the main control circuit board at the same time, and a module plug is inserted into one end of the internal part of the signal transmission module, a signal transmission line is fixedly connected to the outer wall of the module plug away from the signal transmission module, and an electrical signal monitoring sensor is fixedly connected to one end of the outer wall of the signal transmission line, the electrical signal monitoring sensor is located on the external side of the signal transmission module, and the electrical signal monitoring sensor is connected to the main control circuit board through the signal transmission line, the module plug and the signal transmission module.
[0006] As mentioned above, a set of corresponding limiting slide rails are fixedly connected to both sides of the interior of the module plug, and the inner center of the limiting slide rail is slidably connected to the limiting buckle through the limiting slide rail.
[0007] As mentioned above, the limiting slide rails are located on both sides of the limiting buckle, the inclined surface on one side of the bottom of the limiting buckle is higher than the top surface of one side of the module plug, and the inclined surface on one side of the limiting buckle protrudes from the top surface of one side of the module plug.
[0008] As mentioned above, the outer wall of one end of the limiting slide rail is connected to one side of the bottom surface of the limiting buckle through, and the inner side of the limiting buckle is connected to the outer wall of one side of the limiting slide rail in a sliding manner.
[0009] As mentioned above, the outer wall on one side of the module plug is connected through one end of the outer wall of the signal transmission module, and one end of the outer wall of the module plug is slidably connected to the inner end of the signal transmission module. A plurality of limit slots are provided at the inner end of the signal transmission module, and the inner center of the limit slot corresponds to the outer wall on one side of the limit buckle.
[0010] As mentioned above, a hollow limit shaft cylinder is fixedly connected to the inner center of the module plug, and a plurality of limit slide rods are slidably connected to both ends of the hollow limit shaft cylinder. The outer wall of the limit slide rod is sleeved with a limit spring, and the outer wall of one end of the limit spring is in conflict with one end of the inner part of the hollow limit shaft cylinder.
[0011] As mentioned above, the outer wall of the limiting slide rod is fixedly connected to the center of the outer wall of the limiting buckle away from one end of the hollow limiting shaft cylinder, the outer wall of one end of the limiting slide rod is connected through the outer wall of one end of the hollow limiting shaft cylinder, and the inner end of the hollow limiting shaft cylinder is slidably connected to one end of the outer wall of the limiting slide rod.
[0012] Compared with the existing technology, this ankle pump exercise monitor for preventing lower limb deep vein thrombosis has the following beneficial effects:
[0013] 1. When the present invention is used for prevention and monitoring of deep vein thrombosis in the lower limbs, the user first attaches the electrical signal monitoring sensor to the corresponding muscle of the leg. The electrical signal monitoring sensor is connected to the signal transmission module through the signal transmission line and the module plug, and then transmitted to the main control circuit board. The circuit board analyzes the collected electrical signals and determines the effective number of muscle movements. The user can adjust the exercise plan according to the electrical signal monitoring data. At the same time, the limiting slide rail in the device limits the module plug, thereby improving the effectiveness and reliability of the preventive measures. As a result, the user can adjust his or her own exercise plan according to the muscle electrical signal data monitored by the device to avoid the formation of venous thrombosis. In addition, the movement direction of the limiting buckle is limited by the limiting slide rail, which facilitates the subsequent fixation of the signal transmission module and the module plug by the limiting buckle.
[0014] 2. When connecting the module plug and the signal transmission module, the utility model first aligns the limit buckle with the limit slot, and then pushes the module plug in. As the plug is gradually inserted, the inclined surface of the limit buckle contacts the outer wall of the signal transmission module and is squeezed inward and pushed into the interior of the module plug. Through the action of the limit slide rail, the limit slide rod and the hollow limit shaft cylinder, the limit spring is compressed. When the module plug is fully inserted, the limit buckle moves along the outer wall of the slide rail under the push of the limit spring and finally snaps into the limit slot to achieve connection. When disassembling, the plug can be easily pulled out by pressing the limit buckle to complete the module separation. This design ensures the stability and safety of the equipment and simplifies the operation process. Therefore, the precise engagement of the limit buckle and the limit slot ensures a firm connection between the module plug and the signal transmission module, avoiding the damage or poor contact of the signal transmission module and the internal components of the module plug caused by misoperation of the threaded sleeve in traditional devices, thereby ensuring the integrity and accuracy of the detection data of the device.
[0015] Other advantages, objectives and features of the present invention will be described in part in the following description and will be apparent to those skilled in the art based on an examination of the following or may be learned from the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0017] Figure 2 It is a schematic diagram of the three-dimensional structure of the utility model;
[0018] Figure 3 This is a partial three-dimensional structural diagram of the signal transmission module and module plug of the utility model;
[0019] Figure 4 It is a partial cross-section diagram of the modular plug and a partial three-dimensional structure diagram of the limiting buckle of the utility model;
[0020] Figure 5 It is a partially cutaway three-dimensional structural schematic diagram of the hollow limiting shaft cylinder of the utility model.
