Decompression structure and decompression bracelet
By designing a rotatable bracelet structure, combined with rolling and magnetic units, it achieves stress relief and finger exercise for patients with mental illness, solving the problems of bracelets lacking stress relief functions and insufficient fun, and improving the stress relief effect and brain activity of patients.
Patent Information
- Application Number
- CN202422859080.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-21
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2034-11-21
AI Technical Summary
Existing fitness trackers lack stress-relieving functions and are not very fun, failing to effectively motivate mental illness patients to move their fingers, thus affecting brain flexibility and emotional management.
A decompression-relieving bracelet was designed, comprising a first base unit, a second base unit, a rotating unit, and a rolling decompression unit. It generates sound through rotation and rolling, and combined with a magnetic unit and a health monitoring structure, it stimulates the patient's brain and exercises finger function.
The sound generated by rotating and rolling helps mental illness patients relieve stress, exercise finger function, maintain brain flexibility, and effectively shift attention, solving the problems of the bracelet's lack of stress relief function and lack of fun.
Smart Images

Figure CN223831565U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wristband technology, and in particular to a decompression structure and a decompression wristband for use by patients with mental illness. Background Technology
[0002] With the fast pace of modern life, the psychological pressure on people with mental illness is increasing. Stress, anxiety, and mood swings are common problems faced by many patients with mental illness, which can worsen their symptoms and affect their daily lives and recovery process. While existing stress-relief tools and devices can help alleviate stress to some extent, they still fall short of meeting the specific needs of people with mental illness.
[0003] For individuals taking long-term psychotropic medications, children with mental illnesses, and the elderly, there are specific needs during care, such as anxiety relief and emotion management. Existing fitness trackers primarily focus on health monitoring and offer limited support for emotion management. In recent years, with increased awareness of mental health, products targeting stress management, such as stress balls and stress-relieving toys, have emerged on the market. However, because mental illness patients often lack self-protection awareness, they typically do not allow other toys to accompany them during care. Therefore, it is difficult for them to distract themselves, release stress, and alleviate anxiety. Without the motivation of interest, patients rarely actively move their fingers, which is detrimental to stimulating the brain, maintaining its flexibility, and potentially leading to mental decline.
[0004] There are no effective solutions yet for the problems in related technologies, such as the lack of decompression function and the lack of fun in wristbands that cannot drive patients to move their fingers. Utility Model Content
[0005] The purpose of this invention is to address the shortcomings of existing technologies by providing a decompression structure and a decompression bracelet, thereby solving problems such as the lack of decompression function in bracelets and the lack of fun in bracelets that cannot drive patients to move their fingers.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] The first aspect of this utility model is to provide a decompression structure for decompressing a wristband, comprising:
[0008] The first base unit has two ends connected to the two ends of the watch strap structure, respectively.
[0009] The second base unit is movably disposed at the top of the first base unit;
[0010] A rotating unit is disposed between the first base unit and the second base unit, and is used to cause the second base unit to rotate relative to the first base unit;
[0011] A rolling decompression unit is disposed between the first base unit and the second base unit, and is used to generate sound when the second base unit and the first base unit rotate relative to each other.
[0012] In some embodiments, the rotating unit includes:
[0013] A first rotating element is disposed at the top of the first base unit;
[0014] The second rotating element is disposed at the bottom end of the second base unit and is rotatably connected to the first rotating element, for causing the second base unit to rotate relative to the first base unit.
[0015] In some embodiments, the rotating unit further includes:
[0016] A first anti-slip element is disposed on the second rotating element for anti-slip purposes.
[0017] In some embodiments, the rotating unit further includes:
[0018] The second anti-slip element is disposed on the second rotating element and is used for anti-slip.
[0019] In some embodiments, the rolling decompression unit includes:
[0020] At least one first rolling element is disposed at the top of the first base unit;
[0021] At least one second rolling element is disposed at the bottom end of the second base unit and is tactilely connected to the first rolling element, for producing sound in cooperation with the first rolling element when the second base unit and the first base unit rotate relative to each other.
[0022] In some embodiments, the rolling decompression unit further includes:
[0023] At least one third rolling element is disposed at the top of the second base unit and is tactilely connected to the second rolling element.
[0024] In some embodiments, the rotating unit further includes:
[0025] A first anti-slip element, disposed on the second rotating element, is used for anti-slip purposes; and / or
[0026] In some embodiments, the rotating unit further includes:
[0027] The second anti-slip element is disposed on the second rotating element and is used for anti-slip.
[0028] In some embodiments, the decompression structure further includes:
[0029] A rotating decompression unit is movably disposed at the top of the second base unit for the patient to rotate to decompress.
[0030] In some embodiments, the rotational decompression unit includes:
[0031] At least one third rotating element is provided, the third rotating element being disposed through the second base unit;
[0032] A first limiting element is disposed at the end of the third rotating element and communicates with the third rotating element;
[0033] At least one fourth rotating element, the fourth rotating element being rotatably disposed on the third rotating element;
[0034] At least one second limiting element is provided at the bottom end of the fourth rotating element and is limitedly connected to the first limiting element to prevent the fourth rotating element from separating from the second base unit.
[0035] In some embodiments, the rotational decompression unit further includes:
[0036] At least one third limiting element is provided, which is disposed at the top end of the fourth rotating element and is limitedly connected to the second base unit to prevent the fourth rotating element from separating from the second base unit.
[0037] In some embodiments, the rotational decompression unit further includes:
[0038] At least one third anti-slip element is disposed at the end of the third limiting element for anti-slip purposes.
[0039] In some embodiments, the decompression structure further includes:
[0040] A magnetic attraction unit is disposed between the first base unit and the second base unit.
[0041] In some embodiments, the magnetic attraction unit includes:
[0042] At least one first magnetic attraction element is disposed at the top of the first base unit;
[0043] At least one second magnetic element is disposed at the bottom end of the second base unit and magnetically connected to the first magnetic element to fix the relative position of the first base unit and the second base unit.
[0044] In some embodiments, the decompression structure further includes:
[0045] A placement unit is disposed on the side of the second base unit for placing fingers when the second base unit is rotated.
[0046] The second aspect of this utility model is to provide a stress-relieving bracelet for use by mental patients, comprising:
[0047] The decompression structure as described in the first aspect;
[0048] The watch strap structure has two ends connected to the two ends of the first base unit of the decompression structure, respectively.
[0049] In some embodiments, the decompression structure further includes:
[0050] A first mounting unit is disposed at the first end of the first base unit and connected to the first end of the watch strap structure;
[0051] The second mounting unit is disposed at the second end of the first base unit and connected to the second end of the watch strap structure.
[0052] In some embodiments, the watchband structure includes:
[0053] Watchband unit, which is removably worn on the patient's wrist;
[0054] The third mounting unit is disposed at the first end of the watch strap unit and connected to the first end of the first base unit of the decompression structure;
[0055] A fourth mounting unit is disposed at the second end of the watch strap unit and connected to the second end of the first base unit of the decompression structure.
[0056] In some embodiments, the first mounting unit includes:
[0057] A first main element, a first end of which is connected to a second end of the first base unit, and the second end of the first main element is provided with the watch strap structure;
[0058] A first mounting element is disposed on the first main body element, and the watch strap structure is removably disposed inside the first mounting element;
[0059] Two first sliding elements are respectively disposed on the first side and the second side of the first main body element, and are respectively connected to the first mounting element and slidably connected to the watch strap structure.
