A renal massage therapy device

By using the design of silicone granule pads and air pump mechanisms in the kidney massage treatment device, the problems of vulnerability and uneven heating of the massage mechanism are solved, and the safety of massage and the extension of equipment usage time are achieved.

CN115778789BActive Publication Date: 2025-06-17THE SIXTH MEDICAL CENT OF THE CHINESE PEOPLES LIBERATION ARMY GENERAL HOSPITAL
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Patent Information

Application Number
CN202211604759.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-13
Publication Date
2025-06-17
Estimated Expiration
2042-12-13

AI Technical Summary

Technical Problem

When used in the existing kidney massage therapy device, the massage mechanism is prone to excessive elongation and damage, uneven heating and fast power consumption, resulting in a shortening of the single use time of the equipment.

Method used

A kidney massage treatment device is designed, using silicone particle pads and air pump mechanisms, air is passed through the air pump pipe, and the negative suction groove and valve plate are used to achieve stable inflation and retraction of the massage head. Combined with the heating design of the telescopic insulation layer and the thermal conductor plate, uniform heating and saving electricity.

Benefits of technology

Control the movement of the massage head through air pressure to avoid oversqueezing and ensure safety in massage; by uniform heating and saving electricity, the equipment can be extended for a single use time and improve the comfort of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a renal massage therapy device, which relates to the technical field of massage equipment. The present invention includes a massage board and a silica gel particle pad fixedly arranged on the surface of the massage board. A return pipe is fixedly arranged at the bottom of the inner cavity of the massage board. A massage mechanism is fixedly arranged at the top of the return pipe, and an air pump mechanism is fixedly arranged at the bottom of the return pipe. In the present invention, by using the return pipe to integrally and stably inflate each positioning pipe, the overall massage head is pushed out under the action of air pressure. The silica gel particle pad is used to buffer and massage the renal part. During this period, the massage head is controlled to drive the massage ball to move horizontally to realize the conversion of the massage area. The telescopic cylinder is used to automatically adjust the massage force, so as to avoid discomfort caused by excessive outward extrusion of the massage head and ensure the massage safety of the patient's renal part. By heating the air with hot water for heat conduction, the silica gel particle pad is uniformly heated, ensuring the use comfort and avoiding the consumption of electric energy, so as to extend the single use time of the massage therapy device.
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Description

Technical Field

[0001] The present invention relates to the technical field of massage devices, and particularly relates to a renal massage therapy device. Background Art

[0002] The massager is an instrument suitable for all age groups, mainly used to relieve physical fatigue, pain in various parts of the body, and eliminate sub-health. There are many types of massagers, and massagers for massaging various parts are sold, and it is a product that has a rehabilitative effect on diseases.

[0003] Currently, for the treatment device for massaging the kidneys, when in use, the massage heads generally protrude in a fixed direction. When there are lesions in the massage area, continuous deep extrusion of the same position in the lesion area by the massage heads will cause discomfort. And some massage therapy devices, in order to ensure the curative effect, will supplement with electric heating for massage. However, since most of the parts in contact with the skin during massage are stretchable material surfaces or silicone parts, the heat is difficult to conduct evenly and effectively, which will lead to local heating, the heating effect is not good, and the electric heating will cause rapid consumption of electric energy, and then also leads to the problem of reduced single-use time of the device. Summary of the Invention

[0004] The purpose of the present invention is to solve the problems that when a general renal massage therapy device is in use, the massage mechanism is prone to damage due to excessive elongation, the heating is not uniform enough, and the consumption of electric energy leads to a reduction in the single-use time of the device. The present invention provides a renal massage therapy device.

[0005] The present invention specifically adopts the following technical solutions to achieve the above purpose:

[0006] A renal massage therapy device, including a massage board, a silica gel particle pad fixed on the surface of the massage board, a return pipe fixed at the bottom of the inner cavity of the massage board, a massage mechanism fixed on the top of the return pipe, and an air pump mechanism fixed at the bottom of the return pipe.

