A cold compress auxiliary device for military training soft tissue injury

By designing an auxiliary device for cold compresses that automatically sprays medication, adjusts the tightness of the fixation, and cleans condensate, the problem of inconvenience in using cold compress devices has been solved, achieving continuity and comfort in cold compresses, reducing pain symptoms, and promoting tissue recovery.

CN119818276BActive Publication Date: 2025-10-21FOURTH MILITARY MEDICAL UNIVERSITY
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Patent Information

Application Number
CN202510258532.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2025-10-21
Estimated Expiration
2045-03-06

AI Technical Summary

Technical Problem

Existing cold compress devices require frequent replacement during use, which affects the continuity of cold compress and drug treatment, and improper fixation may aggravate tissue damage and discomfort.

Method used

A cold compress auxiliary device was designed, comprising a cooling component, a spraying component, a fixing component, and a condensate cleaning component. It achieves automatic spraying, adjustment of fixing tightness, and condensate cleaning, with automated operation achieved through a PLC controller and a servo motor, respectively.

Benefits of technology

The device automatically sprays medication, adjusts the tightness of the fixation, and cleans up condensation without removing the cold compress device, improving the continuity and comfort of the cold compress, reducing pain symptoms, and promoting tissue recovery.

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Abstract

The application belongs to the technical field of medical auxiliary instruments, and particularly relates to a cold compress auxiliary device for soft tissue injury in military training, which comprises a mounting shell and a temperature-guiding silica gel block arranged in the mounting shell, and the surface of the temperature-guiding silica gel block is provided with a flow guide groove, the material of the mounting shell is heat-insulating rubber, the lower side wall of the temperature-guiding silica gel block extends out of the mounting shell, and the upper side wall of the mounting shell is fixedly connected with a PLC controller. In the process of cold compressing the soft tissue injury of the injured part by using the cold compress device, the injured part can be automatically sprayed with medicine without removing the cold compress device, the cold compress effect of the injured part is ensured, spraying with medicine is also realized, the pain symptom of the patient is effectively reduced, and the tissue recovery is promoted.
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Description

Technical Field

[0001] The present invention belongs to the technical field of medical auxiliary equipment, and in particular relates to a cold compress auxiliary device for soft tissue injuries during military training. Background Art

[0002] Sports injuries are common in daily life or field training. Improper treatment of acute injuries, insufficient immobilization time, or long-term repeated sprains may lead to chronic diseases, which have a serious impact on soldiers' daily lives. Cold therapy, bandaging, and immobilization are effective methods for treating acute injuries and pain. For example, patent publication number CN213851368U proposes a cold compress auxiliary device for soft tissue injuries during military training.

[0003] Currently, to fully enhance the effect of cold compresses, effectively alleviate pain symptoms, and promote tissue recovery, cold compresses are typically used in an alternating cycle. After every 10-15 minutes of cold compressing, the cold compress is removed, medication is sprayed on the corresponding area, and then the cold compress is resumed, repeating this cycle. This process is intended to ensure that the medication continues to work and maintains the cold compress effect. However, this operation is cumbersome and requires the user to precisely time the intervals. Any negligence may affect the consistency and effectiveness of cold compress and medication treatment.

[0004] In addition, the cold compress device is generally fixed to the affected part of the injured person with Velcro. Even after the cold compress treatment, the affected part of the injured person will continue to swell slowly due to factors such as cell damage and increased vascular permeability. Once the cold compress device is fixed, its size will be relatively fixed. As the swelling of the affected part intensifies, the device will gradually tighten, which will not only hinder local blood circulation, but may also further aggravate tissue damage, greatly increasing the patient's discomfort.

[0005] Therefore, a cold compress auxiliary device for soft tissue injuries during military training is proposed to solve the above problems. Summary of the Invention

[0006] The purpose of the present invention is to provide a cold compress auxiliary device for soft tissue injuries during military training in order to solve the above problems.