[0060] In some embodiments, the second mounting unit includes:
[0061] The second main component has a second end connected to the first end of the first base unit, and the first end of the second main component is provided with the watch strap structure.
[0062] A second mounting element is disposed on the second main body element, and the watch strap structure is removably disposed inside the second mounting element;
[0063] Two second sliding elements are respectively disposed on the first side and the second side of the second main body element, and are respectively connected to the second mounting element and slidably connected to the watch strap structure.
[0064] In some embodiments, the third mounting unit includes:
[0065] A third mounting element, the first end of which is connected to the second end of the watch strap unit, and the third mounting element is connected to the first end of the decompression structure;
[0066] Two first groove elements are respectively disposed on the first side and the second side of the third mounting element;
[0067] Two third sliding elements are slidably disposed on the corresponding first groove elements and slidably connected to the decompression structure;
[0068] A plurality of first elastic elements are respectively disposed inside the corresponding first groove element and respectively connected to the corresponding first groove element and the corresponding third sliding element;
[0069] In some embodiments, the fourth mounting unit includes:
[0070] The fourth mounting element has its second end connected to the first end of the watch strap unit and its second end connected to the decompression structure.
[0071] Two second groove elements are respectively disposed on the first side and the second side of the fourth mounting element;
[0072] Two fourth sliding elements are slidably disposed on the corresponding second groove elements and slidably connected to the decompression structure;
[0073] A plurality of second elastic elements are respectively disposed inside the corresponding second groove element and respectively connected to the corresponding second groove element and the corresponding fourth sliding element.
[0074] In some embodiments, the decompression bracelet further includes:
[0075] A health monitoring structure, wherein the health monitoring structure is disposed inside the first base unit of the decompression structure;
[0076] A positioning structure is disposed inside the first base unit of the decompression structure;
[0077] A central control structure is disposed inside the first base unit of the decompression structure and is connected to the health monitoring structure and the positioning structure, respectively. This utility model adopts the above technical solution and, compared with the prior art, has the following technical effects:
[0078] This utility model discloses a decompression structure and a decompression bracelet. A first base unit is connected to a watchband structure. A rotating unit is used to configure the first and second base units as a structure that can rotate relative to each other. Rolling decompression units are respectively disposed on the first and second base units. When the first and second base units rotate relative to each other, the rolling decompression units rotate relative to each other and generate sound. Both the rotation and the generated sound can help patients with mental illnesses relieve stress. Furthermore, the rotation process can exercise the patient's finger function, help stimulate the patient's brain, maintain brain flexibility, and effectively divert the patient's attention. This solves the problems of bracelets lacking decompression function and lacking fun to drive the patient's finger movements. Attached Figure Description
[0079] Figure 1 This is a schematic diagram (a) of the decompression structure according to an embodiment of the present utility model;
[0080] Figure 2 This is a schematic diagram of the rotating unit according to an embodiment of the present utility model;
[0081] Figure 3 This is a schematic diagram of a rolling decompression unit according to an embodiment of the present utility model;
[0082] Figure 4 This is a schematic diagram (II) of the decompression structure according to an embodiment of the present utility model;
[0083] Figure 5 This is a schematic diagram of the rotational decompression unit according to an embodiment of the present utility model;
[0084] Figure 6 This is a schematic diagram (IV) of the decompression structure according to an embodiment of the present utility model;
[0085] Figure 7 This is a schematic diagram of the magnetic attraction unit according to an embodiment of the present utility model;
[0086] Figure 8 This is a schematic diagram (III) of the decompression structure according to an embodiment of the present utility model;
[0087] Figure 9 This is a schematic diagram (a) of a decompression bracelet according to an embodiment of the present utility model;
[0088] Figure 10 This is a schematic diagram (V) of the decompression structure according to an embodiment of the present utility model;
[0089] Figure 11 This is a schematic diagram of the first mounting unit according to an embodiment of the present utility model;
[0090] Figure 12 This is a schematic diagram of the first mounting unit according to an embodiment of the present utility model;
[0091] Figure 13 This is a schematic diagram of the watch strap structure according to an embodiment of the present utility model;
[0092] Figure 14 This is a schematic diagram of the third mounting unit according to an embodiment of the present utility model;
[0093] Figure 15 This is a schematic diagram of the fourth mounting unit according to an embodiment of the present utility model;
[0094] Figure 16 This is a schematic diagram (II) of the decompression bracelet according to an embodiment of the present utility model.
[0095] The reference numerals in the attached figures are:
[0096] 100. Decompression structure;
[0097] 110. First base unit;
[0098] 120. Second base unit;
[0099] 130. Rotating unit; 131. First rotating element; 132. Second rotating element; 133. First anti-slip element; 134. Second anti-slip element;
[0100] 140. Rolling decompression unit; 141. First rolling element; 142. Second rolling element; 143. Third rolling element;
[0101] 150. Rotary decompression unit; 151. Third rotating element; 152. First limiting element; 153. Fourth rotating element; 154. Second limiting element; 155. Third limiting element; 156. Third anti-slip element;
[0102] 160. Magnetic attraction unit; 161. First magnetic attraction element; 162. Second magnetic attraction element;
[0103] 170. Placement unit;
[0104] 180. First mounting unit; 181. First main body component; 182. First mounting element; 183. First sliding element;
[0105] 190. Second mounting unit; 191. Second main body component; 192. Second mounting element; 193. Second sliding element;
[0106] 200. Watch strap structure;
[0107] 210. Watchband unit;
[0108] 220. Third mounting unit; 221. Third mounting element; 222. First groove element; 223. Third sliding element; 224. First elastic element;
[0109] 230. Fourth mounting unit; 231. Fourth mounting element; 232. Second groove element; 233. Fourth sliding element; 234. Second elastic element;
[0110] 300. Health monitoring structure;
[0111] 400. Positioning structure;
[0112] 500. Central control structure. Detailed Implementation
[0113] To make the objectives, technical solutions, and advantages of this application clearer, the application is described and illustrated below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application. All other embodiments obtained by those skilled in the art based on the embodiments provided in this application without inventive effort are within the scope of protection of this application.
[0114] Obviously, the accompanying drawings described below are merely some examples or embodiments of this application. Those skilled in the art can apply this application to other similar scenarios based on these drawings without any inventive effort. Furthermore, it is understood that although the efforts made in this development process may be complex and lengthy, for those skilled in the art related to the content disclosed in this application, any changes to design, manufacturing, or production based on the technical content disclosed in this application are merely conventional technical means and should not be construed as insufficient disclosure of the content of this application.
[0115] In this application, the reference to "embodiment" means that a specific feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment that is mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described in this application may be combined with other embodiments without conflict.
[0116] Unless otherwise defined, the technical or scientific terms used in this application shall have the ordinary meaning understood by one of ordinary skill in the art to which this application pertains. The terms “a,” “an,” “an,” “the,” and similar words used in this application do not indicate quantity limitation and may indicate singular or plural. The terms “comprising,” “including,” “having,” and any variations thereof used in this application are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or device that includes a series of steps or units (elements) is not limited to the listed steps or units, but may also include steps or units not listed, or may include other steps or units inherent to these processes, methods, products, or devices. The terms “connected,” “linked,” “coupled,” and similar words used in this application are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect. “Multiple” used in this application refers to two or more. “And / or” describes the relationship between related objects, indicating that three relationships may exist; for example, “A and / or B” can represent: A alone, A and B simultaneously, and B alone. The character " / " generally indicates that the preceding and following objects are in an "or" relationship. The terms "first," "second," and "third" used in this application are merely to distinguish similar objects and do not represent a specific ordering of the objects.