[0007] Further, the massage mechanism includes a plurality of positioning pipes fixedly arranged on both sides of the top of the return pipe at equal intervals, a support cylinder slidably clamped on the top of the positioning pipe, a limiting spring fixedly connected between the support cylinder and the positioning pipe, telescopic cylinders fixedly arranged on the left and right sides of the top of the support cylinder, a massage head slidably clamped on the top of the telescopic cylinder, a massage ball movably clamped on the top of the massage head, and a hinge rod movably connected between the massage head and the inner wall of the support cylinder.

[0008] Further, the positioning pipe is connected to the return pipe in a through manner.

[0009] Further, the massage ball is in movable contact with the inner wall of the silica gel particle pad.

[0010] Further, the air pump mechanism includes two pressure relief ports opened at the front end of the return pipe, a valve plate slidably connected to the outside of the pressure relief ports, an air pump pipe fixed to the bottom of the return pipe. Negative suction grooves are opened on both the left and right sides of the air pump pipe. Elastic cover plates are movably connected to both the left and right sides of the air pump pipe. A connecting rod is movably connected between the elastic cover plate and the valve plate. An air pump is fixed to the bottom of the air pump pipe.

[0011] Further, the upper and lower sides of the air pump pipe respectively include a narrow section and a wide section, wherein the inner diameter of the narrow section is smaller than that of the wide section. The connection between the narrow section and the wide section communicates with the negative suction groove. The negative suction groove is inclined downward from top to bottom along the surface direction of the air pump pipe.

[0012] Further, it further includes a heating mechanism fixed to the outside of the massage plate. The heating mechanism includes a telescopic heat insulation layer fixed to the top of the inner cavity of the massage plate, heat conduction plates fixedly embedded on both sides of the massage plate, and heat insulation rods rotatably installed in the heat conduction plates. Sealing mother pocket belts and male pocket bags sleeved around the heat conduction plates are respectively fixed to the front and rear sides of the massage plate. A heat preservation pipe is connected and communicated between the mother pocket belt and the male pocket bag.

[0013] Further, the telescopic heat insulation layer is fixedly sleeved around the massage head. Both the front and rear sides of the telescopic heat insulation layer include heat preservation parts sealingly sleeved on the heat insulation rods. The periphery of the heat insulation rod includes a heat insulation rubber ring for increasing the rotational resistance. A copper block for heat conduction penetrates through the center of the top of the heat insulation rod.

[0014] Further, the periphery of the heat insulation rod includes a heat insulation rubber ring for increasing the rotational resistance. A copper block for heat conduction penetrates through the center of the top of the heat insulation rod.

[0015] Further, the free ends of the mother pocket belt and the male pocket bag both include corresponding magic tapes. The side wall of the free end of the mother pocket belt includes an extended pull block. The outside of the free end of the male pocket bag includes a patch for pulling. A water injection piston is movably inserted into the male pocket bag along the center direction of the magic tape thereon.

[0016] The beneficial effects of the present invention are as follows:

[0017] 1. In the present invention, when in use, the air pump operates to introduce air into the air pump tube. The negative suction groove causes the elastic cover plate to deflect by negative suction. The pressure relief port is sealed by the valve plate, and the return pipe inflates each positioning pipe integrally and stably. The overall massage head is pushed out under the action of air pressure. The silica gel particle pad is used to buffer and massage the kidney. During this process, when the support cylinder is pressed and drives the massage head to be pushed out to the maximum distance suitable for the kidney, as the support cylinder continues to move later, the massage head drives the massage ball to move horizontally, realizing the conversion of the massage area. On the way, the telescopic cylinder can automatically cooperate to adjust the massage intensity to avoid discomfort caused by excessive outward extrusion of the massage head and ensure the massage safety of the patient's kidney. When the air pump tube stops operating subsequently, since the negative pressure area formed outside the negative suction groove disappears, the valve plate automatically resets to open the pressure relief port for pressure relief, so that the massage head retracts in time to avoid damage caused by long-term pressing.