[0007] To achieve the above objectives, the present invention adopts the following technical solutions: a cold compress auxiliary device for soft tissue injuries during military training, comprising a mounting shell and a thermally conductive silicone block disposed within the mounting shell, wherein a guide groove is provided on the surface of the thermally conductive silicone block; the mounting shell is made of thermally insulating rubber; the lower side wall of the thermally conductive silicone block extends out of the mounting shell; and the upper side wall of the mounting shell is fixedly connected to a PLC controller, characterized in that it further comprises:

[0008] A refrigeration component is provided on the upper side wall of the mounting shell and is used to reduce the temperature of the thermal conductive silica gel block;

[0009] The memory foam is arranged on the lower side wall of the thermal conductive silicone block through a connecting component, and the upper side wall of the mounting shell is provided with a spraying component;

[0010] A fixing assembly is provided on the left and right sides of the mounting shell and is used to fix the mounting shell;

[0011] The condensed water cleaning component is arranged on the lower side wall of the installation shell and is used for recovering the condensed water.

[0012] Preferably, the refrigeration assembly includes a refrigeration box fixedly connected to the upper side wall of the mounting shell, a plurality of semiconductor refrigeration plates are plugged into the upper side wall of the refrigeration box, and the heat release of the plurality of semiconductor refrigeration plates extends out of the refrigeration box. A refrigeration pipe is buried inside the temperature-conducting silicone block, and the refrigeration pipe is a serpentine structure. The liquid outlet end of the refrigeration pipe is connected to the refrigeration box, and a refrigeration pump is fixedly connected to the left side wall of the refrigeration box, and the liquid outlet end of the refrigeration pump is connected to the liquid inlet end of the refrigeration pipe.

[0013] Preferably, the spray assembly includes a medicine storage box fixedly connected to the upper side wall of the mounting shell, the right side wall of the medicine storage box is fixedly connected to a medicine pump, the lower side wall of the memory foam is provided with a plurality of placement grooves, the inner wall of the placement groove is connected to a spray pipe, the spray pipe is a serpentine structure, the pipe wall of the spray pipe is connected to a plurality of spray heads, and the liquid outlet end of the medicine pump is connected to the liquid inlet end of the spray pipe.

[0014] Preferably, the fixing assembly includes a fixing box fixedly connected to the right side wall of the mounting shell, the right inner wall of the fixing box is connected to a movable plate by a spring, the right side wall of the movable plate is fixedly connected to a fixing seat, the right end of the fixing seat extends out of the fixing box and is fixedly connected to a right strap, the right side wall of the movable plate is fixedly connected to a conductive block, the upper inner wall of the fixing box is inlaid with a conductive plate, the conductive plate and the PLC controller are electrically connected, the left side wall of the mounting shell is fixedly connected to a winding box, the inner wall of the winding box is rotatably connected to a winding roller, and the winding roller A servo motor is fixedly connected to the rear side wall of the winding box, and the output end of the servo motor passes through the winding box and is fixedly connected to the rear end of the winding roller. A left strap is fixedly connected to the outer wall of the winding roller, and the left strap and the right strap are connected by Velcro. The upper inner wall of the fixed box is inlaid with a first conductive plate and a second conductive plate, the first conductive plate is located on the left side of the conductive plate, and the second conductive plate is located on the right side of the conductive plate, the first conductive plate is electrically connected to the reverse circuit of the servo motor, and the second conductive plate is electrically connected to the forward circuit of the servo motor.

[0015] Preferably, the condensation water cleaning assembly includes a blocking ring fixedly connected to the lower side wall of the mounting shell, the blocking ring is made of rubber, the lower side wall of the blocking ring is provided with a telescopic groove, the lower side wall of the fixed box is fixedly connected to a micro air pump, the air outlet end of the micro air pump passes through the blocking ring and is connected to the telescopic groove, the upper side wall of the telescopic groove is fixedly connected to a piston ring through a spring, the lower side wall of the piston ring is fixedly connected to a blocking ring, the blocking ring is made of rubber, the air outlet end of the micro air pump is fixedly connected to an air pressure pipe, the air The lower end of the pressure tube is fixedly connected to an air pressure box, the lower inner wall of the air pressure box is connected to a piston seat through a spring, the inner wall of the air pressure box is fixedly connected to a trigger switch, the trigger switch is electrically connected to the PLC controller, an air pressure hole is opened on the lower side wall of the air pressure box, the lower side wall of the mounting shell is fixedly connected to a water absorption ring, the lower side wall of the water absorption ring is fixedly connected to a plurality of water absorption heads, the upper side wall of the mounting shell is fixedly connected to a recovery box, the side wall of the recovery box is connected to a recovery pump, and the liquid inlet end of the recovery pump is connected to the water absorption ring.