[0117] Example 1
[0118] This embodiment relates to the decompression structure of this utility model.
[0119] An illustrative embodiment of this utility model, such as Figure 1 As shown, a decompression structure 100 for decompressing a wristband includes a first base unit 110, a second base unit 120, a rotating unit 130, and a rolling decompression unit 140. The two ends of the first base unit 110 are respectively connected to the two ends of a watchband structure 200; the second base unit 120 is movably disposed at the top of the first base unit 110; the rotating unit 130 is disposed between the first base unit 110 and the second base unit 120 to allow relative rotation between the second base unit 120 and the first base unit 110; the rolling decompression unit 140 is disposed between the first base unit 110 and the second base unit 120 to generate sound when the second base unit 120 rotates relative to the first base unit 110.
[0120] In some embodiments, the first base unit 110 is made of metal, including but not limited to aluminum alloy.
[0121] In some of these embodiments, the first base unit 110 is a first mounting base.
[0122] In some embodiments, the second base unit 120 is made of metal, including but not limited to aluminum alloy.
[0123] The dimensions of the second base unit 120 are matched with those of the first base unit 110. Generally, the radial dimension (outer diameter) of the second base unit 120 is equal to the radial dimension (outer diameter) of the first base unit 110.
[0124] In some of these embodiments, the second base unit 120 is a second mounting base.
[0125] like Figure 2 As shown, the rotating unit 130 includes a first rotating element 131 and a second rotating element 132. The first rotating element 131 is disposed at the top end of the first base unit 110; the second rotating element 132 is disposed at the bottom end of the second base unit 120 and is rotatably connected to the first rotating element 131, so as to cause the second base unit 120 to rotate relative to the first base unit 110.
[0126] Specifically, the first rotating element 131 is disposed at the top of the first base unit 110, and the second rotating element 132 is disposed at the bottom of the second base unit 120.
[0127] The first rotating element 131 is connected to the first base unit 110 by a fixed connection. The fixed connection method includes, but is not limited to, integral molding and welding.
[0128] The dimensions of the first rotating element 131 are matched with those of the first base unit 110. Generally, the radial dimension (e.g., outer diameter) of the first rotating element 131 is smaller than the radial dimension (e.g., outer diameter) of the first base unit 110.
[0129] In some of these embodiments, the first rotating element 131 is a first rotating connector.
[0130] The second rotating element 132 is fixedly connected to the second base unit 120. The fixed connection method includes, but is not limited to, integral molding.
[0131] The dimensions of the second rotating element 132 are matched with those of the first rotating element 131. Generally, the radial dimension (e.g., outer diameter) of the second rotating element 132 is equal to the radial dimension (e.g., outer diameter) of the first rotating element 131.
[0132] The dimensions of the second rotating element 132 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the second rotating element 132 is smaller than the radial dimension (e.g., outer diameter) of the second base unit 120, and the height of the second rotating element 132 is greater than the height of the second base unit 120.
[0133] In some of these embodiments, the second rotating element 132 is a second rotating connector.
[0134] Furthermore, the rotating unit 130 also includes a first anti-slip element 133. The first anti-slip element 133 is disposed on the second rotating element 132 and is used for anti-slip.
[0135] The dimensions of the first anti-slip element 133 are matched with the dimensions of the second rotating element 132. Generally, the radial dimension (e.g., outer diameter) of the first anti-slip element 133 is smaller than the radial dimension (e.g., outer diameter) of the second rotating element 132, and the depth of the first anti-slip element 133 is smaller than the height of the second rotating element 132.
[0136] In some of these embodiments, the first anti-slip element 133 is provided as a spherical groove.
[0137] In some of these embodiments, the first anti-slip element 133 is a first anti-slip groove.
[0138] Furthermore, the rotating unit 130 also includes a second anti-slip element 134. The second anti-slip element 134 is disposed on the second rotating element 132 and is used for anti-slip.
[0139] Specifically, the second anti-slip element 134 is disposed on the first anti-slip element 133.
[0140] The dimensions of the second anti-slip element 134 are matched with the dimensions of the first anti-slip element 133. Generally, the radial dimension (e.g., outer diameter) of the second anti-slip element 134 is not greater than the radial dimension (e.g., inner diameter) of the first anti-slip element 133 to which it is located, and the height of the second anti-slip element 134 is less than the height of the first anti-slip element 133.
[0141] In some embodiments, there are multiple second anti-slip elements 134. The multiple second anti-slip elements 134 are spaced apart along the height direction of the first anti-slip element 133.
[0142] In some embodiments, the second anti-slip element 134 is the first anti-slip strip or the first anti-slip protrusion.
[0143] like Figure 3 As shown, the rolling decompression unit 140 includes at least one first rolling element 141 and at least one second rolling element 142. The first rolling element 141 is disposed at the top end of the first base unit 110; the second rolling element 142 is disposed at the bottom end of the second base unit 120 and is rotatably connected to the first rolling element 141, and is used to cooperate with the first rolling element 141 to generate sound when the second base unit 120 rotates relative to the first base unit 110.
[0144] Specifically, the first rolling element 141 is disposed at the top of the first base unit 110; the second rolling element 142 is disposed at the bottom of the second base unit 120.
[0145] The dimensions of the first rolling element 141 are matched with the dimensions of the first base unit 110. Generally, the radial dimension (e.g., outer diameter) of the first rolling element 141 is smaller than the radial dimension (e.g., inner diameter) of the first rolling element 141.
[0146] In some embodiments, there are multiple first rolling elements 141. The multiple first rolling elements 141 are arranged in a circle with the center of the first base unit 110 as the center.
[0147] In some of these embodiments, a plurality of first rolling elements 141 are interconnected to form a ring.
[0148] In some of these embodiments, the first rolling element 141 is a first spherical rolling groove.
[0149] The dimensions of the second rolling element 142 are matched with the dimensions of the third rolling element 143. Generally, the radial dimension (e.g., outer diameter) of the second rolling element 142 is smaller than the radial dimension (e.g., inner diameter) of the third rolling element 143.
[0150] The dimensions of the second rolling element 142 are matched with those of the first rolling element 141. Generally, the radial dimension (e.g., outer diameter) of the second rolling element 142 is not greater than the radial dimension (e.g., inner diameter) of the first rolling element 141.
[0151] The number of second rolling elements 142 matches the number of first rolling elements 141. Generally, the number of second rolling elements 142 is not greater than the number of first rolling elements 141.
[0152] In some embodiments, there are multiple second rolling elements 142. The multiple second rolling elements 142 are arranged in a circle with the center of the second base unit 120 as the center.
[0153] In some embodiments, a plurality of second rolling elements 142 are interconnected to form a ring.
[0154] In some of these embodiments, the second rolling element 142 is a ball bearing.