[0021] In the figure: 1. Main control circuit board; 2. Energy storage module; 201. Signal transmission line; 202. Electrical signal monitoring sensor; 3. Signal transmission module; 301. Module plug; 302. Limit slide rail; 303. Limit buckle; 304. Limit slot; 305. Hollow limit shaft; 306. Limit slide rod; 307. Limit spring. DETAILED DESCRIPTION
[0022] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0023] like Figure 1-5 As shown, the utility model provides a technical solution: an ankle pump exercise monitor for preventing deep vein thrombosis of the lower limbs, comprising a main control circuit board 1, an energy storage module 2 being connected to an internal side of the main control circuit board 1 through an electric wire, and a plurality of signal transmission modules 3 being fixedly connected to one side of the top surface of the main control circuit board 1 at the same time, and a module plug 301 being inserted and connected to one end of the internal part of the signal transmission module 3, a signal transmission line 201 being fixedly connected to an outer wall of the module plug 301 away from the signal transmission module 3, and an electrical signal monitoring sensor 202 being fixedly connected to one end of the outer wall of the signal transmission line 201, the electrical signal monitoring sensor 202 being located on an external side of the signal transmission module 3, and the electrical signal monitoring sensor 202 being connected to the main control circuit board 1 through the signal transmission line 201, the module plug 301 and the signal transmission module 3.
[0024] When using the device for prevention and monitoring of deep vein thrombosis in the lower limbs, the user first attaches the electrical signal monitoring sensor 202 to the corresponding muscle of the leg. The electrical signal monitoring sensor 202 is connected to the signal transmission module 3 through the signal transmission line 201 and the module plug 301, and then transmitted to the main control circuit board 1. The circuit board analyzes the collected electrical signals and determines the effective number of muscle movements. The user can adjust the exercise plan according to the electrical signal monitoring data. At the same time, the limiting slide rail 302 in this device limits the module plug 301, thereby improving the effectiveness and reliability of the preventive measures. When connecting the module plug 301 and the signal transmission module 3, first align the limiting buckle 303 with the limiting slot 304, and then push the module plug 301 in. As the plug is gradually inserted, the inclined surface of the limiting buckle 303 contacts the outer wall of the signal transmission module 3, and is squeezed inward and pushed into the interior of the module plug 301. When the module plug 301 is fully inserted, the limit buckle 303 moves along the outer wall of the slide rail under the push of the limit spring 307 and finally snaps into the limit slot 304 to achieve connection. When disassembling, the plug can be easily pulled out by pressing the limit buckle 303 to complete the module separation. This design ensures the stability and safety of the equipment and simplifies the operation process. Therefore, the precise engagement of the limit buckle 303 and the limit slot 304 ensures the firm connection between the module plug 301 and the signal transmission module 3, avoiding the misoperation of the threaded sleeve in the traditional device, resulting in damage to the internal components of the signal transmission module 3 and the module plug 301 or poor contact, thereby ensuring the integrity and accuracy of the detection data of the device.
[0025] like Figure 1 、 Figure 2 、 Figure 4 and Figure 5 As shown, a set of corresponding limiting slide rails 302 are fixedly connected to both sides of the interior of the module plug 301, and the top of the limiting slide rail 302 is slidably connected to the limiting buckle 303 through the limiting slide rail 302. The limiting slide rails 302 are located on both sides of the interior of the limiting buckle 303. The inclined surface on one side of the bottom of the limiting buckle 303 is higher than the top surface of one side of the module plug 301, and the inclined surface on one side of the limiting buckle 303 protrudes from the top surface of one side of the module plug 301. The outer wall of one end of the limiting slide rail 302 is connected with one side of the bottom surface of the limiting buckle 303, and the inner side of the limiting buckle 303 is slidably connected with the outer wall of one side of the limiting slide rail 302.
[0026] When in use, first attach the electrical signal monitoring sensor 202 to the corresponding muscle position, and then connect the electrical signal monitoring sensor 202 to the main control circuit board 1 through the signal transmission line 201, the module plug 301 and the signal transmission module 3. Subsequently, these electrical signal monitoring sensors 202 can capture the electrical signals generated during muscle activity. The collected electrical signals are transmitted to the main control circuit board 1 through the signal transmission line 201, the module plug 301 and the signal transmission module 3. The main control circuit board 1 analyzes these electrical signals to determine the effective number of calf muscle movements. The user can use the test data to find out whether the muscle electrical signal strength or frequency is abnormal, and make an exercise plan based on the corresponding test data. Corresponding adjustments are made. In addition, given that multiple limiting slide rails 302 are provided on both sides of the module plug 301, and the top outer walls of the multiple limiting slide rails 302 simultaneously penetrate and slide with the two sides of the limiting buckle 303, the movement direction of the limiting buckle 303 is restricted, so that the limiting buckle 303 can only move vertically along the outer wall of the limiting buckle 303 when moving, so that the user can adjust his or her own movement plan according to the muscle electrical signal data monitored by the device to avoid the formation of venous thrombosis. In addition, the movement direction of the limiting buckle 303 is restricted by the limiting slide rail 302, which facilitates the subsequent fixation of the signal transmission module 3 and the module plug 301 by the limiting buckle 303.
