A ring-type physiotherapy device and a novel buttock massage physiotherapy device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-19
- Publication Date
- 2026-08-14
AI Technical Summary
[0007]本申请的目的在于:提出了一种环带式理疗仪及新型臀部按摩理疗仪,至少解决了现有产品中用于释放EMS电流(低频脉冲微电流)的电极主要被集中设置于局部位置,从而电极电流作用和区域有限,导致电流密度分布不均,部分区域刺激过度而其他区域无效问题
[0036]本申请的环带式理疗仪,能够被用于包括但不限于臀部、腰部等部位的理疗按摩。
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Figure CN224628360U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of physiotherapy technology, and in particular to a ring-type physiotherapy device and a novel buttock massage physiotherapy device. Background Technology
[0002] With the fast pace of modern life, muscle fatigue and chronic pain are becoming increasingly common. One technology used in electrical pulse massagers is "Electrical Muscle Stimulation" (EMS). The principle is to conduct low-frequency pulsed currents to the skin through electrode pads, directly acting on the muscles to stimulate muscle contraction and relaxation, achieving the effects of exercise and rehabilitation. Due to its non-invasiveness, convenience, and effectiveness, EMS is gradually becoming an important means of health therapy.
[0003] However, EMS massage devices for the legs and waist typically use separate electrode patches. The electrodes used to release EMS current (low-frequency pulsed microcurrent) are mainly concentrated in localized locations. The drawback is that:
[0004] First, the electrode current has a limited range of action and coverage, resulting in uneven current density distribution, with some areas being overstimulated while others are ineffective.
[0005] Secondly, because EMS uses voltage pulse waves to stimulate nerves through the epidermis and then act on surrounding muscles, the charge will seek the point of least resistance to pass through. As a result, the current is mainly concentrated in the local area that is in direct contact with the user's skin. Therefore, in order to increase the intensity of stimulation and expand the exercise and massage area, users will choose to increase the voltage (increase the current). However, when the voltage is high (such as exceeding 40 volts), the intermittent pulse voltage will cause the user to feel a stinging sensation.
[0006] For example, a massager with electrical stimulation disclosed in the patent publication document (publication number CN218652731U) has flexible electrode sheets used to release EMS current, and these flexible electrode sheets are concentrated in local positions. Utility Model Content
[0007] The purpose of this application is to propose a ring-type physiotherapy device and a novel buttock massage physiotherapy device, which at least solves the problem that in existing products, the electrodes used to release EMS current (low-frequency pulse microcurrent) are mainly concentrated in local positions, resulting in limited electrode current action and area, uneven current density distribution, and overstimulation in some areas while other areas are ineffective.
[0008] To achieve the above objectives, this application adopts the following technical solution:
[0009] On one hand, this application provides a ring-type physiotherapy device, comprising: a strip-shaped installation body having bendable flexibility; a first electrode and a second electrode, both the first electrode and the second electrode being disposed on the same side of the strip-shaped installation body and extending along the length direction of the strip-shaped installation body; an electronic control unit connected to the first electrode and the second electrode; and an end connection structure disposed on the strip-shaped installation body, wherein the strip-shaped installation body is locked when wrapped around a human body via the end connection structure.
[0010] Based on the above scheme and as a preferred embodiment of the above scheme: the two ends of the first electrode and the second electrode that are close to each other are spaced apart in the length direction of the strip-shaped mounting body.
[0011] Based on the above scheme and as a preferred embodiment of the above scheme: both the first electrode and the second electrode include a conductive substrate and a plurality of discharge protrusions protruding from the conductive substrate, the plurality of discharge protrusions being arranged at intervals along the length direction of the conductive substrate; the length direction of the conductive substrate extends along the length direction of the strip-shaped mounting body.
[0012] Based on the above scheme and as a preferred embodiment of the above scheme: the conductive substrate is disposed inside the strip-shaped mounting body, the strip-shaped mounting body is provided with a clearance groove, and the discharge protrusion is located in the clearance groove.
[0013] Based on the above scheme and as a preferred embodiment of the above scheme: the strip mounting body is provided with a raised structure, the protrusion direction of the raised structure is the same as the protrusion direction of the discharge protrusion, and relative to the conductive substrate, the distance between the top of the protrusion of the raised structure and the conductive substrate is greater than the distance between the discharge protrusion and the conductive substrate.
[0014] Based on the above scheme and as a preferred embodiment of the above scheme: the length direction of the raised structure is consistent with the width direction of the strip-shaped mounting body, and the number of raised structures is set to several, with the several raised structures arranged at intervals along the length direction of the strip-shaped mounting body; a single discharge protrusion is disposed between two raised structures.
[0015] Based on the above scheme and as a preferred embodiment of the above scheme: the raised top of the raised structure has a first concave arc structure, and the opening direction of the first concave arc structure is oriented away from the conductive substrate.
[0016] Based on the above scheme and as a preferred embodiment of the above scheme: the strip-shaped mounting body has a first corrugated feature structure that extends in an array along the length direction. The first corrugated feature structure that extends in an array forms a first waveform segment of the strip-shaped mounting body. In the first waveform segment, the peaks whose convex direction is consistent with the discharge convex direction form the bulge structure, and the discharge convex is disposed in the trough.
[0017] Based on the above scheme and as a preferred embodiment of the above scheme: the conductive substrate has a second waveform segment corresponding to the first waveform segment, the second waveform segment has a second ripple feature structure adapted to the first ripple feature structure, and the discharge protrusion is disposed in the trough of the second waveform segment.
[0018] Based on the above scheme and as a preferred embodiment of the above scheme: the end connection structure includes a collar disposed on the strip-shaped mounting body.
[0019] Based on the above scheme and as a preferred embodiment of the above scheme: the collar is disposed at one end of the strip-shaped mounting body, and a guide plate is disposed at the other end of the strip-shaped mounting body.
[0020] Based on the above solution and as a preferred embodiment of the above solution: the strip mounting body, the first electrode and the second electrode are all made of soft rubber.
[0021] Based on the above scheme and as a preferred embodiment of the above scheme: the strip mounting body is made of non-conductive silicone material, while the first electrode and the second electrode are made of conductive silicone material.
[0022] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit includes an electrical output module, and the electrical output module is provided with a first output circuit connecting the first electrode and the second electrode.
[0023] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit further includes a control module, which is connected to the first output circuit and controls the current output of the first output circuit.
[0024] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit further includes a power supply module, which is used to supply power to the first output circuit.
[0025] Based on the above scheme and as a preferred embodiment of the above scheme: the number of the strip mounting bodies is multiple; the first electrode and the second electrode are provided on each of the multiple strip mounting bodies; the end connection structure is provided on each of the multiple strip mounting bodies; the electronic control unit is connected to the first electrode and the second electrode on the multiple strip mounting bodies.
[0026] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit is connected to the strip mounting body via a flexible cable, and the electronic control unit is electrically connected to the first electrode and the second electrode via the flexible cable.
[0027] On the other hand, this application also provides a novel buttock massage therapy device, including the above-described ring-type therapy device; it also includes a support body, one side of which has a concave arc surface, and conductive sheet one and conductive sheet two are separately disposed on the concave arc surface; the electronic control unit is also connected to the conductive sheet one and the conductive sheet two.
[0028] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit is disposed on the support body; a flexible cable is provided between the electronic control unit and the strip mounting body; the electronic control unit is electrically connected to the first electrode and the second electrode through the flexible cable.