[0155] Furthermore, the rolling decompression unit 140 also includes at least one third rolling element 143. The third rolling element 143 is disposed at the top of the second base unit 120 and is rotatably connected to the second rolling element 142.
[0156] The dimensions of the third rolling element 143 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the third rolling element 143 is smaller than the radial dimension (e.g., outer diameter) of the second base unit 120, and the height of the third rolling element 143 is smaller than the height of the second base unit 120.
[0157] The dimensions of the third rolling element 143 are matched with those of the second rolling element 142. Generally, the radial dimension (e.g., outer diameter) of the third rolling element 143 is greater than the radial dimension (e.g., outer diameter) of the second rolling element 142, and the height of the third rolling element 143 is not less than the outer diameter of the second rolling element 142.
[0158] The number of third rolling elements 143 matches the number of second rolling elements 142. Generally, the number of third rolling elements 143 is equal to the number of second rolling elements 142.
[0159] In some of these embodiments, the third rolling element 143 is a second spherical rolling groove.
[0160] How to use this utility model:
[0161] A finger is placed on the second rotating element 132 and rotated so that the second rotating element 132 rotates relative to the first rotating element 131, thereby causing the second base unit 120 to rotate relative to the first base unit 110; or a finger is placed on the placement unit 170 and the second base unit 120 is rotated directly, causing the second base unit 120 to rotate relative to the first rotating element 131, and the second rolling element 142 to roll relative to the first rolling element 141 and collide with the first rolling element 141 to produce a sound. At the same time, the second rolling element 142 rolls within the third rolling element 143 and smoothly passes through several first rolling elements 141.
[0162] The technical effects of this utility model are as follows:
[0163] By connecting the first base unit to the watchband structure, and using a rotating unit to set the first base unit and the second base unit as a structure that can rotate relative to each other, the rolling decompression unit is respectively set in the first base unit and the second base unit. When the first base unit and the second base unit rotate relative to each other, the rolling decompression unit will roll relative to each other and generate sound. Both the rotation and the generated sound can help patients with mental illness relieve stress. In addition, the rotation process can exercise the patient's finger function, help stimulate the patient's brain, maintain brain flexibility, and effectively divert the patient's attention. This solves the problems that the bracelet does not have a decompression function and is not interesting enough to drive the patient's finger movement.
[0164] Example 2
[0165] This embodiment is a modified embodiment of embodiment 1.
[0166] like Figure 4 As shown, the decompression structure 100 also includes a rotation decompression unit 150. The rotation decompression unit 150 is movably disposed at the top of the second base unit 120 and is used for patient rotation to decompress.
[0167] like Figure 5 As shown, the rotation decompression unit 150 further includes at least one third rotation element 151, a first limiting element 152, at least one fourth rotation element 153, and at least one second limiting element 154. The third rotation element 151 passes through the second base unit 120; the first limiting element 152 is disposed at the end of the third rotation element 151 and communicates with it; the fourth rotation element 153 is rotatably disposed on the third rotation element 151; and the second limiting element 154 is disposed at the bottom end of the fourth rotation element 153 and is limitedly connected to the first limiting element 152 to prevent the fourth rotation element 153 from separating from the second base unit 120.
[0168] Specifically, the third rotating element 151 is disposed in the second base unit 120; the first limiting element 152 is disposed in the second base unit 120 and is connected to the third rotating element 151.
[0169] The dimensions of the third rotating element 151 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the third rotating element 151 is smaller than the dimension (e.g., outer diameter) of the second base unit 120, and the height of the third rotating element 151 is smaller than the height of the second base unit 120.
[0170] In some embodiments, there are several third rotating elements 151. Several third rotating elements 151 are arranged in a circle with the center of the second base unit 120 as the center.
[0171] In some of these embodiments, the third rotating element 151 is a rotating groove.
[0172] The dimensions of the first limiting element 152 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the first limiting element 152 is smaller than the radial dimension (e.g., outer diameter) of the second base unit 120, and the height of the first limiting element 152 is smaller than the height of the second base unit 120.
[0173] The dimensions of the first limiting element 152 are matched with the dimensions of the third rotating element 151. Generally, the radial dimension (e.g., outer diameter) of the first limiting element 152 is larger than the radial dimension (e.g., outer diameter) of the third rotating element 151.
[0174] The number of first limiting elements 152 matches the number of third rotating elements 151. Generally, the number of first limiting elements 152 is equal to the number of third rotating elements 151. That is, each third rotating element 151 is provided with one first limiting element 152.
[0175] In some of these embodiments, the first limiting element 152 is connected to the third rolling element 143.
[0176] In some of these embodiments, the first limiting element 152 is a limiting groove.
[0177] The dimensions of the fourth rotating element 153 are matched with those of the third rotating element 151. Generally, the radial dimension (e.g., outer diameter) of the fourth rotating element 153 is smaller than that of the third rotating element 151, and the height of the fourth rotating element 153 is greater than that of the third rotating element 151.
[0178] The number of fourth rotating elements 153 matches the number of third rotating elements 151. Generally, the number of fourth rotating elements 153 is equal to the number of third rotating elements 151. That is, one fourth rotating element 153 is provided for each third rotating element 151.
[0179] In some of these embodiments, the fourth rotating element 153 is a rotating shaft.
[0180] The dimensions of the second limiting element 154 are matched with the dimensions of the third rotating element 151. Generally, the radial dimension (e.g., outer diameter) of the second limiting element 154 is larger than the radial dimension (e.g., outer diameter) of the third rotating element 151.
[0181] The dimensions of the second limiting element 154 are matched with the dimensions of the first limiting element 152. Generally, the radial dimension (e.g., outer diameter) of the second limiting element 154 is smaller than the radial dimension (e.g., inner diameter) of the first limiting element 152, and the height of the second limiting element 154 is not greater than the height of the first limiting element 152.
[0182] The number of second limiting elements 154 matches the number of fourth rotating elements 153. Generally, the number of second limiting elements 154 is equal to the number of fourth rotating elements 153. That is, a second limiting element 154 is provided at the end of each fourth rotating element 153.
[0183] In some of these embodiments, the second limiting element 154 is the first limiting block.
[0184] Furthermore, the rotation decompression unit 150 also includes at least one third limiting element 155. The third limiting element 155 is disposed at the top end of the fourth rotating element 153 and is limitedly connected to the second base unit 120 to prevent the fourth rotating element 153 from separating from the second base unit 120.
[0185] Specifically, the third limiting element 155 is connected to the top end of the third rotating element 151 to prevent the fourth rotating element 153 from separating from the second base unit 120.
[0186] In some of these embodiments, the third limiting element 155 is also used to assist the patient in rotating the fourth rotating element 153.
[0187] The dimensions of the third limiting element 155 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the third limiting element 155 is smaller than the radial dimension (e.g., outer diameter) of the second base unit 120.
[0188] The dimensions of the third limiting element 155 are matched with the dimensions of the third rotating element 151. Generally, the radial dimension (e.g., outer diameter) of the third limiting element 155 is larger than the radial dimension (e.g., outer diameter) of the third rotating element 151.
[0189] The number of third limiting elements 155 matches the number of fourth rotating elements 153. Generally, the number of third limiting elements 155 is equal to the number of fourth rotating elements 153. That is, a third limiting element 155 is provided at the top of each fourth rotating element 153.
[0190] In some of these embodiments, the third limiting element 155 is a second limiting block.
