Pressure-reducing shockproof glove
By setting up structures such as anti-slip protrusions, buffer blocks, cushioning air cushions and Velcro in the gloves, the problem that existing gloves cannot effectively protect their hands when under pressure is solved, achieving the effect of reducing pressure and shockproofing, and reducing hand injuries.
Patent Information
- Application Number
- CN202421692080.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-17
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-07-17
AI Technical Summary
Existing labor protection gloves cannot effectively protect the hands when under pressure, which can easily lead to hand injuries or discomfort.
A pressure-reducing and shock-proof glove is designed, including fingers, palms and wrists, and structures such as anti-slip protrusions, buffer blocks, buffer air cushions and Velcro are installed to achieve pressure reduction effect through the circumferential pressure reduction airway and the central pressure reduction airway.
When under pressure, the gloves can buffer and reduce pressure, reduce hand injuries, provide all-round protection, and ensure free movement of fingers.
Smart Images

Figure CN222967996U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glove structures, in particular to a decompression and shock-absorbing glove. Background Art
[0002] Gloves are hand warmers or labor protection supplies, and there are also decorative ones. Gloves are very special things. Initially, they were not produced for practical use. It was only in modern times that they not only became essential for keeping warm in cold regions, but also became essential supplies for medical antibacterial and industrial protection. In addition to the traditional meaning of gloves, modern gloves now have a deeper meaning, which is quite different from traditional gloves. Nowadays, gloves no longer have only one use.
[0003] Existing labor protection gloves do not have a decompression and shock-absorbing module during use, and cannot protect the user's hands. It is easy to cause hand injuries or discomfort to the user's hands when under pressure. Content of the Utility Model
[0004] The purpose of the utility model is to provide a decompression and shock-absorbing glove, which can play a buffering role under pressure and reduce the problem of hand injuries or discomfort of the user.
[0005] The above technical purpose of the utility model is achieved through the following technical solutions:
[0006] A decompression and shock-absorbing glove, characterized in that it includes a finger part, a palm part and a wrist part. Anti-slip protrusions are arranged on the palm surfaces of the finger parts. First buffer blocks are arranged on the back surfaces of the finger parts. A second buffer block is arranged above the palm surface of the palm part near the finger part. A buffer air cushion is arranged below the palm surface of the palm part near the wrist part. A third buffer block is arranged on the back surface of the palm part near the finger part. Each group of the first buffer blocks is surrounded by a circumferential decompression air duct, and the circumferential decompression air duct is communicated with the buffer air cushion. A magic tape for tightening the glove is arranged on the wrist part.
[0007] Preferably, the anti-slip protrusions are arranged at the palms of each finger of the finger part. The anti-slip protrusions are of an inverted V-shaped structure near the finger roots and of a linear structure perpendicular to the finger direction near the fingertips.
[0008] Preferably, a number of activity slots are opened at the finger joints between each group of the first buffer blocks. A central decompression air duct is arranged in the middle of the first buffer block. The thickness of the circumferential decompression air duct and the central decompression air duct after admitting air is greater than the thickness of the first buffer block.
[0009] Preferably, a buffer groove is opened on the inner side of the second buffer block. The connection between the buffer groove and the palm part is arc-shaped. An interlayer is arranged in the buffer groove, and an expandable foam is filled in the interlayer.
[0010] Preferably, a movable groove is provided at the lower middle part of the buffer air cushion, the buffer air cushion is filled with gas, a plurality of groups of diamond-shaped buffer parts are connected to the inner side of the buffer air cushion, the upper and lower ends of the plurality of groups of diamond-shaped buffer parts are connected to the inside of the buffer air cushion, and a connecting layer is provided in the middle layer of each group of diamond-shaped buffer parts.
[0011] Preferably, an arc-shaped protrusion is arranged above the buffer air cushion in the middle of the adjacent diamond-shaped buffer part.
[0012] Preferably, the buffer air cushion is connected to the annular decompression airway via a side airway, and an elastic sealing membrane is sealed at the connection between the buffer air cushion and the side airway, and the elastic sealing membrane is S-shaped.
[0013] Preferably, the third buffer block comprises a plurality of groups of polygonal rubber blocks, slots are arranged between the plurality of groups of polygonal rubber blocks, and holes are arranged in an array on the plurality of groups of polygonal rubber blocks.
[0014] Preferably, the Velcro includes a male patch and a female patch, the male patch and the female patch are respectively fixed on the wrist, the wrist is provided with an oil storage layer on the upper part of the Velcro, the oil storage layer is provided with an oil channel connected to the base of the palm, the oil channel is sealed with an elastic membrane, and the oil storage layer and the oil channel are filled with lubricating oil.