[0018] 2. In the present invention, initially, hot water is filled into the mother bladder belt, the male bladder bag and the heat preservation pipe and sealed. The heat insulation rods on both sides are adjusted to change the heat conduction volume of the copper block. When the massage head is reciprocally driven for massage, the air between the telescopic heat insulation layer and the silica gel particle pad is relatively squeezed and fluctuates, continuously contacting the copper block, thereby driving the rapid transfer of heat, realizing the uniform heating of the silica gel particle pad, ensuring the use comfort, and avoiding the consumption of electric energy to extend the single use time of the massage treatment device. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a three-dimensional structural schematic diagram of the kidney massage treatment device of the present invention;

[0020] Figure 2 is a three-dimensional structural schematic diagram of the heat conduction plate of the kidney massage treatment device of the present invention;

[0021] Figure 3 is a three-dimensional sectional view of the massage plate of the kidney massage treatment device of the present invention;

[0022] Figure 4 is a three-dimensional sectional view of the massage mechanism of the kidney massage treatment device of the present invention;

[0023] Figure 5 is a three-dimensional structural schematic diagram of the air pump mechanism of the kidney massage treatment device of the present invention;

[0024] Figure 6 is a three-dimensional sectional view of the air pump tube of the kidney massage treatment device of the present invention.

[0025] Reference numerals: 1, massage board; 2, silica gel particle pad; 3, return pipe; 4, massage mechanism; 41, positioning pipe; 42, support cylinder; 43, limit spring; 44, telescopic cylinder; 45, massage head; 46, massage ball; 47, hinge rod; 5, air pump mechanism; 51, pressure relief port; 52, valve plate; 53, air pump pipe; 54, negative suction groove; 55, elastic cover plate; 56, connecting rod; 57, air pump; 6, heating mechanism; 61, telescopic heat insulation layer; 62, heat conducting plate; 63, heat insulation rod; 64, female capsule belt; 65, male capsule bag; 66, heat preservation pipe. Detailed implementation mode

[0026] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0027] As Figures 1-6 shown, a renal massage therapy device includes a massage board 1, a silica gel particle pad 2 fixedly arranged on the surface of the massage board 1, a return pipe 3 fixedly arranged at the bottom of the inner cavity of the massage board 1, a massage mechanism 4 fixedly arranged at the top of the return pipe 3. The massage mechanism 4 includes a plurality of positioning pipes 41 fixedly arranged on both sides of the top of the return pipe 3 at equal intervals, a support cylinder 42 slidably clamped on the top of the positioning pipe 41, a limit spring 43 fixedly connected between the support cylinder 42 and the positioning pipe 41, telescopic cylinders 44 fixedly arranged on the left and right sides of the top of the support cylinder 42, a massage head 45 slidably clamped on the top of the telescopic cylinder 44, a massage ball 46 movably clamped on the top of the massage head 45, and a hinge rod 47 movably connected between the massage head 45 and the inner wall of the support cylinder 42. An air pump mechanism 5 is fixedly arranged at the bottom of the return pipe 3. The air pump mechanism 5 includes two pressure relief ports 51 opened at the front end of the return pipe 3, a valve plate 52 slidably connected to the outside of the pressure relief port 51, an air pump pipe 53 fixedly arranged at the bottom of the return pipe 3, negative suction grooves 54 opened on both the left and right sides of the air pump pipe 53, elastic cover plates 55 movably connected to both the left and right sides of the air pump pipe 53, a connecting rod 56 movably connected between the elastic cover plate 55 and the valve plate 52, and an air pump 57 fixedly arranged at the bottom of the air pump pipe 53.