[0016] Preferably, the air outlet end of the micro air pump is fixedly connected to an air release pipe, and a regulating valve is provided in the air release pipe.

[0017] Preferably, the connecting assembly includes a plurality of trapezoidal bars fixedly connected to the surface of the memory foam, the upper side wall of the trapezoidal bar is provided with a plurality of limiting grooves, and the inner wall of the limiting groove is fixedly connected with an arc seat through a spring, the lower side wall of the thermal conductive silicone block is provided with a trapezoidal groove that matches the trapezoidal bar, and the side wall of the trapezoidal groove is provided with an arc groove that matches the arc seat.

[0018] Preferably, the outer wall fixing sleeve of the fixing seat is provided with a waterproof ring, and the fixing seat can drive the waterproof ring to slide in the fixing box.

[0019] Compared with existing technologies, the advantages of a cold compress auxiliary device for soft tissue injuries during military training are:

[0020] 1. Through the provided spraying component, when using the cold compress device to apply cold compress to the soft tissue injury of the injured part, the injured part can be automatically sprayed with medicine without removing the cold compress device. While ensuring the cold compress effect of the injured part, it can also spray medicine, effectively relieve the patient's pain symptoms and promote tissue recovery.

[0021] 2. Through the setting of the fixing component, when the cold compress device is fixed to the injured part, the tightness of the cold compress device can be automatically adjusted according to the swelling of the injured part. While ensuring that the cold compress device and the injured part fit well, it also avoids the problem of the cold compress device being fixed too tightly, which will hinder the local blood circulation of the affected part and further aggravate the tissue damage.

[0022] 3. Through the condensation water cleaning component, the condensation water generated on the surface of the cold compress device can be automatically recovered during the use of the cold compress device, thereby avoiding the problem that the condensation water on the surface of the cold compress device will wet the clothes and cause inconvenience to the injured. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 This is a schematic structural diagram of a cold compress auxiliary device for soft tissue injuries during military training provided by the present invention;

[0024] Figure 2 This invention provides a cold compress auxiliary device for soft tissue injuries during military training. Figure 1 A magnified schematic diagram of part A;

[0025] Figure 3 This is a schematic structural diagram of a connecting assembly in a cold compress assisting device for soft tissue injuries during military training provided by the present invention;

[0026] Figure 4 This is a schematic structural diagram of a fixing component in a cold compress auxiliary device for soft tissue injuries during military training provided by the present invention;

[0027] Figure 5 This is a top cross-sectional view of a reel box in a cold compress auxiliary device for soft tissue injuries in military training provided by the present invention;

[0028] Figure 6 This is a schematic structural diagram of a cooling tube in a cold compress auxiliary device for soft tissue injuries during military training provided by the present invention;

[0029] Figure 7 This is a schematic structural diagram of a condensed water cleaning component in a cold compress auxiliary device for soft tissue injuries during military training provided by the present invention;

[0030] Figure 8 This is a schematic diagram of the internal structure of an air pressure box in a cold compress auxiliary device for soft tissue injuries during military training provided by the present invention;

[0031] Figure 9 This is a schematic structural diagram of a memory foam and a spray tube in a cold compress auxiliary device for soft tissue injuries in military training provided by the present invention.

[0032] In the figure: 1 mounting shell, 2 thermal conductive silicone block, 3 PLC controller, 4 memory foam, 5 refrigeration assembly, 501 refrigeration box, 502 semiconductor refrigeration plate, 6 refrigeration pipe, 7 refrigeration pump, 8 spray assembly, 81 medicine storage box, 82 medicine pump, 9 placement slot, 10 spray pipe, 11 fixing assembly, 111 fixing box, 112 moving plate, 12 fixing seat, 13 right strap, 14 conductive block, 15 conductive plate, 16 winding box, 17 winding roller, 18 servo motor, 19 left strap , 20 first conduction plate, 21 second conduction plate, 22 condensate cleaning assembly, 221 blocking ring, 222 telescopic groove, 23 micro air pump, 24 piston ring, 25 blocking ring, 26 air pressure tube, 27 air pressure box, 28 piston seat, 29 trigger switch, 30 water absorption ring, 31 water absorption head, 32 recovery box, 33 recovery pump, 34 vent pipe, 35 regulating valve, 36 connecting assembly, 361 trapezoidal bar, 362 limit groove, 37 arc seat, 38 trapezoidal groove, 39 waterproof ring. DETAILED DESCRIPTION