[0191] Furthermore, the rotary decompression unit 150 also includes at least one third anti-slip element 156. The third anti-slip element 156 is disposed at the end of the third limiting element 155 and is used for anti-slip.
[0192] The dimensions of the third anti-slip element 156 are matched with the dimensions of the third limiting element 155. Generally, the radial dimension (e.g., outer diameter) of the third anti-slip element 156 is smaller than the radial dimension (e.g., outer diameter) of the third limiting element 155, and the height of the third anti-slip element 156 is smaller than the height of the third limiting element 155.
[0193] The number of third anti-slip elements 156 matches the number of third limiting elements 155. Generally, the number of third anti-slip elements 156 is an integer multiple of the number of third limiting elements 155. That is, at least one third limiting element 155 is provided at the top of each third anti-slip element 156.
[0194] In some of these embodiments, the third anti-slip element 156 is a second anti-slip groove, a second anti-slip strip, or a second anti-slip protrusion.
[0195] The usage method of this embodiment is as follows:
[0196] The user places their fingertip on the third limiting element 155 and rotates the third limiting element 155. The fourth rotating element 153 rotates relative to the third rotating element 151. The second limiting element 154 rotates relative to the first limiting element 152, and the first limiting element 152 prevents the second limiting element 154 from sliding out of the second base unit 120. Alternatively, the user can press the third limiting element 155, thereby causing the fourth rotating element 153 and the third rotating element 151 to move downward, so that the second limiting element 154 abuts against the second rolling element 142. Depending on the force applied, the second rolling element 142 protrudes from the third rolling element 143 by a different size, producing a different sound than the first rolling element 141.
[0197] The technical effects of this embodiment are as follows:
[0198] By setting up a rotating decompression unit, not only can it help patients rotate to relieve stress, but it can also exercise the dexterity of their fingers. It can also change the timbre of the sound produced by the rotating decompression unit, helping patients relieve stress while increasing fun. This further solves the problems that the bracelet does not have a decompression function and is not fun enough to drive patients to move their fingers.
[0199] Example 3
[0200] This embodiment is a modified embodiment of Embodiments 1 and 2.
[0201] like Figure 6 As shown, the decompression structure 100 also includes a magnetic suction unit 160. The magnetic suction unit 160 is disposed between the first base unit 110 and the second base unit 120.
[0202] like Figure 7 As shown, the magnetic attraction unit 160 includes at least one first magnetic attraction element 161 and at least one second magnetic attraction element 162. The first magnetic attraction element 161 is disposed at the top of the first base unit 110; the second magnetic attraction element 162 is disposed at the bottom of the second base unit 120 and is magnetically connected to the first magnetic attraction element 161 to fix the relative position of the first base unit 110 and the second base unit 120.
[0203] Specifically, the first magnetic element 161 is disposed at the top of the first base unit 110; the second magnetic element 162 is disposed at the bottom of the second base unit 120.
[0204] The first magnetic element 161 is fixedly connected to the first base unit 110. The fixed connection method includes, but is not limited to, embedding.
[0205] The dimensions of the first magnetic element 161 are matched with the dimensions of the first base unit 110. Generally, the radial dimension (e.g., outer diameter) of the first magnetic element 161 is smaller than the dimensions (e.g., outer diameter) of the first base unit 110.
[0206] In some embodiments, there are several first magnetic elements 161. Several first magnetic elements 161 are arranged in a circle with the center of the first base unit 110 as the center.
[0207] In some of these embodiments, the first magnetic element 161 is a first magnet.
[0208] The second magnetic element 162 is fixedly connected to the second base unit 120. The fixed connection method includes, but is not limited to, embedding.
[0209] The dimensions of the second magnetic element 162 are matched with the dimensions of the second base unit 120. Generally, the radial dimension (e.g., outer diameter) of the second magnetic element 162 is smaller than the dimension (e.g., outer diameter) of the second base unit 120.
[0210] The dimensions of the second magnetic element 162 are matched with those of the first magnetic element 161. Generally, the radial dimension (e.g., outer diameter) of the second magnetic element 162 is equal to the dimension (e.g., outer diameter) of the first magnetic element 161.
[0211] The number of second magnetic elements 162 matches the number of first magnetic elements 161. Generally, the number of second magnetic elements 162 is equal to the number of first magnetic elements 161.
[0212] In some embodiments, there are multiple second magnetic elements 162. The multiple second magnetic elements 162 are arranged in a circle with the center of the second base unit 120 as the center.
[0213] In some of these embodiments, the second magnetic element 162 is a second magnet.
[0214] The usage method of this embodiment is as follows:
[0215] When it is necessary for the second base unit 120 and the first base unit 110 not to rotate, that is, when the patient does not need to decompress, the first magnetic element 161 and the second magnetic element 162 are magnetically connected to prevent the second base unit 120 and the first base unit 110 from rotating relative to each other; when rolling decompression is required, the second magnetic element 162 separates from the first magnetic element 161 and rotates together with the second base unit 120.
[0216] The technical effects of this embodiment are as follows:
[0217] The magnetic unit can easily fix the first base unit and the second base unit relative to each other without affecting their relative rotation, thus improving the flexibility of operating the rolling decompression unit.
[0218] Example 4
[0219] This embodiment is a modified embodiment of Embodiments 1 to 3.
[0220] like Figure 8 As shown, the decompression structure 100 also includes at least one placement unit 170. The placement unit 170 is disposed on the side of the second base unit 120 and is used to place a finger when the second base unit 120 is rotated.
[0221] The dimensions of placement unit 170 are matched with the dimensions of second base unit 120. Generally, the radial dimension (e.g., outer diameter) of placement unit 170 is smaller than the radial dimension (e.g., outer diameter) of second base unit 120, and the height of placement unit 170 is smaller than the height of second base unit 120.
[0222] In some embodiments, there are multiple placement units 170. These multiple placement units 170 are distributed on the side of the top of the second base unit.
[0223] In some of these embodiments, the placement unit 170 is a placement slot.
[0224] Example 5
[0225] This embodiment relates to a decompression wristband of the present invention.
[0226] like Figure 9 As shown, a decompression bracelet for use by mental patients includes a decompression structure 100 and a strap structure 200 as described in any of Examples 1-3. The two ends of the strap structure 200 are respectively connected to the two ends of the first base unit 110 of the decompression structure 100.
[0227] Specifically, the two ends of the watch strap structure 200 are connected to the two sides of the first base unit 110, respectively.
[0228] like Figure 10 As shown, the decompression structure 100 also includes a first mounting unit 180 and a second mounting unit 190. The first mounting unit 180 is disposed at the first end of the first base unit 110 and connected to the first end of the watch strap structure 200; the second mounting unit 190 is disposed at the second end of the first base unit 110 and connected to the second end of the watch strap structure 200.
[0229] like Figure 11 As shown, the first mounting unit 180 includes a first main body element 181, a first mounting element 182, and two first sliding elements 183. The first end of the first main body element 181 is connected to the second end of the first base unit 110, and a watch strap structure 200 is provided at the second end of the first main body element 181. The first mounting element 182 is disposed on the first main body element 181, and the watch strap structure 200 is removably disposed inside the first mounting element 182. The two first sliding elements 183 are respectively disposed on the first side and the second side of the first main body element 181, and are respectively connected to the first mounting element 182 and slidably connected to the watch strap structure 200.