[0029] Based on the above solution and as a preferred embodiment: a waterproof electrical connection structure is provided at one end of the flexible cable near the support body. The waterproof electrical connection structure includes a first connector, a second connector, and a waterproof structure. The first connector is disposed on the support body and has a first electrical terminal, which is connected to the electronic control unit. The second connector is disposed on the flexible cable and has a second electrical terminal, which is connected to the first conductive sheet and the second conductive sheet via the flexible cable. The first connector is detachably connected to the second connector. When the first connector is connected to the second connector, the first electrical terminal contacts the second electrical terminal to conduct the connection between the flexible cable and the electronic control unit. The waterproof structure is used to prevent water from entering between the first connector and the second connector and reaching the first electrical terminal and the second electrical terminal.
[0030] Based on the above scheme and as a preferred embodiment of the above scheme: the first connector is provided with a slot, the slot is provided with the first power terminal, the second connector is provided with a plug, the plug is provided with the second power terminal, and the first connector and the second connector are detachably connected by inserting the plug into the slot, and the first power terminal contacts the second power terminal.
[0031] Based on the above solution and as a preferred embodiment of the above solution: the waterproof structure includes a first elastic layer and an annular protrusion; the first elastic layer is respectively disposed on the peripheral surface of the slot and the plug, and when the plug is inserted into the slot, the plug and the slot are interference-fitted; the annular protrusion is disposed on the slot and / or the plug.
[0032] Based on the above solution and as a preferred embodiment of the above solution: the electronic control unit is provided with a connection confirmation switch, which is used to detect whether the first connector is connected to the second connector.
[0033] Based on the above scheme and as a preferred embodiment of the above scheme: the connection confirmation switch includes a Hall switch element and a magnet block. The Hall switch element is disposed on the first connector, and the magnet block is disposed on the second connector. When the first connector is connected to the second connector, the magnet block is close to the sensing part of the Hall switch element.
[0034] Based on the above scheme and as a preferred embodiment of the above scheme: the electronic control unit includes an electrical output module and a control module; the electrical output module is provided with a second output circuit that connects the first conductive sheet and the second conductive sheet and is electrically connected to each other; the control module is connected to the second output circuit and controls the current output of the second output circuit; the Hall switch is connected to the control module to provide feedback judgment information to the control module.
[0035] To address the problem that in existing products, the electrodes used to release EMS current (low-frequency pulsed microcurrent) are mainly concentrated in localized locations, resulting in limited electrode current application area, uneven current density distribution, and overstimulation in some areas while other areas are ineffective, this application offers the following advantages:
[0036] The ring-type physiotherapy device of this application can be used for physiotherapy and massage of areas including but not limited to the buttocks and waist.
[0037] In use, firstly, the first and second electrodes of this ring-type physiotherapy device should face the user's body parts. Then, the main body of the device is wrapped around the user's body parts so that the first and second electrodes face the user and contact the user's skin. Then, under the action of the electronic control unit, the electronic control unit outputs EMS voltage. Under the action of the EMS voltage, EMS current (low-frequency pulse microcurrent) is released to the user through the first and second electrodes to perform EMS massage on the user's body (such as legs or waist).
[0038] Because the strip-shaped mounting body is flexible and can be bent, it can adapt to bending changes when it wraps around the user's body so that the first and second electrodes can contact the skin.
[0039] The first and second electrodes are used to release EMS current. By arranging the first and second electrodes along the length of the strip-shaped mounting body, a wider contact range for the EMS current-releasing electrodes is achieved. This overcomes the problem of uneven current density distribution and overstimulation in some areas while other areas remain ineffective due to limited electrode current application and coverage.
[0040] The end connection structure is used to maintain the strip-shaped installation body in a ring shape when it is wrapped around the user's body. This ensures a good fit and continuous stability during massage.
[0041] In addition to the purposes, features, and advantages described above, this application has other purposes, features, and advantages. These will be further described in detail below with reference to figures. Attached Figure Description
[0042] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0043] Figure 1 This is a schematic diagram of the structure of the novel buttock massage therapy device of this application;
[0044] Figure 2 This is a schematic diagram of the supporting body of the novel buttock massage therapy device of this application;
[0045] Figure 3 This is an exploded view of the assembly of the support body of the novel buttock massage therapy device of this application.
[0046] Figure 4 This is a schematic diagram of the main structure of the belt-shaped installation part of the ring-type physiotherapy device of this application;
[0047] Figure 5 This is a schematic diagram illustrating the connection between the flexible cable and the strip mounting body in this application;
[0048] Figure 6 This is an exploded view of the strip-shaped mounting main body of this application.
[0049] Figure 7 This is a partial structural diagram of the strip-shaped mounting main body after assembly and disassembly in this application;
[0050] Figure 8 This is a cross-sectional view of the strip-shaped mounting main body of this application after being cut along the width direction;
[0051] Figure 9 This is a partial cross-sectional view of the strip-shaped mounting main body of this application after being cut along its length.
[0052] Figure 10 This is a schematic diagram of the electronic control unit portion of this application;
[0053] Figure 11 This is a schematic diagram of the structure of the first connector in this application;
[0054] Figure 12 This is a schematic diagram of the first connector of this application after being cut open;
[0055] Figure 13 This is a schematic diagram (I) of another embodiment of the strip-shaped mounting body of this application;
[0056] Figure 14 This is a schematic diagram (II) of another embodiment of the strip-shaped mounting body of this application;
[0057] Figure 15 This is a schematic diagram (iii) of another embodiment of the strip-shaped mounting body of this application;
[0058] Figure 16 This is a block diagram of the electronic control unit structure of this application;
[0059] Figure 17 This is a schematic diagram of the control module of this application;
[0060] Figure 18 This is a schematic diagram of the Hall switch device of this application;
[0061] Figure 19 This is a schematic diagram of the driving circuit of this application;
[0062] Figure 20This is a schematic diagram of the power management circuit of this application;
[0063] Figure 21 This is a schematic diagram of the first output circuit of this application;
[0064] Figure 22 This is a schematic diagram of the second output circuit of this application.
[0065] Explanation of reference numerals in the attached figures:
[0066] 10. Ring-type physiotherapy device;
[0067] 20. New type of buttock massage therapy device;
[0068] 100. Strip-shaped mounting body; 101. First wave segment; 102. Clearance groove; 103. Raised structure; 104. First strip body; 105. First groove; 106. Second strip body; 107. Second groove; 108. First concave arc structure; 109. Second concave arc structure;
[0069] 200, First electrode; 201, Conductive substrate; 202, Discharge protrusion; 203, Second waveform segment;
[0070] 300. Second electrode;
[0071] 400. End connection structure; 401. Collar; 402. Guide plate; 403. Connecting hook; 404. Connecting ring;
[0072] 500. Electronic control unit; 501. Control module; 502. Electrical output module; 503. First output circuit; 504. Second output circuit; 505. Drive circuit; 506. Power supply module; 507. Flexible cable; 508. First control module; 509. Second control module; 510. Power management circuit; 511. Battery;
[0073] 601. Support body; 602. Concave arc surface; 603. Conductive sheet one; 604. Conductive sheet two;
[0074] 700. Waterproof electrical connection structure; 701. First connector; 702. Slot; 703. Limiting protrusion; 704. First electrical terminal; 705. Second connector; 706. Plug; 707. Limiting groove; 708. Second electrical terminal; 709. Waterproof structure; 710. First elastic layer; 711. Annular ridge; 712. Connection confirmation switch; 713. Hall effect switch; 714. Magnet block;
[0075] 800, Waterproof cap; 801, Plug; 802, Second elastic layer. Detailed Implementation
[0076] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.