[0033] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0034] like Figures 1-9 As shown, a cold compress auxiliary device for soft tissue injuries during military training includes a mounting shell 1 and a thermal conductive silicone block 2 disposed inside the mounting shell 1. The surface of the thermal conductive silicone block 2 is provided with a guide groove. The mounting shell 1 is made of thermal insulating rubber. The lower side wall of the thermal conductive silicone block 2 extends out of the mounting shell 1. The upper side wall of the mounting shell 1 is fixedly connected to a PLC controller 3. The mounting shell 1 also includes:

[0035] A refrigeration assembly 5 is provided on the upper side wall of the mounting shell 1 and is used to reduce the temperature of the thermally conductive silicone block 2. The refrigeration assembly 5 includes a refrigeration box 501 fixedly connected to the upper side wall of the mounting shell 1. A plurality of semiconductor refrigeration plates 502 are plugged into the upper side wall of the refrigeration box 501. The heat released by the plurality of semiconductor refrigeration plates 502 extends out of the refrigeration box 501. A refrigeration pipe 6 is buried inside the thermally conductive silicone block 2. The refrigeration pipe 6 has a serpentine structure. The liquid outlet end of the refrigeration pipe 6 is connected to the refrigeration box 501. A refrigeration pump 7 is fixedly connected to the left side wall of the refrigeration box 501. The liquid outlet end of the refrigeration pump 7 is connected to the liquid inlet end of the refrigeration pipe 6, which can cool the thermally conductive silicone block 2.

[0036] The memory sponge 4 is arranged on the lower side wall of the temperature-conducting silicone block 2 through the connecting component 36. The upper side wall of the mounting shell 1 is provided with a medicine spraying component 8. The medicine spraying component 8 includes a medicine storage box 81 fixedly connected to the upper side wall of the mounting shell 1. The right side wall of the medicine storage box 81 is fixedly connected to a medicine pump 82. A plurality of placement slots 9 are opened on the lower side wall of the memory sponge 4. The inner wall of the placement slot 9 is connected to a medicine spraying pipe 10. The medicine spraying pipe 10 is a serpentine structure. The pipe wall of the medicine spraying pipe 10 is connected to a plurality of medicine spraying heads. The liquid outlet end of the medicine pump 82 is connected to the liquid inlet end of the medicine spraying pipe 10. In the process of using the cold compress device to apply cold compress to the soft tissue injury of the injured part, the injured part can be automatically sprayed without removing the cold compress device. While ensuring the cold compress effect of the injured part, the medicine can also be sprayed, effectively alleviating the patient's pain symptoms and promoting tissue recovery.

[0037] The fixing component 11 is arranged on the left and right sides of the mounting shell 1 and is used to fix the mounting shell 1. The fixing component 11 includes a fixing box 111 fixedly connected to the right side wall of the mounting shell 1. The right inner wall of the fixing box 111 is connected to a movable plate 112 by a spring. The right side wall of the movable plate 112 is fixedly connected to a fixing seat 12. The right end of the fixing seat 12 extends out of the fixing box 111 and is fixedly connected to a right strap 13. The right side wall of the movable plate 112 is fixedly connected to a conductive block 14. The upper inner wall of the fixing box 111 is inlaid with a conductive plate 15. The conductive plate 15 is electrically connected to the PLC controller 3. The left side wall of the mounting shell 1 is fixedly connected to a winding box 16. The inner wall of the winding box 16 is rotatably connected to a winding roller 17. The rear side wall of the winding box 16 is fixedly connected to a servo motor 18. The output end of the servo motor 18 passes through the winding box 16 and is connected to the The rear end of the winding roller 17 is fixedly connected, and a left strap 19 is fixedly connected to the outer wall of the winding roller 17. The left strap 19 and the right strap 13 are connected by Velcro. The upper inner wall of the fixing box 111 is inlaid with a first conductive plate 20 and a second conductive plate 21. The first conductive plate 20 is located on the left side of the conductive plate 15, and the second conductive plate 21 is located on the right side of the conductive plate 15. The first conductive plate 20 is electrically connected to the reverse circuit of the servo motor 18, and the second conductive plate 21 is electrically connected to the forward circuit of the servo motor 18. When the cold compress device is fixed to the injured person's affected area, the tightness of the cold compress device can be automatically adjusted according to the swelling of the injured person's affected area. While ensuring that the cold compress device fits the injured person's affected area, it also avoids the problem of the cold compress device being fixed too tightly, which will hinder local blood circulation in the affected area and further aggravate tissue damage.