[0028] More specifically, by filling the female bladder belt 64, male bladder bag 65 and heat preservation tube 66 with hot water and sealing them, adjusting the heat insulation rods 63 on both sides to change the heat conduction volume of the copper block, the heat output efficiency can be restricted. Subsequently, when the massage head 45 is reciprocally driven for massage, the air between the telescopic heat insulation layer 61 and the silica gel particle pad 2 is relatively squeezed and fluctuated, continuously contacting the copper block, thereby driving the rapid transfer of heat and realizing the overall heating of the silica gel particle pad 2. This design not only avoids the consumption of electric energy and prolongs the single use time of the massage therapy device, but also makes the silica gel particle pad 2 evenly heated, enhancing the comfort of the patient's kidney massage. In actual use, one side of the silica gel particle pad 2 is oriented towards the kidney, and it is fixed and sleeved and locked in cooperation with the female bladder belt 64 and the male bladder bag 65. The air pump 57 is controlled to operate to introduce air into the air pump tube 53. When the air passes through the narrow end of the air pump tube 53, the flow rate increases and the pressure decreases, and then a negative pressure area is formed outside at the negative suction groove 54. The elastic cover plate 55 is adsorbed and deflected towards the air pump tube 53, simultaneously pulling the connecting rod 56, so that the valve plate 52 closes the pressure relief port 51. The return tube 3 then stably fills the air. When pressure air is introduced into the return tube 3, the support cylinder 42 is pressed to move upward, so that the massage head 45 and the massage ball 46 then squeeze the silica gel particle pad 2 for massage. When the massage head 45 cannot move at the maximum extended distance, as the support cylinder 42 continues to be pressed and move subsequently, the massage head 45 then drives the massage ball 46 to move horizontally, realizing the conversion of the massage area. During this process, the telescopic cylinder 44 can automatically cooperate to adjust the massage strength to avoid discomfort in the kidney caused by excessive outward extrusion of the massage head 45 and ensure the safety of the patient's kidney massage. Subsequently, when the air pump tube 53 is controlled to stop running, since the negative pressure area formed outside at the negative suction groove 54 disappears, the valve plate 52 then automatically resets to open the pressure relief port 51 for pressure relief, so that the massage head 45 retracts in time to avoid damage caused by long-term pressing.

[0029] As Figures 3-5 shown, in some embodiments, the positioning tube 41 is connected to the return tube 3 in a through manner, and the massage ball 46 is movably abutted against the inner wall of the silica gel particle pad 2. When the return tube 3 stably fills the air, each positioning tube 41 is simultaneously affected by the air pressure to drive the massage head 45, so as to cooperate with the silica gel particle pad 2 to buffer and output massage.

[0030] As Figures 5-6As shown, in some embodiments, the upper and lower sides of the air pump tube 53 respectively include a narrow section and an open section, wherein the inner diameter of the narrow section is smaller than the inner diameter of the open section, and the connection between the narrow section and the open section is connected with the negative suction groove 54, and the negative suction groove 54 is opened from top to bottom along the surface direction of the air pump tube 53. When the air pump tube 53 is ventilated by the air pump 57 and the air passes through the narrow end of the air pump tube 53, the air flow rate is accelerated and the pressure is reduced, and then a negative pressure area is formed externally at the negative suction groove 54, and the elastic cover plate 55 is adsorbed and then deflected toward the air pump tube 53, and at the same time, the connecting rod 56 is pulled to make the valve plate 52 close the pressure relief port 51, so that the return tube 3 can be stably filled with air.