[0077] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it may be directly or indirectly located on that other component. When a component is referred to as "connected to" another component, it may be directly or indirectly connected to that other component. The terms "upper," "lower," "left," "right," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate orientations or positions based on the accompanying drawings, and are for ease of description only, and should not be construed as limiting the technical solution. The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features. "A plurality" means two or more, unless otherwise explicitly defined.
[0078] See Figure 1-22 This application discloses a ring-type physiotherapy device 10 and a novel buttock massage physiotherapy device 20, which solves the problem that in existing products, the electrodes used to release EMS current (low-frequency pulse microcurrent) are mainly concentrated in local positions, resulting in limited electrode current action and area, uneven current density distribution, and overstimulation in some areas while other areas are ineffective.
[0079] Example 1
[0080] like Figure 1-22 As shown, a ring-type physiotherapy device 10 is disclosed. This ring-type physiotherapy device 10 can be used for physiotherapy and massage of areas including but not limited to the buttocks and waist.
[0081] In the embodiments of this disclosure, such as Figure 1 and 10 As shown, the ring-type physiotherapy device 10 includes a strip-shaped mounting body 100, an electronic control unit 500, an end connection structure 400, a first electrode 200, and a second electrode 300. The strip-shaped mounting body 100 is flexible and bendable, and it is non-conductive. Both the first electrode 200 and the second electrode 300 are conductive. Figure 4 , Figure 6 ,as well as Figure 13-15As shown, both the first electrode 200 and the second electrode 300 are disposed on the strip-shaped mounting body 100, extending along the length direction of the strip-shaped mounting body 100 and in opposite directions. Both the first electrode 200 and the second electrode 300 have conductive portions exposed outside the strip-shaped mounting body 100. The electronic control unit 500 is connected to the first electrode 200 and the second electrode 300. An end connection structure 400 is disposed on the strip-shaped mounting body 100. When the strip-shaped mounting body 100 is arranged in a ring shape, the end connection structure 400 is used to maintain the ring shape of the strip-shaped mounting body 100.
[0082] In use, firstly, the first electrode 200 and the second electrode 300 of the ring-type physiotherapy device 10 are positioned facing the user's body part. Then, the band-shaped installation body 100 is wrapped around the user's body part so that the first electrode 200 and the second electrode 300 face the user and contact the user's skin, thus completing the user's wearing of the ring-type physiotherapy device 10. Then, under the action of the electronic control unit 500, the electronic control unit 500 outputs EMS voltage. Under the action of the EMS voltage, EMS current (low-frequency pulsed microcurrent) is released to the user through the first electrode 200 and the second electrode 300 to perform EMS massage on the user's body (such as the legs or waist).
[0083] Since the strip-shaped mounting body 100 is flexible and can be bent, it can adapt to bending changes when it wraps around the user's body so that the first electrode 200 and the second electrode 300 can contact the skin.
[0084] The first electrode 200 and the second electrode 300 are electrodes for releasing EMS current. By extending along the length of the strip mounting body 100, the first electrode 200 and the second electrode 300 provide a wider contact range for the EMS current releasing electrodes. Through the reasonable control of the EMS voltage / current by the electronic control unit 500, the concentration of EMS current in a localized area can be avoided. This overcomes the problem of uneven current density distribution and overstimulation in some areas while other areas remain ineffective due to limited electrode current action and area.
[0085] The end connection structure 400 is used to keep the strip-shaped installation body 100 in a ring shape when it is wrapped around the user's body. This ensures that the strip-shaped installation body 100 is worn (wrapped around the user's body) and that the end connection structure 400 maintains a good fit, thus ensuring the continuous and stable use of the massage.
[0086] In the embodiments of this disclosure, such as Figure 5 , Figure 6 and Figure 7As shown, the two adjacent ends of the first electrode 200 and the second electrode 300 are spaced apart along the length of the strip-shaped mounting body 100. This effectively divides the strip-shaped mounting body 100 into two segments, one specifically for the first electrode 200 and the other specifically for the second electrode 300. This avoids the first electrode 200 and the second electrode 300 being placed side-by-side and too close together, which would result in a short circuit between the nearest first electrode 200 and second electrode 300, affecting the coverage area of the EMS current stimulation effect.
[0087] In the embodiments of this disclosure, such as Figure 6 , Figure 7 , Figure 9 , Figure 13 As shown, both the first electrode 200 and the second electrode 300 include a conductive substrate 201 and a plurality of discharge protrusions 202 protruding from the conductive substrate 201. The plurality of discharge protrusions 202 are arranged at intervals along the length direction of the conductive substrate 201. The conductive substrate 201 is flexible and can be bent to adapt to wearing. Further, the length direction of the conductive substrate 201 extends along the length direction of the strip-shaped mounting body 100. The positive terminal of the EMS discharge circuit in the electronic control unit 500 is connected to the conductive substrate 201 of the first electrode 200, and the negative terminal of the EMS discharge circuit is connected to the conductive substrate 201 of the second electrode 300. Since the charge density of the discharge protrusions 202 on the same conductive substrate 201 (charged conductor) is larger than that of the smooth part, the electric field strength near the discharge protrusions 202 is stronger. The discharge protrusions 202 form a "point discharge" effect on the conductive substrate 201, making it easier to discharge to the surrounding skin.
[0088] In the embodiments of this disclosure, such as Figure 5-9 and Figure 13 As shown, the conductive substrate 201 is disposed inside the strip mounting body 100, and the strip mounting body 100 is provided with clearance grooves 102, wherein the number of clearance grooves 102 corresponds one-to-one with the number of discharge protrusions 202, and each discharge protrusion 202 is located in a clearance groove 102. The conductive substrate 201 is isolated and protected by the strip mounting body 100, so that EMS current can only be released outward through the discharge protrusions 202. This ensures that the EMS current is better controlled within the discharge area, avoiding the easy formation of a point of minimum resistance between the first electrode 200 or the second electrode 300 and the skin, and ensuring the uniformity of the discharge point distribution and the wide coverage area.
[0089] Example 2
[0090] like Figure 1-22 As shown, a ring-type physiotherapy device 10 is disclosed. The main difference between this embodiment and Embodiment 1 is the setting of the raised structure 103.
[0091] With the improvement of living standards and the faster pace of life, time has become more precious. Although there are many types of massage products available, the time spent using massagers is even less, mainly because current massagers are inconvenient to use, especially leg and buttock massagers, which prevent movement or other activities while in use. In order to allow people to enjoy the relaxation of muscles brought by massage devices in a limited amount of time, after extensive research and experimentation, this application further discloses a physiotherapy device that can be used in the water while taking a bath without taking up other time.