[0038] The condensation water cleaning component 22 is arranged on the lower side wall of the mounting shell 1 and is used for recovering condensation water. The condensation water cleaning component 22 includes a blocking ring 221 fixedly connected to the lower side wall of the mounting shell 1. The blocking ring 221 is made of rubber. A telescopic groove 222 is provided on the lower side wall of the blocking ring 221. A micro air pump 23 is fixedly connected to the lower side wall of the fixed box 111. The air outlet end of the micro air pump 23 passes through the blocking ring 221 and is connected to the telescopic groove 222. The upper side wall of the telescopic groove 222 is fixedly connected to a piston ring 24 through a spring. The lower side wall of the piston ring 24 is fixedly connected to a blocking ring 25. The blocking ring 25 is made of rubber. The air outlet end of the micro air pump 23 is fixedly connected to an air pressure pipe 26. The lower end of the air pressure pipe 26 is fixedly connected to the air pressure box 2 7. The lower inner wall of the air pressure box 27 is connected to the piston seat 28 through a spring, and the inner wall of the air pressure box 27 is fixedly connected to a trigger switch 29, which is electrically connected to the PLC controller 3. An air pressure hole is opened on the lower side wall of the air pressure box 27, and a water absorption ring 30 is fixedly connected to the lower side wall of the mounting shell 1. The lower side wall of the water absorption ring 30 is fixedly connected to a plurality of water absorption heads 31, and the upper side wall of the mounting shell 1 is fixedly connected to a recovery box 32. The side wall of the recovery box 32 is connected to a recovery pump 33, and the liquid inlet end of the recovery pump 33 is connected to the water absorption ring 30. During the use of the cold compress device, the condensed water generated on the surface of the cold compress device can be automatically recovered, thereby avoiding the problem that the condensed water on the surface of the cold compress device will wet the clothes and cause inconvenience to the injured.

[0039] The air outlet end of the micro air pump 23 is fixedly connected to a vent pipe 34 , and a regulating valve 35 is provided in the vent pipe 34 to discharge the gas inside the blocking ring 221 and the air pressure box 27 .

[0040] The connecting component 36 includes a plurality of trapezoidal bars 361 fixedly connected to the surface of the memory foam 4. The upper side wall of the trapezoidal bar 361 is provided with a plurality of limiting grooves 362, and the inner wall of the limiting groove 362 is fixedly connected with an arc seat 37 through a spring. The lower side wall of the thermal conductive silicone block 2 is provided with a trapezoidal groove 38 that matches the trapezoidal bar 361, and the side wall of the trapezoidal groove 38 is provided with an arc groove that matches the arc seat 37, which facilitates the replacement of the memory foam 4 and the reuse of the cold compress device.

[0041] The outer wall fixing sleeve of the fixing seat 12 is provided with a waterproof ring 39 , and the fixing seat 12 can drive the waterproof ring 39 to slide in the fixing box 111 , thereby preventing liquid from entering the fixing box 111 .