[0230] Specifically, the first end of the first main body element 181 is connected to the second end of the first base unit 110.
[0231] The first main component 181 and the first base unit 110 are connected by a fixed connection. The fixed connection method includes, but is not limited to, integral molding.
[0232] The dimensions of the first main body element 181 are matched with the dimensions of the first base unit 110. Generally, the width of the connecting end of the first main body element 181 is equal to the width of the cross section of the first base unit 110 in which it is located, and the height of the connecting end of the first main body element 181 is equal to the height of the first base unit 110.
[0233] In some of these embodiments, the first main element 181 is a first connector.
[0234] The dimensions of the first mounting element 182 are matched with the dimensions of the first main element 181. Generally, the radial dimension (e.g., length, width) of the first mounting element 182 is smaller than the radial dimension (e.g., length, width) of the first main element 181, and the depth of the first mounting element 182 is smaller than the length of the first main element 181.
[0235] In some of these embodiments, the first mounting element 182 is a first mounting hole.
[0236] The dimensions of the first sliding element 183 are matched with the dimensions of the first main element 181. Generally, the height of the first sliding element 183 is less than half the height of the first main element 181.
[0237] The dimensions of the first sliding element 183 are matched with the dimensions of the first mounting element 182. Generally, the radial dimensions (such as outer diameter, length, and width) of the first sliding element 183 are smaller than the radial dimensions (such as length and width) of the first mounting element 182.
[0238] In some of these embodiments, the first sliding element 183 is a first sliding groove.
[0239] like Figure 12 As shown, the second mounting unit 190 includes a second main body element 191, a second mounting element 192, and two second sliding elements 193. The second end of the second main body element 191 is connected to the first end of the first base unit 110, and a watch strap structure 200 is provided at the first end of the second main body element 191. The second mounting element 192 is disposed on the second main body element 191, and the watch strap structure 200 is removably disposed inside the second mounting element 192. The two second sliding elements 193 are respectively disposed on the first and second sides of the second main body element 191, and are respectively connected to the second mounting element 192 and slidably connected to the watch strap structure 200.
[0240] Specifically, the first end of the second main body element 191 is connected to the second end of the first base unit 110.
[0241] The second main component 191 is connected to the first base unit 110 by a fixed connection. The fixed connection method includes, but is not limited to, integral molding.
[0242] The dimensions of the second main body element 191 are matched with the dimensions of the first base unit 110. Generally, the width of the connecting end of the second main body element 191 is equal to the width of the cross section of the first base unit 110 in which it is located, and the height of the connecting end of the second main body element 191 is equal to the height of the first base unit 110.
[0243] In some of these embodiments, the second main element 191 is a second connector.
[0244] The dimensions of the second mounting element 192 are matched with the dimensions of the second main element 191. Generally, the radial dimension (e.g., length, width) of the second mounting element 192 is smaller than the radial dimension (e.g., length, width) of the second main element 191, and the depth of the second mounting element 192 is smaller than the length of the second main element 191.
[0245] In some of these embodiments, the second mounting element 192 is a second mounting hole.
[0246] The dimensions of the second sliding element 193 are matched with the dimensions of the second main element 191. Generally, the height of the second sliding element 193 is less than half the height of the second main element 191.
[0247] The dimensions of the second sliding element 193 are matched with the dimensions of the second mounting element 192. Generally, the radial dimensions (such as outer diameter, length, and width) of the second sliding element 193 are smaller than the radial dimensions (such as length and width) of the second mounting element 192.
[0248] In some of these embodiments, the second sliding element 193 is a second sliding groove.
[0249] like Figure 13 As shown, the watchband structure 200 includes a watchband unit 210, a third mounting unit 220, and a fourth mounting unit 230. The watchband unit 210 is detachably worn on the patient's wrist; the third mounting unit 220 is disposed at a first end of the watchband unit 210 and connected to a first end of the first base unit 110 of the decompression structure 100; the fourth mounting unit 230 is disposed at a second end of the watchband unit 210 and connected to a second end of the first base unit 110 of the decompression structure 100.
[0250] In some embodiments, the material of the strap unit 210 includes, but is not limited to, silicone.
[0251] In some of these embodiments, the watchband unit 210 is provided with a number of ventilation holes.
[0252] like Figure 14 As shown, the third mounting unit 220 includes a third mounting element 221, two first groove elements 222, two third sliding elements 223, and a plurality of first elastic elements 224. The first end of the third mounting element 221 is connected to the second end of the watchband unit 210, and the third mounting element 221 is also connected to the first end of the decompression structure 100. The two first groove elements 222 are respectively disposed on the first and second sides of the third mounting element 221. The two third sliding elements 223 are slidably disposed in their respective first groove elements 222 and slidably connected to the decompression structure 100. The plurality of first elastic elements 224 are respectively disposed inside their respective first groove elements 222 and are respectively connected to their respective first groove elements 222 and their respective third sliding elements 223.
[0253] Specifically, the third mounting element 221 is connected to the first mounting unit 180; the third sliding element 223 is slidably connected to the first mounting unit 180.
[0254] More specifically, the third mounting element 221 is removably disposed on the first mounting element 182; the third sliding element 223 is slidably connected to the first sliding element 183.
[0255] The third mounting element 221 is detachably connected to the first mounting element 182. The detachable connection method includes, but is not limited to, snap-fit connections.
[0256] The third mounting element 221 is connected to the watch strap unit 210 by a fixed connection. The fixed connection method includes, but is not limited to, integral molding.
[0257] The dimensions of the third mounting element 221 are matched with the dimensions of the first mounting element 182. Generally, the length of the third mounting element 221 is less than the length of the first mounting element 182, the width of the third mounting element 221 is less than the width of the first mounting element 182, and the height of the third mounting element 221 is less than the height of the first mounting element 182.
[0258] The dimensions of the third mounting element 221 are matched with the dimensions of the watch strap unit 210. Generally, the radial dimension (e.g., length, width) of the third mounting element 221 is smaller than the radial dimension (e.g., length, width) of the cross section of the watch strap unit 210 in which it is located.
[0259] In some of these embodiments, the third mounting element 221 is the first mounting block.
[0260] The dimensions of the first recessed element 222 are matched with the dimensions of the third mounting element 221. Generally, the radial dimension (e.g., length, width) of the first recessed element 222 is smaller than the radial dimension (e.g., length, width) of the cross section of the third mounting element 221 in which it is located, and the depth of the first recessed element 222 is smaller than the height of the third mounting element 221.
[0261] In some of these embodiments, the first groove element 222 is a third sliding groove.
[0262] The dimensions of the third sliding element 223 are matched with the dimensions of the first groove element 222. Generally, the radial dimensions (such as outer diameter, length, and width) of the third sliding element 223 are smaller than the radial dimensions (such as outer diameter, length, and width) of the first groove element 222.
[0263] The dimensions of the third sliding element 223 are matched with the dimensions of the first sliding element 183. Generally, the radial dimensions (such as outer diameter, length, and width) of the third sliding element 223 are smaller than the radial dimensions (such as outer diameter, length, and width) of the first sliding element 183, and the height of the third sliding element 223 is not greater than the height of the first sliding element 183.