[0092] In some embodiments, the ring-type physiotherapy device 10 includes a strip-shaped mounting body 100, an electronic control unit 500, an end connection structure 400, a first electrode 200 and a second electrode 300, and a raised structure 103 disposed on the strip-shaped mounting body 100. Specifically, the strip-shaped mounting body 100 has bendable flexibility; both the first electrode 200 and the second electrode 300 are conductive, both are disposed on the strip-shaped mounting body 100, both extend along the length direction of the strip-shaped mounting body 100, and extend in opposite directions; the electronic control unit 500 is connected to the first electrode 200 and the second electrode 300; the end connection structure 400 is disposed on the strip-shaped mounting body 100, and when the strip-shaped mounting body 100 is wrapped in a ring, the end connection structure 400 is used to maintain the strip-shaped mounting body 100 in a ring shape. Figure 5 , 6 As shown in 7, 9, 14, and 15, the raised structure 103 is disposed on the strip-shaped mounting body 100. When the ring-type physiotherapy device 10 is worn on the body during use, the raised structure 103 can support the user's skin, so that the first electrode 200 and the second electrode 300 have gaps between the user's body (skin).
[0093] Based on this, users can wear the ring-type physiotherapy device 10 in water, such as during a bath. Users can relax while taking a bath and use the ring-type physiotherapy device 10 for massage and relaxation, thus achieving the purpose of exercising.
[0094] When in use, the user wears the ring-type physiotherapy device 10 in water. The first electrode 200 and the second electrode 300 contact the skin through the water, forming a perfect interactive pathway. This allows the MES current from the first electrode 200 and the second electrode 300 to be conducted to the user's skin through the water. During EMS action, the irregular contraction of muscles in the water does not create conductive gaps, thus ensuring that the massage circuit remains conductive. At the same time, the EMS current action area is transmitted through the water to the nearby muscles directly opposite the first electrode 200 and the second electrode 300, eliminating the problem of uneven current density distribution. Furthermore, neither the first electrode 200 nor the second electrode 300 directly contacts the skin. Instead, the water during bathing acts as a conductor, evenly conducting the current to the skin. This prevents the generation of intermittent pulse voltages that could cause stinging sensations when the voltage is high (e.g., exceeding 40 volts).
[0095] In some implementations, such as Figure 14 As shown, the raised structure 103 can be a raised structure that protrudes from the strip-shaped mounting body 100 and is located around the first electrode 200 and the second electrode 300. The raised structure supports the skin so that the first electrode 200 and the second electrode 300 do not directly contact the skin and there is a gap between them.
[0096] In some implementations, such as Figure 15 As shown, the raised structure 103 can be a mesh partition layer disposed on the strip-shaped mounting body 100, which separates the first electrode 200, the second electrode 300 and the skin, so that the first electrode 200 and the second electrode 300 do not directly contact the skin and there is a gap.
[0097] In the embodiments of this disclosure, such as Figure 4 , Figure 5 and Figure 9 As shown, both the first electrode 200 and the second electrode 300 include a conductive substrate 201 and a plurality of discharge protrusions 202 protruding from the conductive substrate 201. The plurality of discharge protrusions 202 are arranged at intervals along the length direction of the conductive substrate 201. The length direction of the conductive substrate 201 extends along the length direction of the strip mounting body 100. The conductive substrate 201 is disposed inside the strip mounting body 100, and the strip mounting body 100 is provided with a clearance groove 102, in which the discharge protrusions 202 are located.
[0098] Furthermore, such as Figure 9 As shown, the protrusion direction of the raised structure 103 is the same as that of the discharge protrusion 202, and the distance between the top of the protrusion of the raised structure 103 and the conductive substrate 201 is greater than the distance between the discharge protrusion 202 and the conductive substrate 201 relative to the conductive substrate 201.
[0099] Similarly, the positive terminal of the EMS discharge circuit in the electronic control unit 500 is connected to the conductive substrate 201 of the first electrode 200, and the negative terminal of the EMS discharge circuit is connected to the conductive substrate 201 of the second electrode 300. Since the charge density of the discharge protrusion 202 on the same conductive substrate 201 (charged conductor) is larger than that of the smooth part, the electric field strength near the discharge protrusion 202 is stronger. Through the principle that the discharge protrusion 202 forms a "point discharge" effect on the conductive substrate 201, it is easier to discharge from the discharge protrusion 202 to the surrounding skin. Thus, the EMS current can only be released outward through the discharge protrusion 202, and the discharge point is actively distributed to multiple positions along the length of the strip-shaped mounting body 100. This avoids the easy formation of a point of minimum resistance between the first electrode 200 or the second electrode 300 and the skin, ensuring the uniformity of the EMS current distribution and ensuring that the EMS current covers the entire body part around the strip-shaped mounting body 100.
[0100] Generally, such as Figure 5 and Figure 6 As shown, the discharge protrusion 202 is elongated, and the length direction of the discharge protrusion 202 is consistent with the width direction of the strip-shaped mounting body 100.
[0101] In the embodiments of this disclosure, such as Figure 5 and Figure 6 As shown, the length direction of the raised structure 103 is consistent with the width direction of the strip-shaped mounting body 100. Several raised structures 103 are arranged at intervals along the length direction of the strip-shaped mounting body 100. A single discharge protrusion 202 is positioned between two adjacent raised structures 103, ensuring that each discharge protrusion 202 has a raised structure 103 on each side. This serves two purposes: firstly, it ensures that the discharge protrusion 202 is fully supported by the raised structure 103, forming an isolation gap with the skin; secondly, it ensures that the minimum distance between the discharge protrusion 202 and the skin has good consistency, and that the minimum distance does not form a point of minimum resistance connection.
[0102] Furthermore, such as Figure 8 As shown, the raised top of the raised structure 103 has a first concave arc structure 108, and the opening of the first concave arc structure 108 faces away from the conductive substrate 201. When this ring-type physiotherapy device 10 is worn by the user, the raised structure 103 of the first concave arc structure 108 supports the device, and the opening of the first concave arc structure 108 faces the user's skin. This allows the gap between the discharge protrusion 202 and the skin to be connected along the length of the strip-shaped mounting body 100, so that the discharge area can be dispersed and connected, and will not be concentrated between a certain discharge protrusion 202 and the corresponding local skin.
[0103] Example 3
[0104] The main difference between this embodiment and Embodiment 2 lies in the specific structure of the strip-shaped installation body 100.
[0105] In some implementations, such as Figure 13-15 As shown, the strip-shaped mounting body 100 can be a long, straight, flat strip structure.
[0106] In the embodiments of this disclosure, such as Figure 1 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8 As shown, the strip-shaped mounting body 100 has "wave-shaped segments" arranged in the extension direction (see...). Figure 4 Specifically, the strip mounting body 100 has a first corrugated feature structure that extends in an array along the length direction. The first corrugated feature structure that extends in an array forms a first waveform segment 101 of the strip mounting body 100. In the first waveform segment 101, the peaks whose convex directions are consistent with the direction of the discharge protrusions 202 form a raised structure 103, and the discharge protrusions 202 are disposed in the troughs.
[0107] Further, as shown in 6-7, the conductive substrate 201 has a second waveform segment 203 corresponding to the first waveform segment 101. The second waveform segment 203 has a second corrugated feature structure adapted to the first corrugated feature structure. The adaptation of the first corrugated feature structure and the second corrugated feature structure is as follows: Figure 9 As shown, the discharge protrusion 202 is disposed in the trough of the second waveform segment 203.