[0042] The operating principle of the present invention is now explained as follows: fit the memory foam 4 to the affected part of the injured person, then bend the mounting shell 1 and the thermal conductive silicone block 2 (the mounting shell 1 is made of thermal insulating rubber and can be bent), then bring the left strap 19 close to the patient's skin and press it to fix it, and pull the right strap 13. The right strap 13 will pull the fixing seat 12 and the movable plate 112 to move to the right together, and the movable plate 112 will drive the conductive block 14 to move together. During the movement, the conductive block 14 will first contact the first conductive plate 20 and then contact the conductive plate 15 (the first conductive plate 20 and the second conductive plate 21 are not electrically connected to the servo motor 18 in the initial state under the control of the external remote control device). The conductive block 14 is electrically connected to the external power supply, and the conductive plate 15 is electrically connected to the PLC controller 3. When the conductive block 14 and the conductive plate 15 are in contact, the external current will pass through the conductive block. 14 and the conductive plate 15 are transmitted to the PLC controller 3. After receiving the electrical signal, the PLC controller 3 will control the internal buzzer module to work and emit a prompt sound. After hearing the prompt sound, the medical staff will know that the tightness of the cold compress device is just right, and they can press the right strap 13 to fix the left strap 19 and the right strap 13 together through the Velcro. Then the operator transmits an electrical signal to the PLC controller 3 through the external remote control device, and the PLC controller 3 will control the semiconductor refrigeration plate 502 and the refrigeration pump 7 to work simultaneously. The semiconductor refrigeration plate 502 cools the refrigerant inside the refrigeration box 501. The refrigerant after cooling is transported to the refrigeration pipe 6 through the refrigeration pipe 6. The temperature of the refrigerant will be transmitted to the thermal conductive silicone block 2 through the refrigeration pipe 6, and the temperature of the memory foam 4 will be reduced through the thermal conductive silicone block 2, thereby achieving the effect of cold compress.

[0043] After the cold compress device has been working for 10-15 minutes, the PLC controller 3 will control the medicine pump 82 to work, and the medicine pump 82 will transport a certain amount of medicine stored in the medicine storage box 81 to the medicine spraying pipe 10 (the medicine is Yunnan Baiyao). The medicine will be sprayed to the injured part through the medicine spraying head on the surface of the medicine spraying pipe 10. While ensuring the cold compress effect on the injured part, it can also spray the medicine, effectively relieve the patient's pain symptoms, and promote tissue recovery.

[0044] When the injured part continues to swell slowly due to factors such as cell damage and increased vascular permeability, and the length between the left strap 19 and the right strap 13 is relatively fixed, the cold compress device and the affected part will continue to be tightened, and the right strap 13 will be subjected to greater tension. The right strap 13 will drive the conductive block 14 to continue to move to the right through the fixed seat 12 and the movable plate 112. In the process of moving to the right, the conductive block 14 will contact the second conductive plate 21. The conductive block 14 is electrically connected to the external power supply, and the second conductive plate 21 is electrically connected to the positive circuit of the servo motor 18. When the conductive block 14 contacts the second conductive plate 21, the external current will be transmitted to the positive circuit of the servo motor 18, so that the servo motor 18 drives the winding. The roller 17 rotates forward, thereby loosening a portion of the left strap 19 wrapped around the surface of the winding roller 17. When the end of the left strap 19 is loosened, the force between the cold compress device and the affected area will decrease, and the tension on the right strap 13 will also decrease. Under the action of the spring force, the movable plate 112 and the fixed seat 12 will drive the conductive block 14 to move leftward and separate from the second conductive plate 21, thereby disconnecting the forward circuit of the servo motor 18 and stopping the servo motor 18. Similarly, when the swelling of the injured person subsides, the conductive block 14 will contact the first conductive plate 20, thereby controlling the servo motor 18 to work in the reverse direction, rewinding the left strap 19, so that the cold compress device and the injured person's affected area are closely fitted, thereby ensuring the working performance of the cold compress device.

[0045] When the remote control device transmits an electrical signal to the PLC controller 3, the PLC controller 3 also controls the micro air pump 23 to work. The micro air pump 23 transmits external gas to the blocking ring 221 and the air pressure box 27, thereby increasing the air pressure above the piston ring 24 and above the piston seat 28 at the same time. The air pressure will push the piston ring 24 to drive the blocking ring 25 to move downward (the blocking ring 221 and the blocking ring 25 are both made of rubber), so that the blocking ring 25 contacts the patient's skin. At the same time, the piston seat 28 will continue to move downward until it squeezes the trigger switch 29. The trigger switch 29 will control the micro air pump 23 to stop working through the PLC controller 3. The blocking ring 25 and the injured part are kept in an appropriate pressure range (3-5N). When the moisture in the air is liquefied due to encountering the thermal conductive silicone block 2, the condensed liquid will flow along the guide groove on the surface of the thermal conductive silicone block 2 to the inside of the blocking ring 221. When the cold compress device needs to be removed later, the recovery pump 33 is controlled by the remote control device to work for five seconds, and the condensed water inside the blocking ring 221 will be transported to the recovery box 32 for storage through the water absorption head 31 and the water absorption ring 30. The mounting shell 1 is made of thermal insulating rubber, and no condensed water will be generated on the surface of the mounting shell 1, thereby avoiding the problem that the condensed water on the surface of the cold compress device will wet the clothes and cause inconvenience to the injured.