[0264] In some embodiments, the third sliding element 223 is the first sliding rod or the first sliding block.
[0265] The first elastic element 224 is connected to the third mounting element 221 and the third sliding element 223 by a fixed connection. The fixed connection method includes, but is not limited to, welding.
[0266] The dimensions of the first elastic element 224 are matched with the dimensions of the first groove element 222. Generally, the radial dimension (e.g., outer diameter) of the first elastic element 224 is smaller than the radial dimension (e.g., length, width) of the first groove element 222, and the height of the first elastic element 224 is smaller than the depth of the first groove element 222.
[0267] The number of first elastic elements 224 matches the number of first groove elements 222. Generally, the number of first elastic elements 224 is an integer multiple of the number of first groove elements 222. That is, each first groove element 222 is provided with at least one first elastic element 224.
[0268] When a plurality of first elastic elements 224 are provided in each first groove element 222, the plurality of first elastic elements 224 are spaced apart along the length direction and / or width direction of the first groove element 222.
[0269] In some of these embodiments, the first elastic element 224 is a first spring.
[0270] like Figure 15As shown, the fourth mounting unit 230 includes a fourth mounting element 231, two second groove elements 232, two fourth sliding elements 233, and a plurality of second elastic elements 234. The second end of the fourth mounting element 231 is connected to the first end of the watchband unit 210, and the fourth mounting element 231 is also connected to the second end of the decompression structure 100. The two second groove elements 232 are respectively disposed on the first and second sides of the fourth mounting element 231. The two fourth sliding elements 233 are slidably disposed in their respective second groove elements 232 and slidably connected to the decompression structure 100. The plurality of second elastic elements 234 are respectively disposed inside their respective second groove elements 232 and connected to their respective second groove elements 232 and their respective fourth sliding elements 233.
[0271] Specifically, the fourth mounting element 231 is connected to the second mounting unit 190; the fourth sliding element 233 is slidably connected to the second mounting unit 190.
[0272] More specifically, the fourth mounting element 231 is removably disposed on the second mounting element 192; the fourth sliding element 233 is slidably connected to the first sliding element 183.
[0273] The fourth mounting element 231 is detachably connected to the second mounting element 192. The detachable connection method includes, but is not limited to, snap-fit.
[0274] The fourth mounting element 231 is connected to the watch strap unit 210 by a fixed connection. The fixed connection method includes, but is not limited to, integral molding.
[0275] The dimensions of the fourth mounting element 231 match those of the second mounting element 192. Generally, the length of the fourth mounting element 231 is less than the length of the second mounting element 192, the width of the fourth mounting element 231 is less than the width of the second mounting element 192, and the height of the fourth mounting element 231 is less than the height of the second mounting element 192.
[0276] The dimensions of the fourth mounting element 231 are matched with the dimensions of the watch strap unit 210. Generally, the radial dimension (e.g., length, width) of the fourth mounting element 231 is smaller than the radial dimension (e.g., length, width) of the cross section of the watch strap unit 210 in which it is located.
[0277] In some of these embodiments, the fourth mounting element 231 is a second mounting block.
[0278] The dimensions of the second recessed element 232 are matched with the dimensions of the fourth mounting element 231. Generally, the radial dimension (e.g., length, width) of the second recessed element 232 is smaller than the radial dimension (e.g., length, width) of the cross section of the fourth mounting element 231 in which it is located, and the depth of the second recessed element 232 is smaller than the height of the fourth mounting element 231.
[0279] In some of these embodiments, the second groove element 232 is a fourth sliding groove.
[0280] The dimensions of the fourth sliding element 233 are matched with the dimensions of the second groove element 232. Generally, the radial dimensions (such as outer diameter, length, and width) of the fourth sliding element 233 are smaller than the radial dimensions (such as outer diameter, length, and width) of the second groove element 232.
[0281] The dimensions of the fourth sliding element 233 are matched with those of the second sliding element 193. Generally, the radial dimensions (such as outer diameter, length, and width) of the fourth sliding element 233 are smaller than those of the second sliding element 193 (such as outer diameter, length, and width), and the height of the fourth sliding element 233 is not greater than the height of the first sliding element 183.
[0282] In some embodiments, the fourth sliding element 233 is a second sliding rod or a second sliding block.
[0283] The second elastic element 234 is connected to the fourth mounting element 231 and the fourth sliding element 233 by a fixed connection. The fixed connection method includes, but is not limited to, welding.
[0284] The dimensions of the second elastic element 234 are matched with the dimensions of the second groove element 232. Generally, the radial dimension (e.g., outer diameter) of the second elastic element 234 is smaller than the radial dimension (e.g., length, width) of the second groove element 232, and the height of the second elastic element 234 is smaller than the depth of the second groove element 232.
[0285] The number of second elastic elements 234 matches the number of second groove elements 232. Generally, the number of second elastic elements 234 is an integer multiple of the number of second groove elements 232. That is, each second groove element 232 is provided with at least one second elastic element 234.
[0286] When a plurality of second elastic elements 234 are provided in each second groove element 232, the plurality of second elastic elements 234 are spaced apart along the length direction and / or width direction of the second groove element 232.
[0287] In some of these embodiments, the second elastic element 234 is a second spring.
[0288] The usage method of this embodiment is as follows:
[0289] (a) Wearing a stress-relieving bracelet
[0290] First, place the watch strap unit 210 on the patient's wrist. Then, press the third sliding element 223 with your fingers to retract the third sliding element 223 into the first groove element 222. The first elastic element 224 deforms. Then, insert the third mounting element 221 into the first mounting element 182. Release the third sliding element 223. The first elastic element 224 returns to its original shape. The third sliding element 223 slides relative to the first sliding element 183 and locks with the first sliding element 183. The first end of the watch strap unit 210 is fixed to the side of the first mounting unit 180.
[0291] By connecting the fourth mounting unit 230 to the second mounting unit 190 in the same way, the strap structure 200 can be connected to the decompression structure 100.
[0292] (II) Disassembling the decompression bracelet
[0293] When it is necessary to remove the decompression bracelet from the patient's wrist, a disassembly device is used. The two first sliding elements 183 are inserted to press the corresponding two third sliding elements 223. The first elastic element 224 deforms, and the two third sliding elements 223 retract into the corresponding first groove element 222. Then, the strap unit 210 is pulled to separate the third mounting element 221 from the first mounting element 182, thus unbinding the bracelet. The connection between the fourth mounting unit 230 and the second mounting unit 190 can also be disassembled in the same way.
[0294] The technical effects of this embodiment are as follows:
[0295] By utilizing the slidable and detachable connection between the third mounting unit and the first mounting unit, and the slidable and detachable connection between the fourth mounting unit and the second mounting unit, the strap unit and the first base unit can be easily connected and disassembled, which facilitates the wearing and disassembly of the decompression bracelet and prevents patients from disassembling the bracelet.
[0296] Example 5
[0297] This embodiment is a modified embodiment of embodiment 4.
[0298] like Figure 16 As shown, the decompression bracelet also includes a health monitoring structure 300, a positioning structure 400, and a central control structure 500. The health monitoring structure 300 is located inside the first base unit 110 of the decompression structure 100; the positioning structure 400 is located inside the first base unit 110 of the decompression structure 100; and the central control structure 500 is located inside the first base unit 110 of the decompression structure 100 and is connected to the health monitoring structure 300 and the positioning structure 400, respectively.