[0108] Therefore, the strip-shaped mounting body 100, which is provided with the first electrode 200 and the second electrode 300, can present an overall undulating "waveform," wherein the waveform characteristics of the conductive substrate 201 are adapted to the waveform characteristics of the strip-shaped mounting body 100, such as... Figure 9 As shown, the conductive substrate 201 is embedded inside the strip-shaped mounting body 100. In specific configuration, both the conductive substrate 201 and the discharge protrusion 202 are made of flexible and elastic conductive soft rubber material, such as conductive silicone, and the conductive substrate 201 and the discharge protrusion 202 are integrally molded.
[0109] The strip mounting body 100 can be a single unit, integrally molded from a non-conductive soft rubber material (such as non-conductive silicone). During manufacturing, the first electrode 200 and the second electrode 300 are directly embedded therein, and the conductive substrate 201 is connected to the interior of the strip mounting body 100 as a whole.
[0110] Among them, such as Figure 6 and Figure 7As shown, the strip mounting body 100 may also include a first strip 104 and a second strip 106. The first strip 104 and the second strip 106 are joined together to form the strip mounting body 100. The facing sides of the first strip 104 and the second strip 106 are respectively provided with a first groove 105 and a second groove 107. The first groove 105 and the second groove 107 are joined together to form a cavity for accommodating the conductive substrate 201. The clearance groove 102 is provided on the first strip 104 and penetrates to the first groove 105. After the first strip 104 and the second strip 106 are joined together and the conductive substrate 201 is embedded in the cavity formed by the joining of the first groove 105 and the second groove 107, the first strip 104, the second strip 106, the first electrode 200 and the second electrode 300 are made into a whole by special welding or bonding.
[0111] When the user wears the band-type physiotherapy device 10, the exposed side of the discharge protrusion 202 faces the user's skin, allowing the band-shaped installation body 100 to conform to the user's body and extend around it, such as around the user's legs or waist. After wearing, the peak (i.e., the raised structure 103) of the first waveform segment 101 facing the user contacts the user's skin, and the discharge protrusion 202 in the trough naturally forms a gap between the user's skin and the discharge protrusion 202 to accommodate water. The waveform characteristics formed by the band-shaped installation body 100 in conjunction with the first electrode 200 and the second electrode 300 have excellent adaptability to the bending when wrapped around the user's body and are elastic. In particular, after using elastic silicone material (conductive silicone and non-conductive silicone), the surface of the band-shaped installation body 100 has good skin-friendliness and a hugging feeling from the elastic restraint. The wearer will not have a strong sense of foreign body rejection and will feel very gentle and comfortable when wearing it.
[0112] In this embodiment, the end connection structure 400 includes a collar 401 disposed on the band-shaped mounting body 100. When the user wears the band-type physiotherapy device 10, the band-shaped mounting body 100 wraps around the user's body massage area, with the portions at both ends longer than the circumference of the massage area overlapping each other, and the collar 401 simultaneously covers both ends of the band-shaped mounting body 100. When the collar 401 covers both ends of the band-shaped mounting body 100, the collar 401 is embedded in the "grooves" (the portion between two troughs or two peaks) of the waveform characteristics of the band-shaped mounting body 100, thereby making the collar 401 reliably constrain the band-shaped mounting body 100, thus maintaining the band-shaped mounting body 100 in a ring around the user's massage area for wearing.
[0113] Furthermore, such as Figure 1 and 5As shown, a collar 401 is located at one end of the strip-shaped mounting body 100, and a guide plate 402 is located at the other end of the strip-shaped mounting body 100. When wearing the garment, the end of the strip-shaped mounting body 100 with the guide plate 402 is inserted into the collar 401. The strip-shaped mounting body 100 is then wrapped around the massage area and conforms to the body. The collar 401 is then inserted into the "groove" of the wave-like feature of the strip-shaped mounting body 100 at the end with the guide plate 402 to complete the wearing process. The tightness of the garment can be adjusted by changing the position of the collar 401 and the strip-shaped mounting body 100. The guide plate 402 facilitates the insertion of the end of the strip-shaped mounting body 100 into the collar 401.
[0114] In some implementations, such as Figure 8 As shown, on the waveform characteristics of the first waveform segment 101 of the strip-shaped installation body 100, there is a second concave arc structure 109 on the side opposite to the raised structure 103. The opening direction of the second concave arc structure 109 is opposite to the opening direction of the first concave arc structure 108. First, the second concave arc structure 109 and the first concave arc structure 108 cooperate to form a symmetrical structural setting, so that the strip-shaped installation body 100 of this ring-type physiotherapy device 10 has better aesthetics and has a higher quality product attribute. Second, the second concave arc structure 109 can make the two sides of the strip-shaped installation body 100 in the width direction bulge upward after being worn, and have a deeper "groove" feature on both sides in the width direction, which is conducive to better connection stability after the collar 401 is inserted.
[0115] In some embodiments, the end connection structure 400 may be a Velcro structure that is provided at both ends of the strip mounting body 100 and cooperates with each other. The Velcro structure includes a male and a female. The female is provided on one side of the strip mounting body 100 where the first electrode 200 or the second electrode 300 is provided, and the male is provided on the other side of the other end.
[0116] In some implementations, such as Figure 13-14 As shown, the end connection structure 400 may include a connecting ring 404 and a connecting hook 403. The connecting ring 404 and the connecting hook 403 are respectively disposed at both ends of the strip-shaped mounting body 100. After the strip-shaped mounting body 100 surrounds the user's body massage area, the connecting hook 403 hooks the connecting ring 404 to form a connection constraint.
[0117] Example 4
[0118] The main difference between this embodiment and Embodiments 1, 2 and 3 lies in the specific configuration of the electronic control unit 500.
[0119] In the embodiments of this disclosure, such as Figure 16-22As shown, the electronic control unit 500 includes an electrical output module 502, such as... Figure 15 As shown, the electrical output module 502 is equipped with a first output circuit 503 connecting the first electrode 200 and the second electrode 300. The first output circuit 503 connects the first electrode 200 and the second electrode 300, forming a pathway on the user's massage area through the first electrode 200 and the second electrode 300, thereby outputting MES current to the massage area. Figure 21 As shown, the first output circuit 503 generally has a first positive terminal S1+ and a first negative terminal S1-, wherein the first positive terminal S1+ is connected to the first electrode 200, and the first negative terminal S1- is connected to the second electrode 300. When the first electrode 200 and the second electrode 300 are in direct contact with the skin, the first electrode 200 and the second electrode 300 conduct on the skin and output MES current. When used in water, the first electrode 200 and the second electrode 300 conduct in the water, and the EMS current is evenly distributed in the gap between the discharge protrusion 202 and the skin, and evenly output to the body massage area surrounded by the strip-shaped mounting body 100.
[0120] Furthermore, such as Figure 16 and Figure 17 As shown, the electronic control unit 500 also includes a control module 501, which is connected to the first output circuit 503 and controls the EMS current output of the first output circuit 503. The connection method is as follows: Figure 17 and Figure 21 For example, controlling on / off states and power consumption.
[0121] Among them, such as Figure 16 As shown, the electronic control unit 500 also includes a power supply module 506, which supplies power to the first output circuit 503. It also supplies power to other electrical components in the ring-type physiotherapy device 10, such as the control module 501. The power supply module 506 is equipped with a drive circuit 505 for stably outputting a drive voltage to the first output circuit 503. The drive circuit 505, as shown... Figure 19 As shown, the connection method is for reference. Figure 19 and Figure 17 The drive circuit 505 is connected to the battery 511 via the connection interface BAT; and a power management circuit 510 is configured, the power management circuit 510 as follows: Figure 20 As shown, the connection method is for reference. Figure 20 and Figure 17 The power management circuit 510 is equipped with a charging interface P1 that can charge the battery 511, as well as a power IC chip that monitors and manages the battery 511. The power IC chip is also connected to the control module 501 so that it can be centrally managed and controlled by the control module 501.