[0046] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A cold compress auxiliary device for soft tissue injuries during military training, comprising a mounting shell (1) and a thermal conductive silicone block (2) arranged inside the mounting shell (1), wherein a guide groove is provided on the surface of the thermal conductive silicone block (2), the mounting shell (1) is made of thermal insulating rubber, the lower side wall of the thermal conductive silicone block (2) extends out of the mounting shell (1), and the upper side wall of the mounting shell (1) is fixedly connected to a PLC controller (3), characterized in that: Also includes: A refrigeration component (5) is arranged on the upper side wall of the mounting shell (1) and is used to reduce the temperature of the thermal conductive silica gel block (2); A memory sponge (4) is arranged on the lower side wall of the thermal conductive silica gel block (2) via a connecting assembly (36), and a spray assembly (8) is provided on the upper side wall of the mounting shell (1); A fixing assembly (11), arranged on the left and right sides of the mounting shell (1), and used for fixing the mounting shell (1); A condensate cleaning component (22) is provided on the lower side wall of the mounting shell (1) for recovering condensate. The fixing component (11) comprises a fixing box (111) fixedly connected to the right side wall of the mounting shell (1). The right side inner wall of the fixing box (111) is connected to a movable plate (112) via a spring. The right side wall of the movable plate (112) is fixedly connected to a fixing seat (12). The right end of the fixing seat (12) extends out of the fixing box (111) and is fixedly connected to a right strap (13). The right side wall of the movable plate (112) is fixedly connected to a conductive block (14). The upper inner wall of the fixing box (111) is inlaid with a A conductive plate (15) is embedded, the conductive plate (15) is electrically connected to the PLC controller (3), the left side wall of the mounting shell (1) is fixedly connected to a winding box (16), the inner wall of the winding box (16) is rotatably connected to a winding roller (17), the rear side wall of the winding box (16) is fixedly connected to a servo motor (18), the output end of the servo motor (18) passes through the winding box (16) and is fixedly connected to the rear end of the winding roller (17), the outer wall of the winding roller (17) is fixedly connected to a left strap (19), the left strap (19) and the right strap (13) are connected by Velcro, the fixed box (11 1) is inlaid with a first conductive plate (20) and a second conductive plate (21), the first conductive plate (20) is located on the left side of the conductive plate (15), and the second conductive plate (21) is located on the right side of the conductive plate (15), the first conductive plate (20) is electrically connected to the reverse circuit of the servo motor (18), and the second conductive plate (21) is electrically connected to the forward circuit of the servo motor (18), the conductive block (14) is in contact with the conductive plate (15), and the tightness of the cold compress device is just right. When the injured part swells, the right strap (13) will drive the conductive block (14) through the fixed seat (12) and the movable plate (112). 4) Continue to move to the right. During the movement to the right, the conductive block (14) will contact the second conductive plate (21). The conductive block (14) will be electrically connected to the external power supply. The second conductive plate (21) will be electrically connected to the positive circuit of the servo motor (18). When the conductive block (14) and the second conductive plate (21) are in contact, the external current will be transmitted to the positive circuit of the servo motor (18), so that the servo motor (18) drives the winding roller (17) to rotate in the positive direction, thereby loosening a part of the left strap (19) wrapped around the surface of the winding roller (17). The tightness of the cold compress device is automatically adjusted according to the swelling of the affected area.