[0027] like Figure 1-5 As shown, the outer wall of one side of the module plug 301 is connected with one end of the outer wall of the signal transmission module 3, and one end of the outer wall of the module plug 301 is slidably connected with one end of the interior of the signal transmission module 3. A plurality of limit card slots 304 are provided at one end of the interior of the signal transmission module 3, and the inner center of the limit card slot 304 corresponds to the outer wall of one side of the limit buckle 303. A hollow limit shaft cylinder 305 is fixedly connected to the inner center of the module plug 301, and both ends of the inner hollow limit shaft cylinder 305 are slidably connected. There are multiple limit slides 306, and the outer wall of the limit slide 306 is sleeved with a limit spring 307, and the outer wall of one end of the limit spring 307 conflicts with the inner end of the hollow limit shaft cylinder 305. The outer wall of the limit slide 306 is away from one end of the hollow limit shaft cylinder 305 and is fixedly connected to the center of the outer wall of the limit buckle 303. The outer wall of one end of the limit slide 306 is connected with the outer wall of one end of the hollow limit shaft cylinder 305, and the inner end of the hollow limit shaft cylinder 305 is slidably connected to one end of the outer wall of the limit slide 306.
[0028] When the module plug 301 and the signal transmission module 3 are connected, the limit buckle 303 inside the module plug 301 is aligned with the limit slot 304 provided inside the signal transmission module 3, and the module plug 301 is pushed. When the outer wall of the module plug 301 is away from the end of the signal transmission line 201 and gradually inserted into the signal transmission module 3, the inclined surface of the outer wall of one side of the limit buckle 303 conflicts with the outer wall of the signal transmission module 3. As the module plug 301 is gradually inserted into the signal transmission module 3 The limit buckle 303 is in conflict with the outer wall of the signal transmission module 3 through the inclined surface on its own outer wall. Under the action of its own inclined surface, it cooperates with the limit slide rail 302, so that the limit buckle 303 is retracted along the outer wall of the limit slide rail 302 to the inside of the module plug 301, and the limit spring 307 is squeezed by the limit slide rod 306 and the hollow limit shaft cylinder 305. When the module plug 301 is fully inserted into the signal transmission module 3, the limit buckle 303 follows the module plug 301 to move to the limit buckle The corresponding position of the slot 304, and under the push of the limit spring 307, the limit buckle 303 passes through the inner wall of the module plug 301 along the outer wall of the limit slide rail 302 and contacts the inner wall of the limit slot 304. The limit spring 307 pushes the limit buckle 303 to engage with the inner wall of the limit slot 304, so that the limit buckle 303 can firmly fix the module slot 301 at one end inside the signal transmission module 3. When the module plug needs to be removed, it is only necessary to push the limit buckle 303 to By pressing inside the module plug 301, the module plug 301 can be pulled out from the signal transmission module 3. Thus, through the precise engagement of the limit buckle 303 and the limit slot 304, a firm connection between the module plug 301 and the signal transmission module 3 is ensured, thereby avoiding the damage or poor contact of the internal components of the signal transmission module 3 and the module plug 301 caused by misoperation of the threaded sleeve in traditional devices, thereby ensuring the integrity and accuracy of the detection data of this device.