[0031] like Figures 1-2 As shown, in some embodiments, it also includes a heating mechanism 6 fixedly mounted on the outside of the massage board 1, the heating mechanism 6 includes a telescopic heat-insulating layer 61 fixedly mounted on the top of the inner cavity of the massage board 1, a heat-conducting plate 62 fixedly embedded on both sides of the massage board 1, and a heat-insulating rod 63 rotatably mounted in the heat-conducting plate 62. The front and rear sides of the massage board 1 are respectively fixed with a female bag belt 64 and a male bag 65 sealed and sleeved on the periphery of the heat-conducting plate 62. An insulation pipe 66 is connected through the female bag belt 64 and the male bag 65. The telescopic heat-insulating layer 61 is fixedly sleeved on the periphery of the massage head 45. Then, the front and rear sides of the telescopic insulation layer 61 both include insulation parts that are sealed and sleeved on the insulation rod 63. The outer periphery of the insulation rod 63 includes an insulation rubber ring for increasing the rotation resistance. A copper block for heat conduction is penetrated through the top center of the insulation rod 63. After the female bag belt 64, the male bag 65 and the insulation tube 66 are filled with hot water and sealed, the insulation rod 63 with resistance is rotated so that the copper block is respectively connected to the heat conducting plate 62 and the air in the telescopic insulation layer 61, and then heat conduction can be carried out in the direction from the heat conducting plate 62 to the telescopic insulation layer 61.

[0032] like Figure 1 As shown, in some embodiments, the free movable ends of the mother bag belt 64 and the male bag 65 both include corresponding Velcro, the side wall of the free movable end of the mother bag belt 64 includes an extended pull block, the outer side of the free movable end of the male bag 65 includes a patch for pulling, and the male bag 65 is movably connected with a water injection piston along the center direction of the Velcro on it. During initial use, hot water can be injected into the mother bag belt 64 and the male bag 65 by removing the water injection piston. Subsequently, the male bag 65 and the mother bag belt 64 are respectively controlled by the patch and the pull block, and the Velcro can be used to achieve bonding and fixation between the male bag 65 and the mother bag belt 64. At the same time, the water injection piston is restricted in the Velcro to avoid accidental disengagement, thereby ensuring safe use.

[0033] like Figures 3-4As shown, in some embodiments, the massage mechanism 4 includes a plurality of positioning tubes 41 fixedly arranged at equal intervals on both sides of the top of the U-shaped tube 3, a support cylinder 42 slidably clamped on the top of the positioning tube 41, a limiting spring 43 fixedly connected between the support cylinder 42 and the positioning tube 41, telescopic cylinders 44 fixedly arranged on both the left and right sides of the top of the support cylinder 42, a massage head 45 slidably clamped on the top of the telescopic cylinder 44, a massage ball 46 movably clamped on the top of the massage head 45, and a hinge rod 47 movably connected between the massage head 45 and the inner wall of the support cylinder 42. Specifically, by inflating each positioning tube 41 integrally through the U-shaped tube 3, the overall massage head 45 is pushed out under the action of air pressure, and the kidney is buffered and massaged by the silica gel particle pad 2. During this period, when the support cylinder 42 is pressed to drive the massage head 45 to be pushed out to the maximum distance suitable for the kidney, as the support cylinder 42 continues to move subsequently, the massage head 45 drives the massage ball 46 to move horizontally, realizing the conversion of the massage area. On the way, the telescopic cylinder 44 can automatically cooperate to adjust the massage strength to avoid discomfort caused by excessive outward extrusion of the massage head 45 and ensure the massage safety of the patient's kidney at the same time.

[0034] As Figure 3 and Figures 5-6 shown, in some embodiments, the air pump mechanism 5 includes two pressure relief ports 51 opened at the front end of the U-shaped tube 3, a valve plate 52 slidably connected to the outside of the pressure relief port 51, an air pump tube 53 fixedly arranged at the bottom of the U-shaped tube 3, negative suction grooves 54 opened on both the left and right sides of the air pump tube 53, elastic covers 55 movably connected to both the left and right sides of the air pump tube 53, a connecting rod 56 movably connected between the elastic cover 55 and the valve plate 52, and an air pump 57 fixedly arranged at the bottom of the air pump tube 53. Specifically, by operating the air pump 57 to introduce air into the air pump tube 53, the negative suction grooves 54 are used to suck the elastic covers 55 to deflect, and the pressure relief ports 51 are sealed by the valve plate 52 to prevent air leakage. When the air pump tube 53 is subsequently controlled to stop operating, since the negative pressure area formed outside the negative suction grooves 54 disappears, the valve plate 52 automatically resets to open the pressure relief ports 51 for pressure relief, so that the massage head 45 can retract in time, thus avoiding damage caused by long-term massage.