[0122] In some implementations, such as Figure 1and Figure 4 As shown, a first control module 508 can be further configured. The first control module 508 is equipped with a first control button (such as a power button, upshift button, downshift button, etc.). The first control module 508 is connected to the control module 501. By touching the first control button, the first control module 508 can send corresponding request commands to the control module 501, such as upshift command or downshift command. The control module 501 controls and adjusts the MES output power of the first output circuit 503 according to the request command.
[0123] Example 5
[0124] The main difference between this embodiment and Embodiments 1, 2, 3 and 4 lies in the specific number of strip-shaped installation bodies 100.
[0125] In existing technologies, electro-pulse massage products are mostly designed for use on a single body part, using only a single massage device. For example, they cannot be used on both legs simultaneously, or two massage products are required to massage both legs at the same time. Therefore, the number of the strip-shaped mounting body 100 can be set to multiple, that is, at least two.
[0126] In the embodiments of this disclosure, such as Figure 1 and Figure 4 As shown, there are two strip-shaped mounting bodies 100. Each strip-shaped mounting body 100 is equipped with a first electrode 200 and a second electrode 300; each strip-shaped mounting body 100 is equipped with an end connection structure 400; the electronic control unit 500 is connected to the first electrode 200 and the second electrode 300 on the two strip-shaped mounting bodies 100. When simultaneous massage of both legs is required, one strip-shaped mounting body 100 can be set for each massage position on each leg, allowing the strip-shaped mounting body 100 to wrap around the massage area and be constrained by the end connection structure 400 to complete the wearing process.
[0127] In some embodiments, the number of the strip-shaped mounting bodies 100 can be set to three. Each of the three strip-shaped mounting bodies 100 is provided with a first electrode 200 and a second electrode 300; each of the three strip-shaped mounting bodies 100 is provided with an end connection structure 400; the electronic control unit 500 is connected to the first electrode 200 and the second electrode 300 on two of the strip-shaped mounting bodies 100. When it is necessary to massage both legs and the waist simultaneously, one strip-shaped mounting body 100 can be provided for each massage position on the legs, and one strip-shaped mounting body 100 can also be worn on the waist. Two of the strip-shaped mounting bodies 100 are correspondingly wrapped around the massage area of the legs and constrained by the end connection structure 400 to complete the wearing process. Similarly, one of the strip-shaped mounting bodies 100 is correspondingly wrapped around the massage area of the waist and constrained by the end connection structure 400 to complete the wearing process.
[0128] Furthermore, the electronic control unit 500 is connected to the strip-shaped mounting body 100 via a flexible cable 507, and the electronic control unit 500 is electrically connected to the first electrode 200 and the second electrode 300 via the flexible cable 507. This allows the two strip-shaped mounting bodies 100 to be flexibly worn separately.
[0129] For example, such as Figure 21 As shown, the first output circuit 503 is provided with a first positive terminal S1+ and a first negative terminal S1-. The first positive terminal S1+ can be connected to the first electrode 200 through one wire in the flexible cable 507, while the first negative terminal S1- can be connected to the second electrode 300 through another wire in the flexible cable 507.
[0130] Example 6
[0131] like Figure 1-22 As shown, a novel hip massage therapy device 20 is disclosed. This novel hip massage therapy device 20 can be used simultaneously for the hips and waist, or simultaneously for the hips and legs.
[0132] Existing electro-pulse massage products are mostly designed for single areas, using only a single massage device. Examples include the electro-stimulation massager mentioned in the background section, and the hip massage therapy device disclosed in patent publication (CN216168767U), which targets either the hips or the lower back. Therefore, to allow users to enjoy muscle relaxation within a limited timeframe, extensive research and experimentation have led to the development and publication of a device that can simultaneously massage and exercise both the hips and legs.
[0133] In this disclosure, firstly, as Figure 1 As shown, the novel hip massage therapy device 20 includes the ring-type therapy device 10 of the above embodiments.
[0134] Secondly, such as Figure 1 , Figure 2 and Figure 3 As shown, the novel buttock massage therapy device 20 also includes a support body 601, one side of which has a concave arc surface 602. Conductive sheet 1 603 and conductive sheet 2 604 are separately disposed on the concave arc surface 602. The electronic control unit 500 is also connected to conductive sheet 1 603 and conductive sheet 2 604 to apply a positive voltage to conductive sheet 1 603 and a negative voltage to conductive sheet 2 604 respectively.
[0135] When in use, the conductive sheet 603 and the conductive sheet 604 face the user's massage area. For example, the user can sit directly on the support body 601 with the conductive sheet 603 and the conductive sheet 604 in contact with the skin of the buttocks. At the same time, the band-shaped installation body 100 is worn on the waist or legs. The electronic control unit 500 outputs EMS voltage. Under the action of the EMS voltage, EMS current is released to the massage area of the user wearing the band-shaped installation body 100 through the first electrode 200 and the second electrode 300, and EMS current is released to the buttocks through the conductive sheet 603 and the conductive sheet 604, so as to perform EMS massage on multiple parts of the user's body at the same time.
[0136] Meanwhile, by selecting a suitable ring-type physiotherapy device 10 product structure, such as the ring-type physiotherapy device 10 disclosed in Embodiments 2 and 3, it possesses the characteristic of being usable in water. For example, when using it, the support body 601 is placed in the bathtub, and the user sits directly on the support body 601 with their buttocks on the support body 601, while wearing the ring-type physiotherapy device 10 on both legs. This allows for massage and exercise of the buttocks and legs while bathing, without taking up any extra time, making it very comfortable and convenient. At the same time, the concave arc-shaped surface 602 of the support body 601 can surround and support the user's buttocks, providing excellent comfort.
[0137] In the embodiments of this disclosure, such as Figure 3 , Figure 10 As shown, the electronic control unit 500 is mounted on the support body 601; a flexible cable 507 is provided between the electronic control unit 500 and the strip mounting body 100; the electronic control unit 500 is electrically connected to the first electrode 200 and the second electrode 300 through the flexible cable 507. Typically, the support body 601 has a relatively large volume structure, which facilitates the provision of a larger space to accommodate the electronic control unit 500. The ample space also facilitates the installation of a waterproof structure 709 for the electronic control unit 500 (such as sealing off the waterproof installation area, potting encapsulation, etc.).
[0138] At the same time, such as Figure 1 As shown, the strip mounting body 100 and the support body 601 are connected by a flexible cable 507. Even when two strip mounting bodies 100 are set, the strip mounting body 100 and the support body 601 also have a large degree of independent flexibility, so they are convenient to use and easy to operate.
[0139] Example 7
[0140] The main difference between this embodiment and embodiment six lies in the connection method between the flexible cable 507 and the electronic control unit 500.