[0029] Working principle: When in use, first attach the electrical signal monitoring sensor 202 to the corresponding muscle position, and then connect the electrical signal monitoring sensor 202 to the main control circuit board 1 through the signal transmission line 201, the module plug 301 and the signal transmission module 3. Subsequently, these electrical signal monitoring sensors 202 can capture the electrical signals generated during muscle activity. The collected electrical signals are transmitted to the main control circuit board 1 through the signal transmission line 201, the module plug 301 and the signal transmission module 3, and the main control circuit board 1 analyzes these electrical signals to determine the effective number of calf muscle movements. Users can use the test data to find out whether the muscle electrical signal strength or frequency is abnormal, and make corresponding adjustments to the exercise plan based on the corresponding test data. In addition, given that multiple limiting slide rails 302 are provided on both sides of the module plug 301, and the top outer walls of the multiple limiting slide rails 302 simultaneously penetrate and slide with the inner sides of the limiting buckle 303, the movement direction of the limiting buckle 303 is restricted, so that the limiting buckle 303 can only move vertically along the outer wall of the limiting buckle 303 when moving. When the module plug 301 and the signal transmission module 3 are connected, the limiting buckle 303 inside the module plug 301 is aligned with the limiting slot 304 opened inside the signal transmission module 3, and the module plug 301 is pushed. When the outer wall of the module plug 301 is away from one end of the signal transmission line 201 and gradually inserted into the interior of the signal transmission module 3, the inclined surface of the outer wall on one side of the limiting buckle 303 is aligned with the inclined surface of the signal transmission module 3. 304 and the like. When the module plug 301 is fully inserted into the signal transmission module 3, the limit buckle 303 moves with the module plug 301 to the corresponding position of the limit slot 304, and under the push of the limit spring 307, the limit buckle 303 passes through the module plug 301 along the outer wall of the limit slide rail 302. The wall and the inner wall of the limiting slot 304 conflict with each other, and the limiting spring 307 pushes the limiting buckle 303 to engage with the inside of the limiting slot 304, so that the limiting buckle 303 can firmly fix the module slot 301 at one end inside the signal transmission module 3. When the module plug needs to be removed, it is only necessary to press the limiting buckle 303 toward the inside of the module plug 301 to pull the module plug 301 out of the signal transmission module 3. Therefore, the precise engagement of the limiting buckle 303 and the limiting slot 304 ensures a firm connection between the module plug 301 and the signal transmission module 3, avoiding the damage or poor contact of the components inside the signal transmission module 3 and the module plug 301 caused by the misoperation of the threaded sleeve in the traditional device.This ensures the integrity and accuracy of the detection data of this device.
[0030] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An ankle pump exercise monitor for preventing deep vein thrombosis of the lower limbs, comprising a main control circuit board (1), characterized in that: An energy storage module (2) is connected to one side of the interior of the main control circuit board (1) via an electric wire, and a plurality of signal transmission modules (3) are fixedly connected to one side of the top surface of the main control circuit board (1), and a module plug (301) is inserted and connected to one end of the interior of the signal transmission module (3), a signal transmission line (201) is fixedly connected to the side of the outer wall of the module plug (301) away from the signal transmission module (3), and an electric signal monitoring sensor (202) is fixedly connected to one end of the outer wall of the signal transmission line (201), the electric signal monitoring sensor (202) is located on the outside of the signal transmission module (3), and the electric signal monitoring sensor (202) is connected to the main control circuit board (1) via the signal transmission line (201), the module plug (301) and the signal transmission module (3).
2. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 1, characterized in that: A set of corresponding limiting slide rails (302) are fixedly connected to both sides of the interior of the module plug (301), and the top of the interior of the limiting slide rail (302) is slidably connected to the limiting buckle (303) through the limiting slide rail (302).
3. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 2, characterized in that: The limiting slide rails (302) are located on both sides of the limiting buckle (303), the inclined surface on one side of the bottom of the limiting buckle (303) is higher than the top surface of one side of the module plug (301), and the inclined surface on one side of the limiting buckle (303) protrudes from the top surface of one side of the module plug (301).
4. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 3, characterized in that: The outer wall of one end of the limiting slide rail (302) is connected to one side of the bottom surface of the limiting buckle (303) through, and the inner side of the limiting buckle (303) is connected to the outer wall of one side of the limiting slide rail (302) in a sliding manner.
5. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 1, characterized in that: The outer wall of one side of the module plug (301) is connected to one end of the outer wall of the signal transmission module (3), and the outer wall of the module plug (301) is connected to one end of the interior of the signal transmission module (3) in a sliding manner. The interior end of the signal transmission module (3) is provided with a plurality of limiting slots (304), and the inner centers of the limiting slots (304) correspond to the outer wall of one side of the limiting buckle (303).
6. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 5, characterized in that: A hollow limiting shaft cylinder (305) is fixedly connected to the center of the module plug (301), and a plurality of limiting slide bars (306) are slidably connected to both ends of the hollow limiting shaft cylinder (305). The outer wall of the limiting slide bar (306) is sleeved with a limiting spring (307), and the outer wall of one end of the limiting spring (307) contacts one end of the hollow limiting shaft cylinder (305).
7. The ankle pump exercise monitor for preventing lower extremity deep vein thrombosis according to claim 6, characterized in that: The outer wall of the limiting slide rod (306) is fixedly connected to the center of the outer wall of the limiting buckle (303) at one end away from the hollow limiting shaft cylinder (305), the outer wall of one end of the limiting slide rod (306) is connected through the outer wall of one end of the hollow limiting shaft cylinder (305), and the inner end of the hollow limiting shaft cylinder (305) is slidably connected to one end of the outer wall of the limiting slide rod (306).