[0035] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A renal massage therapy device, comprising a massage board (1) and a silica gel particle pad (2) fixedly arranged on the surface of the massage board (1), characterized in that, The bottom of the inner cavity of the massage board (1) is fixedly provided with a return pipe (3). The top of the return pipe (3) is fixedly provided with a massage mechanism (4). The bottom of the return pipe (3) is fixedly provided with an air pump mechanism (5). The massage mechanism (4) includes a plurality of positioning pipes (41) fixedly arranged on both sides of the top of the return pipe (3) at equal intervals, a support cylinder (42) slidably clamped on the top of the positioning pipe (41), a limiting spring (43) fixedly connected between the support cylinder (42) and the positioning pipe (41). On the left and right sides of the top of the support cylinder (42), telescopic cylinders (44) are fixedly arranged. The top of the telescopic cylinder (44) is slidably clamped with a massage head (45). A massage ball (46) is movably clamped on the top of the massage head (45). A hinge rod (47) is movably connected between the massage head (45) and the inner wall of the support cylinder (42). The positioning pipe (41) is connected to the return pipe (3) in a penetrating manner. The massage ball (46) is movably abutted against the inner wall of the silica gel particle pad (2). The air pump mechanism (5) includes two pressure relief ports (51) opened at the front end of the return pipe (3), a valve plate (52) slidably connected to the outside of the pressure relief port (51), an air pump pipe (53) fixedly arranged at the bottom of the return pipe (3). Negative suction grooves (54) are opened on both the left and right sides of the air pump pipe (53). Elastic cover plates (55) are movably connected to both the left and right sides of the air pump pipe (53). A connecting rod (56) is movably connected between the elastic cover plate (55) and the valve plate (52). An air pump (57) is fixedly arranged at the bottom of the air pump pipe (53). The upper and lower sides of the air pump pipe (53) respectively include a narrow section and a wide section, wherein the inner diameter of the narrow section is smaller than that of the wide section. The connection between the narrow section and the wide section is communicated with the negative suction groove (54). The negative suction groove (54) is inclined downward from top to bottom along the surface direction of the air pump pipe (53).

2. The renal massage therapy device according to claim 1, characterized in that, It further includes a heating mechanism (6) fixedly arranged outside the massage board (1). The heating mechanism (6) includes a telescopic heat insulation layer (61) fixedly arranged at the top of the inner cavity of the massage board (1), heat conducting plates (62) fixedly embedded on both sides of the massage board (1), heat insulation rods (63) rotatably installed in the heat conducting plates (62). On the front and rear sides of the massage board (1), a female capsule belt (64) and a male capsule bag (65) are respectively fixedly arranged and hermetically sleeved on the periphery of the heat conducting plate (62). A heat preservation pipe (66) is communicated between the female capsule belt (64) and the male capsule bag (65).

3. The renal massage therapy device according to claim 2, characterized in that, The telescopic heat insulation layer (61) is fixedly sleeved on the periphery of the massage head (45). Both the front and rear sides of the telescopic heat insulation layer (61) include heat preservation parts hermetically sleeved on the heat insulation rod (63).

4. The renal massage therapy device according to claim 3, characterized in that, The periphery of the heat insulation rod (63) includes a heat insulation rubber ring for increasing the rotation resistance. A copper block for heat conduction penetrates through the center of the top of the heat insulation rod (63).

5. The renal massage therapy device according to claim 4, characterized in that, Both the free end of the female sac belt (64) and the male sac bag (65) include corresponding Velcro. The side wall of the free end of the female sac belt (64) includes an extended pull block. The outside of the free end of the male sac bag (65) includes a patch for pulling. A water injection piston is movably inserted into the male sac bag (65) along the direction of the center of the Velcro thereon.

Citation Information

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