[0141] In the embodiments of this disclosure, such as Figure 1-4 ,as well as Figure 10-12 As shown, the flexible cable 507 has a waterproof electrical connection structure 700 at one end near the support body 601, such as... Figure 10 As shown, the waterproof electrical connection structure 700 includes a first connector 701, a second connector 705, and a waterproof structure 709. The first connector 701 is disposed on the support body 601 and has a first electrical terminal 704, which is connected to the electronic control unit 500. The second connector 705 is disposed on the flexible cable 507 and has a second electrical terminal 708, which is connected to the conductive sheet 603 and the conductive sheet 604 via the flexible cable 507. The first connector 701 can be detachably connected to the second connector 705. When the first connector 701 and the second connector 705 are connected, the first electrical terminal 704 contacts the second electrical terminal 708, so that the connection between the flexible cable 507 and the electronic control unit 500 is made conductive. The waterproof structure 709 is used to prevent water from entering from between the first connector 701 and the second connector 705 to the first electrical terminal 704 and the second electrical terminal 708.
[0142] The flexible cable 507 on the strip mounting body 100 can be detached from the support body 601 of the novel buttock massage therapy device 20 by separating the second connector 705 from the first connector 701. This allows the novel buttock massage therapy device 20 to be used independently by releasing EMS current through the first conductive sheet 603 and the second conductive sheet 604. When both the strip mounting body 100 and the support body 601 need to be used simultaneously, the first connector 701 and the second connector 705 can be connected.
[0143] Since this novel buttock massage therapy device 20 is used in water, the waterproof structure 709 is used to prevent water from entering the first electrical terminal 704 and the second electrical terminal 708 from between the first connector 701 and the second connector 705, and to prevent the electrical parts such as the first electrical terminal 704 and the second electrical terminal 708 from being exposed to water and ionized and corroded during long-term use.
[0144] In the embodiments of this disclosure, such as Figure 4 , Figure 10 , Figure 11 and Figure 12As shown, in order to achieve a detachable connection between the first connector 701 and the second connector 705, the first connector 701 is provided with a slot 702, and a first power terminal 704 is provided in the slot 702. The second connector 705 is provided with a plug 706, and a second power terminal 708 is provided on the plug 706. The first connector 701 and the second connector 705 are detachably connected by inserting the plug 706 into the slot 702, and the first power terminal 704 contacts the second power terminal 708.
[0145] Furthermore, such as Figure 4 , Figure 11 and Figure 12 As shown, the waterproof structure 709 includes a first elastic layer 710 and an annular protrusion 711; the first elastic layer 710 is respectively disposed on the peripheral surfaces of the slot 702 and the plug 706, and when the plug 706 is inserted into the slot 702, the plug 706 and the slot 702 are interference-fitted; as Figure 10 As shown, a waterproof, sealed connection is achieved through the tight contact of the two interlocking surfaces of the plug 706 when it is inserted into the slot 702. The annular ridge 711 is optionally or simultaneously provided on both the slot 702 and the plug 706.
[0146] The annular protrusion 711 is preferably elastic. Generally, the annular protrusion 711 can be provided on the plug 706. Firstly, the elastic protrusion can form a seal between the plug 706 and the slot 702. Secondly, when the opposing surface of the annular protrusion 711 also has a first elastic layer 710, the annular protrusion 711 and the first elastic layer 710 can form a mutually interlocking fit. While enhancing the sealing performance, it also plays a sealing role in preventing the plug 706 and the slot 702 from sliding relative to each other.
[0147] In some implementations, such as Figure 4 As shown, annular protrusions 711 are provided on both the slot 702 and the plug 706, and the annular protrusions 711 are elastic. When the plug 706 is inserted into the slot 702, the annular protrusions 711 on the slot 702 can cooperate with the annular protrusions 711 on the plug 706 in an alternating manner, which achieves a better sealing effect and a better anti-dislodgement effect.
[0148] The first elastic layer 710 and the annular protrusion 711 are both recommended to be made of non-conductive silicone. The silicone material has good adhesion and has good adhesion after contact, which can not only ensure the sealing performance, but also increase the friction between them to prevent unnecessary separation between the slot 702 and the plug 706.
[0149] In some implementations, such as Figure 11 and 12As shown, the first power terminal 704 is a pin header. Normally, one end of the pin header is exposed in the slot 702, and the other end extends into the first connector 701 and connects to the electronic control unit 500. The second power terminal 708 is a female connector corresponding to the first power terminal 704, such as... Figure 4 As shown, the busbar extends from the end face of the plug 706 (the side facing the bottom of the slot 702) along the depth direction of the plug 706 (the protruding direction corresponding to the depth of the slot 702), and the pins of the busbar extend towards the strip mounting body 100; when the plug 706 is inserted into the slot 702, the pins are inserted into the busbar to complete the power connection.
[0150] In some implementations, such as Figure 11 and 12 As shown, the inner cross-section of the slot 702 is elongated, and a limiting protrusion 703 extending along the depth direction of the slot 702 is provided on one side of the slot 702. The pins are arranged along the length direction of the slot 702; as shown Figure 4 As shown, the plug 706 is elongated and fitted to the shape of the slot 702. One side of the plug 706 has a limiting groove 707 that matches the limiting protrusion 703. A busbar is provided on the plug 706 corresponding to the busbar. By providing the limiting protrusion 703 on the slot 702 and the limiting groove 707 on the plug 706, a foolproof design is formed between the slot 702 and the plug 706. The plug 706 can only be inserted into the slot 702 when the limiting protrusion 703 matches the limiting groove 707 (the limiting protrusion 703 is embedded in the limiting groove 707). This prevents the plug 706 from being inserted into the slot 702 in an incorrect posture, which could lead to incorrect wiring sequence between the first power terminal 704 and the second power terminal 708.
[0151] In the embodiments of this disclosure, such as Figure 4 , Figure 11 , Figure 12 , Figure 16 , Figure 17 and Figure 18 As shown, the electronic control unit 500 is equipped with a connection confirmation switch 712, which is used to detect whether the first connector 701 is connected to the second connector 705.
[0152] By connecting the confirmation switch to the control module 501, the control module 501 can determine whether the first connector 701 is connected to the second connector 705 based on the confirmation switch detection signal. Specifically, the plug 706 must be inserted into the slot 702 and reliably positioned. Only when the first connector 701 is confirmed to be effectively connected to the second connector 705 can the control module 501 control the first output circuit 503 to output EMS current; otherwise, the first output circuit 503 is not allowed to output EMS current.
[0153] Furthermore, the connection confirmation switch 712 includes a Hall effect switch 713 and a magnet 714. The Hall effect switch 713 is disposed on the first connector 701, and the magnet 714 is disposed on the second connector 705. When the first connector 701 is connected to the second connector 705, the magnet 714 approaches the sensing portion of the Hall effect switch 713. When the first connector 701 is effectively connected to the second connector 705, the Hall effect switch 713 is affected by the magnet 714 and outputs an electrical signal to the control module 501, which can then be identified and judged by the control module 501.
[0154] In the embodiments of this disclosure, such as Figure 16 As shown, the electronic control unit 500 includes an electrical output module 502 and a control module 501. The electrical output module 502 is provided with a second output circuit 504 that is electrically connected to conductive sheet 603 and conductive sheet 604 respectively. The control module 501 is connected to the second output circuit 504 and controls the current output of the second output circuit 504, such as controlling the on / off state and power. The Hall effect switch 713 is connected to the control module 501 to provide feedback of judgment information to the control module 501. The connection method is as follows: Figure 17 and Figure 18 .