[0299] Specifically, the health monitoring structure 300, the positioning structure 400, and the central control structure 500 are located inside the first base unit 110.
[0300] In some embodiments, the health monitoring structure 300 includes, but is not limited to, a temperature monitor, a real-time blood pressure and heart rate monitor (including, but not limited to, PPG photoplethysmography monitoring).
[0301] In some embodiments, the positioning structure 400 includes, but is not limited to, a positioning sensor.
[0302] The central control structure 500 is connected to the terminal control system.
[0303] In some embodiments, the central control structure 500 includes, but is not limited to, an instruction control module, such as a chip.
[0304] The usage method of this embodiment is as follows:
[0305] When a patient wears the decompression bracelet, the health monitoring structure 300 monitors the patient's body temperature, blood pressure, and heart rate in real time and transmits the data to the central control structure 500; the positioning structure 400 acquires the patient's location information in real time and transmits it to the central control structure 500; the central control structure 500 compares the acquired patient information with preset thresholds and transmits it to the terminal control system, issuing a reminder to the terminal control system when the preset thresholds are exceeded.
[0306] The technical effects of this embodiment are as follows:
[0307] By setting up health monitoring, positioning, and central control structures, patients' health and location information can be obtained in real time, enabling remote control.
[0308] The above description is only a preferred embodiment of the present utility model and does not limit the implementation method and protection scope of the present utility model. Those skilled in the art should realize that all solutions obtained by equivalent substitutions and obvious changes made based on the description and illustrations of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A decompression structure for decompressing a wristband, characterized in that, include: The first base unit has two ends connected to the two ends of the watch strap structure, respectively. The second base unit is movably disposed at the top of the first base unit; A rotating unit is disposed between the first base unit and the second base unit, and is used to cause the second base unit to rotate relative to the first base unit; A rolling decompression unit is disposed between the first base unit and the second base unit, and is used to generate sound when the second base unit and the first base unit rotate relative to each other.
2. The decompression structure according to claim 1, characterized in that, The rotating unit includes: A first rotating element is disposed at the top of the first base unit; A second rotating element is disposed at the bottom end of the second base unit and rotatably connected to the first rotating element, for causing the second base unit to rotate relative to the first base unit; and / or The rolling decompression unit includes: At least one first rolling element is disposed at the top of the first base unit; At least one second rolling element is disposed at the bottom end of the second base unit and is tactilely connected to the first rolling element, for producing sound in cooperation with the first rolling element when the second base unit and the first base unit rotate relative to each other.
3. The decompression structure according to claim 2, characterized in that, The rotating unit further includes: A first anti-slip element, disposed on the second rotating element, is used for anti-slip purposes; and / or The rotating unit further includes: A second anti-slip element, disposed on the second rotating element, is used for anti-slip purposes; and / or The rolling decompression unit further includes: At least one third rolling element is disposed at the top of the second base unit and is tactilely connected to the second rolling element.
4. The decompression structure according to any one of claims 1 to 3, characterized in that, Also includes: A placement unit is disposed on the side of the second base unit and is used to place a finger when the second base unit is rotated; and / or A rotary decompression unit, movably disposed at the top of the second base unit, is used by the patient to rotate to decompress; and / or A magnetic attraction unit is disposed between the first base unit and the second base unit.
5. The decompression structure according to claim 4, characterized in that, The rotational decompression unit includes: At least one third rotating element is provided, the third rotating element being disposed through the second base unit; A first limiting element is disposed at the end of the third rotating element and communicates with the third rotating element; At least one fourth rotating element, the fourth rotating element being rotatably disposed on the third rotating element; At least one second limiting element is disposed at the bottom end of the fourth rotating element and is connected to the first limiting element for limiting connection, thereby preventing the fourth rotating element from separating from the second base unit; and / or The magnetic attraction unit includes: At least one first magnetic attraction element is disposed at the top of the first base unit; At least one second magnetic element is disposed at the bottom end of the second base unit and magnetically connected to the first magnetic element to fix the relative position of the first base unit and the second base unit.
6. The decompression structure according to claim 5, characterized in that, The rotational decompression unit further includes: At least one third limiting element is disposed at the top end of the fourth rotating element and is limitedly connected to the second base unit to prevent the fourth rotating element from separating from the second base unit; and / or At least one third anti-slip element is disposed at the end of the third limiting element for anti-slip purposes.
7. A stress-relieving bracelet for use by mental patients, characterized in that, include: The decompression structure as described in any one of claims 1 to 6; The watch strap structure has two ends connected to the two ends of the first base unit of the decompression structure, respectively.
8. The decompression bracelet according to claim 7, characterized in that, The decompression structure also includes: A first mounting unit is disposed at the first end of the first base unit and connected to the first end of the watch strap structure; A second mounting unit is disposed at the second end of the first base unit and connected to the second end of the watch strap structure; and / or The watch strap structure includes: Watchband unit, which is removably worn on the patient's wrist; The third mounting unit is disposed at the first end of the watch strap unit and connected to the first end of the first base unit of the decompression structure; A fourth mounting unit is disposed at the second end of the watch strap unit and connected to the second end of the first base unit of the decompression structure.
9. The decompression bracelet according to claim 8, characterized in that, The first installation unit includes: A first main element, a first end of which is connected to a second end of the first base unit, and the second end of the first main element is provided with the watch strap structure; A first mounting element is disposed on the first main body element, and the watch strap structure is removably disposed inside the first mounting element; Two first sliding elements are respectively disposed on a first side and a second side of the first main body element, and are respectively connected to the first mounting element and slidably connected to the watch strap structure; and / or The second mounting unit includes: The second main component has a second end connected to the first end of the first base unit, and the first end of the second main component is provided with the watch strap structure. A second mounting element is disposed on the second main body element, and the watch strap structure is removably disposed inside the second mounting element; Two second sliding elements are respectively disposed on the first side and the second side of the second main body element, and are respectively connected to the second mounting element and slidably connected to the watch strap structure; and / or The third installation unit includes: A third mounting element, the first end of which is connected to the second end of the watch strap unit, and the third mounting element is connected to the first end of the decompression structure; Two first groove elements are respectively disposed on the first side and the second side of the third mounting element; Two third sliding elements are slidably disposed on the corresponding first groove elements and slidably connected to the decompression structure; A plurality of first elastic elements are respectively disposed inside corresponding first groove elements and respectively connected to the corresponding first groove elements and the corresponding third sliding elements; and / or The fourth installation unit includes: The fourth mounting element has its second end connected to the first end of the watch strap unit and its second end connected to the decompression structure. Two second groove elements are respectively disposed on the first side and the second side of the fourth mounting element; Two fourth sliding elements are slidably disposed on the corresponding second groove elements and slidably connected to the decompression structure; A plurality of second elastic elements are respectively disposed inside the corresponding second groove element and respectively connected to the corresponding second groove element and the corresponding fourth sliding element.
10. The decompression bracelet according to any one of claims 7 to 9, characterized in that, Also includes: A health monitoring structure, wherein the health monitoring structure is disposed inside the first base unit of the decompression structure; A positioning structure is disposed inside the first base unit of the decompression structure; A central control structure is disposed inside the first base unit of the decompression structure and is connected to the health monitoring structure and the positioning structure, respectively.