[0015] In summary, the utility model has the following beneficial effects:
[0016] 1. The utility model sets a buffer layer adapted to the corresponding finger according to the shape and activity law of each finger, which not only provides all-round protection for the fingers and the back of the hand, but also ensures the free movement of the fingers.
[0017] 2. The utility model arranges a buffer air cushion at the thickest part of the palm. When compressed, the elastic sealing film at the connection between the buffer air cushion and the side airway ruptures, and the gas is introduced into the annular decompression airway and the central decompression airway, thereby reducing the pressure on the finger part and reducing the damage to the finger part.
[0018] 3. The palm pad designed according to the shock absorption standard of the utility model gives the gloves a shock absorption function, while protecting the wearer's hands and arms from the harm of vibration waves.
[0019] 4. The utility model fills the oil reservoir and the oil channel with lubricating oil. Under extreme pressure, the elastic film covering the oil channel ruptures, and the lubricating oil enters the inside of the glove. The staff can easily pull their hands out of the glove to avoid further damage. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the back structure of the hand of the utility model;
[0021] Figure 2 is a schematic structural diagram of the palm surface of the present utility model;
[0022] Figure 3 is Figure 2 a schematic structural diagram of the position A in
[0023] Figure 4 is a schematic internal structural diagram of the second buffer block of the present utility model;
[0024] Figure 5 is a schematic internal structural diagram of the buffer air cushion of the present utility model. Specific embodiments
[0025] The following further describes the specific embodiments of the present utility model with reference to the accompanying drawings. This embodiment does not constitute a limitation to the present utility model.
[0026] Such as Figures 1 to 5 shown, a decompression and shock-absorbing glove includes a finger part 1, a palm part 2 and a wrist part 3. Anti-slip protrusions 4 are provided on the palm surfaces of the finger parts 1, and first buffer blocks 5 are provided on the back surfaces of the finger parts 1. A second buffer block 6 is provided above the palm surface of the palm part 2 near the finger part 1, and a buffer air cushion 7 is provided below the palm surface of the palm part 2 near the wrist part 3. A third buffer block 8 is provided on the back surface of the palm part 2 near the finger part 1. A circumferential decompression air passage 9 is provided around each group of first buffer blocks 5, and the circumferential decompression air passage 9 is communicated with the buffer air cushion 7. A magic tape 10 for tightening the glove is provided on the wrist part 3.
[0027] The anti-slip protrusions 4 are provided at the palms of each finger of the finger part 1. The anti-slip protrusions 4 are of an inverted V-shaped structure near the finger roots and of a linear structure perpendicular to the finger direction near the fingertips.
[0028] A number of groups of movable slots 11 are provided at the finger joints between each group of first buffer blocks 5. A central decompression air passage 12 is provided in the middle of the first buffer block 5. The thickness of the circumferential decompression air passage 9 and the central decompression air passage 12 after air intake is greater than the thickness of the first buffer block 5.
[0029] A buffer slot 13 is provided inside the second buffer block 6. The connection between the buffer slot 13 and the palm part 2 is arc-shaped. A sandwich layer 14 is provided in the buffer slot 13, and an expandable foam 15 is filled in the sandwich layer 14.
[0030] A movable slot 11 is provided below the middle of the buffer air cushion 7. The buffer air cushion 7 is filled with gas. A number of groups of diamond-shaped buffer parts 16 are connected to the inside of the buffer air cushion 7. The upper and lower ends of each group of diamond-shaped buffer parts 16 are connected to the inside of the buffer air cushion 7, and a connection layer 17 is connected to the middle layer of each group of diamond-shaped buffer parts 16.
[0031] Above the buffer air cushion 7, an arc-shaped protrusion 18 is provided in the middle of the adjacent diamond-shaped buffer part 16.
[0032] The buffer air cushion 7 is communicated with the circumferential decompression air duct 9 through a side air duct 19. An elastic sealing film 20 is hermetically arranged at the connection port of the buffer air cushion 7 and the side air duct 19, and the elastic sealing film 20 is arranged in an S shape.
[0033] The third buffer block 8 includes several groups of polygonal rubber blocks 21. Slots 22 are arranged between several groups of polygonal rubber blocks 21, and hole slots are arrayed on several groups of polygonal rubber blocks 21.