[0155] Generally, such as Figure 22 As shown, the second output circuit 504 is provided with a second positive terminal S2+ and a second negative terminal S2-. The second positive terminal S2+ is connected to conductive sheet 603, and the second negative terminal S2- is connected to conductive sheet 604. When conductive sheet 603 and conductive sheet 604 are in close contact with the skin, they conduct electricity on the skin and output MES current. The control module 501 is connected to the second output circuit 504, and the connection method is as follows: Figure 22 and Figure 17 And control the EMS current output of the second output circuit 504.
[0156] In some embodiments, a water-permeable insulating layer can also be provided on the first conductive sheet 603 and the second conductive sheet 604. When used in water, a water gap is formed between the first conductive sheet 603 and the second conductive sheet 604 and the skin of the buttocks, and EMS current is released through the massage area through the water gap.
[0157] In some implementations, such as Figure 1 and Figure 3As shown, a second control module 509 can be further provided. The second control module 509 is provided with a second control button (such as a power button, upshift button, downshift button, etc.). The second control module 509 is connected to the control module 501. Thus, by touching the second control button, the second control module 509 can send corresponding request commands to the control module 501, such as upshift command or downshift command. The control module 501 controls and adjusts the MES output power of the second output circuit 504 according to the request command.
[0158] In some implementations, such as Figure 1-3 ,as well as Figure 10 As shown, the support body 601 is provided with a waterproof cover 800, and the waterproof cover 800 is provided with a plug 801. A second elastic layer 802 is provided on the peripheral surface of the plug 801. The plug 801 is used to insert into the slot 702. When the plug 801 is inserted into the slot 702, the plug 801 and the slot 702 are in an interference fit. After the second connector 705 is removed from the first connector 701, the plug 801 can be inserted into the slot 702 to protect the first electrical terminal 704 from external contamination, and to prevent the first electrical terminal 704 from being exposed for a long time, which would cause external oil mist or other substances to adhere to the surface of the first electrical terminal 704 and cause contamination.
[0159] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A ring belt physiotherapy apparatus, characterised in that, include: A strip-shaped mounting body, wherein the strip-shaped mounting body is flexible and can be bent; The first electrode and the second electrode are both disposed on the same side of the strip-shaped mounting body and extend along the length direction of the strip-shaped mounting body. An electronic control unit is connected to the first electrode and the second electrode; An end connection structure is provided on the strip-shaped installation body, and the strip-shaped installation body is locked when wrapped around the human body.
2. The ring belt physiotherapy apparatus according to claim 1, wherein The two proximal ends of the first electrode and the second electrode are spaced apart along the length of the strip-shaped mounting body.
3. The ring belt physiotherapy apparatus according to claim 1, wherein Both the first electrode and the second electrode include a conductive substrate and a plurality of discharge protrusions protruding from the conductive substrate, wherein the plurality of discharge protrusions are arranged at intervals along the length direction of the conductive substrate. The conductive substrate extends along the length of the strip-shaped mounting body.
4. The ring belt physiotherapy apparatus according to claim 3, wherein, The conductive substrate is disposed inside the strip-shaped mounting body, and the strip-shaped mounting body is provided with a clearance groove, in which the discharge protrusion is located.
5. The ring belt physiotherapy apparatus according to claim 3, wherein, The strip-shaped mounting body is provided with a raised structure. The protrusion direction of the raised structure is the same as that of the discharge protrusion. Moreover, relative to the conductive substrate, the distance between the top of the raised structure and the conductive substrate is greater than the distance between the discharge protrusion and the conductive substrate.
6. The ring belt physiotherapy apparatus according to claim 5, wherein, The length direction of the raised structure is consistent with the width direction of the strip-shaped mounting body, and a number of raised structures are provided, with the raised structures arranged at intervals along the length direction of the strip-shaped mounting body; A single discharge bump is disposed between the two raised structures.
7. The ring belt physiotherapy apparatus according to claim 6, wherein, The raised top of the bulge structure has a first concave arc structure, and the opening direction of the first concave arc structure is toward the side away from the conductive substrate.
8. The ring belt physiotherapy apparatus according to claim 6, wherein, The strip-shaped mounting body has a first corrugated feature structure that extends in an array along the length direction. The first corrugated feature structure that extends in an array forms a first waveform segment of the strip-shaped mounting body. In the first waveform segment, the wave peaks whose convex direction is consistent with the discharge convex direction form the ridge structure, and the discharge convex is disposed in the trough.
9. The ring belt physiotherapy apparatus according to claim 8, wherein, The conductive substrate has a second waveform segment corresponding to the first waveform segment, and the second waveform segment has a second ripple feature structure adapted to the first ripple feature structure. The discharge protrusion is disposed in the trough of the second waveform segment.
10. The ring belt physiotherapy apparatus according to claim 8, wherein, The end connection structure includes a collar disposed on the strip-shaped mounting body.
11. The ring belt physiotherapy apparatus according to claim 1, wherein, The electronic control unit includes an electrical output module and a control module; The electrical output module is provided with a first output circuit that connects the first electrode and the second electrode. The control module is connected to the first output circuit and controls the current output of the first output circuit.
12. The ring belt physiotherapy apparatus according to claim 1, wherein, The number of the strip-shaped mounting bodies is multiple; The first electrode and the second electrode are disposed on each of the multiple strip-shaped mounting bodies; The end connection structure is provided on each of the multiple strip-shaped mounting bodies; The electronic control unit is connected to the first electrode and the second electrode on multiple strip-shaped mounting bodies.
13. The ring belt physiotherapy apparatus according to any one of claims 1-12, wherein, The electronic control unit is connected to the strip mounting body via a flexible cable, and the electronic control unit is electrically connected to the first electrode and the second electrode via the flexible cable.
14. A new type of buttock massage physiotherapy instrument, characterized in that, Includes the ring-type physiotherapy device according to any one of claims 1-12; It also includes a support body, one side of which has a concave arc-shaped surface, and conductive sheet one and conductive sheet two are separately disposed on the concave arc-shaped surface; The electronic control unit is also connected to the first conductive sheet and the second conductive sheet.
15. The new type of hip massage physiotherapy instrument according to claim 14, characterized in that, The electronic control unit is mounted on the support body; A flexible cable is provided between the electronic control unit and the strip-shaped mounting body; The electronic control unit is electrically connected to the first electrode and the second electrode via the flexible cable.
16. The new type of hip massage physiotherapy instrument according to claim 15, characterized in that, The flexible cable is provided with a waterproof electrical connection structure at one end near the support body. The waterproof electrical connection structure includes a first connector, a second connector, and a waterproof structure. The first connector is disposed on the support body, and the first connector is provided with a first power terminal, which is connected to the electrical control unit; The second connector is disposed on the flexible cable, and the second connector is provided with a second power terminal. The second power terminal is connected to the first conductive sheet and the second conductive sheet through the flexible cable. The first connector can be detachably connected to the second connector. When the first connector is connected to the second connector, the first power terminal contacts the second power terminal to make the connection between the flexible cable and the electronic control unit conductive. The waterproof structure is used to prevent water from entering from between the first connector and the second connector to the first power terminal and the second power terminal.
17. The new type of hip massage physiotherapy instrument according to claim 16, characterized in that, The electronic control unit is equipped with a connection confirmation switch, which is used to detect whether the first connector is connected to the second connector.
Citation Information
Patent Citations
Hip massage physiotherapy instrument
CN216168767U