2. A cold compress auxiliary device for soft tissue injury in military training according to claim 1, characterized in that: The refrigeration assembly (5) includes a refrigeration box (501) fixedly connected to the upper side wall of the installation shell (1), a plurality of semiconductor refrigeration plates (502) are plugged into the upper side wall of the refrigeration box (501), and the heat release of the plurality of semiconductor refrigeration plates (502) extends out of the refrigeration box (501). A refrigeration pipe (6) is buried inside the temperature-conducting silica gel block (2), and the refrigeration pipe (6) is a serpentine structure. The liquid outlet end of the refrigeration pipe (6) is connected to the refrigeration box (501). The left side wall of the refrigeration box (501) is fixedly connected to a refrigeration pump (7), and the liquid outlet end of the refrigeration pump (7) is connected to the liquid inlet end of the refrigeration pipe (6).

3. A cold compress auxiliary device for soft tissue injury in military training according to claim 1, characterized in that: The spraying assembly (8) includes a medicine storage box (81) fixedly connected to the upper side wall of the mounting shell (1), the right side wall of the medicine storage box (81) is fixedly connected to a medicine pump (82), the lower side wall of the memory sponge (4) is provided with a plurality of placement grooves (9), the inner wall of the placement groove (9) is connected to a spraying pipe (10), the spraying pipe (10) is a serpentine structure, the pipe wall of the spraying pipe (10) is connected to a plurality of spraying heads, and the liquid outlet end of the medicine pump (82) is connected to the liquid inlet end of the spraying pipe (10).

4. A cold compress auxiliary device for soft tissue injury in military training according to claim 1, characterized in that: The condensate cleaning assembly (22) includes a blocking ring (221) fixedly connected to the lower side wall of the mounting shell (1), the blocking ring (221) is made of rubber, and a telescopic groove (222) is provided on the lower side wall of the blocking ring (221). The lower side wall of the fixed box (111) is fixedly connected to a micro air pump (23), and the air outlet end of the micro air pump (23) passes through the blocking ring (221) and is connected to the telescopic groove (222). The upper side wall of the telescopic groove (222) is fixedly connected to a piston ring (24) through a spring, and the lower side wall of the piston ring (24) is fixedly connected to a blocking ring (25), and the blocking ring (25) is made of rubber. The air outlet end of the micro air pump (23) is fixedly connected to an air pressure pipe (26). The lower end of the air pressure tube (26) is fixedly connected to an air pressure box (27), the lower inner wall of the air pressure box (27) is connected to a piston seat (28) through a spring, the inner wall of the air pressure box (27) is fixedly connected to a trigger switch (29), the trigger switch (29) is electrically connected to the PLC controller (3), an air pressure hole is opened on the lower side wall of the air pressure box (27), the lower side wall of the mounting shell (1) is fixedly connected to a water absorption ring (30), the lower side wall of the water absorption ring (30) is fixedly connected to a plurality of water absorption heads (31), the upper side wall of the mounting shell (1) is fixedly connected to a recovery box (32), the side wall of the recovery box (32) is connected to a recovery pump (33), and the liquid inlet end of the recovery pump (33) is connected to the water absorption ring (30).

5. A cold compress auxiliary device for soft tissue injury in military training according to claim 4, characterized in that: The air outlet end of the micro air pump (23) is fixedly connected to an air release pipe (34), and a regulating valve (35) is provided in the air release pipe (34).

6. A cold compress auxiliary device for soft tissue injury in military training according to claim 1, characterized in that: The connecting assembly (36) includes a plurality of trapezoidal bars (361) fixedly connected to the surface of the memory foam (4), the upper side wall of the trapezoidal bar (361) is provided with a plurality of limiting grooves (362), and the inner wall of the limiting groove (362) is fixedly connected to the arc seat (37) through a spring, the lower side wall of the thermal conductive silicone block (2) is provided with a trapezoidal groove (38) that matches the trapezoidal bar (361), and the side wall of the trapezoidal groove (38) is provided with an arc groove that matches the arc seat (37).

7. The cold compress auxiliary device for soft tissue injury in military training according to claim 1, characterized in that: The outer wall fixing sleeve of the fixing seat (12) is provided with a waterproof ring (39), and the fixing seat (12) can drive the waterproof ring (39) to slide in the fixing box (111).

Citation Information

Patent Citations

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    CN213851368U

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    CN102429757A

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