[0034] The magic tape 10 includes a male tape and a female tape. The male tape and the female tape are respectively fixed on the wrist part 3. An oil storage layer 23 is arranged on the wrist part 3 above the magic tape 10. An oil duct 24 is arranged in the oil storage layer 23 and connected to the tiger's mouth of the palm part 2. The oil duct 24 is sealed with an elastic film, and lubricating oil is filled in the oil storage layer 23 and the oil duct 24.
[0035] The utility model arranges buffer layers adapted to the corresponding fingers according to the shapes and movement rules of each finger, which not only provides all-round protection for the fingers and the back of the hand, but also ensures the free movement of the fingers.
[0036] The utility model arranges a buffer air cushion at the thickest part of the palm. After being pressed, the elastic sealing film at the connection port of the buffer air cushion and the side air duct ruptures, and the gas is introduced into the circumferential decompression air duct and the central decompression air duct, so as to reduce the pressure on the finger part and reduce the damage to the finger part.
[0037] The palm pad designed according to the shock absorption standard endows the glove with a shock absorption function, and at the same time protects the hands and arms of the wearer from the harm of vibration waves.
[0038] The utility model fills lubricating oil in the oil storage layer and the oil duct. Under the condition of extreme pressure, the elastic film wrapping the oil duct ruptures, and the lubricating oil enters the glove. The staff can easily pull out the hand from the glove to avoid further damage.
[0039] The above are only the preferred embodiments of the utility model, which are not used to limit the utility model. Those skilled in the art can make various modifications or equivalent replacements to the utility model within the essence and protection scope of the utility model, and such modifications or equivalent replacements should also be regarded as falling within the protection scope of the technical solution of the utility model.
Claims
1. A decompression and shockproof glove, characterized in that: The invention comprises a finger part, a palm part and a wrist part, wherein the palm surfaces of the finger parts are all provided with anti-slip protrusions, the back of the hand of the finger parts are all provided with a first buffer block, a second buffer block is provided above the palm surface of the palm part near the finger part, a buffer air cushion is provided below the palm surface of the palm part near the wrist, a third buffer block is provided on the back of the hand of the palm part near the finger part, each group of the first buffer blocks is surrounded by an annular decompression air duct, the annular decompression air duct is connected with the buffer air cushion, and the wrist part is provided with Velcro for tightening the gloves.
2. The decompression and shockproof gloves according to claim 1, characterized in that: The anti-skid protrusion is arranged at the palm of each finger of the finger part. The anti-skid protrusion is an inverted V-shaped structure near the root of the finger and a straight line structure perpendicular to the direction of the finger near the fingertip.
3. The decompression and shockproof gloves according to claim 1, characterized in that: A plurality of movable grooves are provided at the finger joints between each group of the first buffer blocks, a central decompression airway is provided in the middle of the first buffer block, and the thickness of the annular decompression airway and the central decompression airway after air intake is greater than the thickness of the first buffer block.
4. The decompression and shockproof gloves according to claim 1, characterized in that: A buffer groove is provided on the inner side of the second buffer block. The connection between the buffer groove and the palm is arc-shaped. An interlayer is provided in the buffer groove, and the interlayer is filled with expandable foam.
5. The decompression and shock-proof gloves according to claim 1, characterized in that: A movable groove is arranged at the lower middle part of the buffer air cushion, the buffer air cushion is filled with gas, a plurality of groups of diamond-shaped buffer parts are connected to the inner side of the buffer air cushion, the upper and lower ends of the plurality of groups of diamond-shaped buffer parts are connected to the buffer air cushion, and a connecting layer is arranged at the middle layer of each group of diamond-shaped buffer parts.
6. The decompression and shockproof gloves according to claim 5, characterized in that: An arc-shaped protrusion is arranged above the buffer air cushion in the middle of the adjacent diamond-shaped buffer parts.
7. The decompression and shock-proof gloves according to claim 1, characterized in that: The buffer air cushion is communicated with the annular decompression airway through a side airway, and an elastic sealing film is sealed at the connection between the buffer air cushion and the side airway, and the elastic sealing film is S-shaped.
8. The decompression and shock-proof gloves according to claim 1, characterized in that: The third buffer block includes a plurality of groups of polygonal rubber blocks, slots are arranged between the plurality of groups of polygonal rubber blocks, and holes are arranged in an array on the plurality of groups of polygonal rubber blocks.
9. The decompression and shock-proof gloves according to claim 1, characterized in that: The Velcro includes a male patch and a female patch, which are respectively fixed on the wrist. The wrist is provided with an oil storage layer on the upper part of the Velcro, and the oil storage layer is provided with an oil channel connected to the base of the palm. The oil channel is sealed by an elastic membrane, and the oil storage layer and the oil channel are filled with lubricating oil.