Protective riding glove combining energy absorption and floating shock absorption
By using floating shock absorption modules and hollow shell support structure design, the problems of poor shock absorption and excessive weight of traditional cycling gloves are solved, achieving efficient impact protection and lightweight design, and improving the dynamic fit and comfort of cycling gloves.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional cycling gloves cannot accurately align their shock-absorbing pads with the dynamic center of pressure. Hard protective shells increase the weight of the gloves and sacrifice lightweight characteristics, making it difficult to provide a high level of impact protection and shock absorption.
The design employs floating damping modules and a hollow shell support structure. The floating base fabric allows the damping modules to dynamically conform to the pressure points, while the honeycomb support ribs inside the hollow shell disperse impact energy, improving the protection level and reducing weight.
It improves the dynamic fit and wearing comfort of the gloves, achieves efficient impact protection and lightweight design, and enhances shock absorption.
Smart Images

Figure CN224038536U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of protective cycling gloves, more particularly to a kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves, belong to cycling protective equipment technical field. BACKGROUND
[0002] Cycling sports has higher requirements for the protection and comfort of hands. The shock-absorbing pad of the palm part of the traditional cycling gloves is usually fixed and sewn at the palm center of the glove. However, since the shape of each person's hand is different and the grip posture changes at any time when actually gripping the handlebar, the actual core pressure point of the palm will shift, and the static fixed shock-absorbing pad cannot accurately align with the dynamic pressure center, thereby reducing the shock-absorbing effect. In addition, in order to protect multiple positions of the back of the hand and the palm when falling, a hard protective shell is usually provided. In order to achieve sufficient protection strength, the hard protective shell of the traditional cycling gloves usually adopts a solid structure, which undoubtedly increases the overall weight of the glove and brings unnecessary burden to the cyclist. However, simply pursuing lightweight may sacrifice the key protection performance. Therefore, how to design a protective cycling glove that can provide high-level impact protection, has lightweight characteristics, and improves the adaptability of the palm shock-absorbing pad to improve the shock-absorbing effect is a technical problem to be solved in the field. SUMMARY
[0003] Based on the above background, the purpose of the utility model is to provide a kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves, improve the dynamic fit and protection level of protective cycling gloves, and also consider lightweight.
[0004] In order to achieve the above utility model purpose, the utility model provides the following technical scheme:
[0005] A kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves, including glove main body, the glove main body is equipped with palm center and back of hand part;The back of hand part is equipped with mutually separated central hard protective module and multiple joint hard protective modules, the central hard protective module is fixed in the middle region of the back of hand part, the joint hard protective module is fixed in the region corresponding to metacarpophalangeal joint of back of hand part, the central hard protective module and the joint hard protective module are all hollow shell, and the inside of the hollow shell is equipped with support structure;The palm center is equipped with shock-absorbing module and elastic floating base cloth, the shock-absorbing module is fixedly connected with the middle region of the floating base cloth, the periphery edge region of the floating base cloth is fixedly connected with the palm center, and the middle region of the floating base cloth can change the relative position with the palm center.
[0006] As a preferred, the palm center is also equipped with palm side hard protective module, and the palm side hard protective module is fixed to the side region of the palm center.
[0007] As preferred, the palmar hard protection module is a hollow shell, and the inside of the hollow shell is provided with a support structure.
[0008] As preferred, the support structure comprises continuously extended honeycomb support ribs, the honeycomb support ribs form honeycomb holes, and the hole opening direction of the honeycomb holes is perpendicular to the height direction of the hollow shell.
[0009] As preferred, the distribution density of the honeycomb support ribs in the central region of the hollow shell is greater than that in the edge region.
[0010] As preferred, the wall thickness of the honeycomb support ribs is non-uniformly arranged, and the wall thickness of the honeycomb support ribs in the outer region of the hollow shell towards the impact direction is greater than that in the inner region.
[0011] As preferred, the number of the joint hard protection modules is four, and the four joint hard protection modules respectively correspond to the metacarpophalangeal joint regions of the index finger, the middle finger, the ring finger and the little finger.
[0012] As preferred, the glove body is further provided with a wrist strap, one end of the wrist strap is fixedly connected with the glove body, and the other end of the wrist strap is detachably connected with the glove body or one end of the wrist strap through a magic tape structure.
[0013] Compared with the prior art, the utility model has the following advantages:
[0014] The utility model discloses a kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves, by setting up floating base cloth, make shock-absorbing module be able to elastically float relative to palm center, improve the dynamic fit degree and wearing comfort of glove, hard protection module adopts the composite design of hollow shell and internal honeycomb support structure, can disperse impact and carry out energy absorption, reduce weight while also improve protection level. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiment or prior art description. Obviously, the drawings in the following description are only embodiments of the present application, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of the provided drawings.
[0016] Fig. 1 is the back of the hand of the utility model composite energy-absorbing and floating shock-absorbing protective cycling gloves three-dimensional structure schematic diagram;
[0017] Fig. 2The utility model relates to a palm heart department main view structure schematic diagram of a kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves.
[0018] Fig. 3 It is the schematic diagram of the hollow shell and support structure of the utility model;
[0019] In the drawing: 1, glove main body;11, palm heart department;12, back of hand;2, central hard protection module;3, joint hard protection module;4, hollow shell;5, support structure;51, honeycomb support rib;6, shock-absorbing module;7, floating base cloth;8, palm side hard protection module;9, wrist strap;91, magic tape structure. DETAILED DESCRIPTION
[0020] The technical scheme of the utility model will be further specifically explained by specific embodiments, and in conjunction with the drawings. It should be understood that the implementation of the utility model is not limited to the following embodiments, and any form of variation and / or change of the utility model will fall within the scope of protection of the utility model.
[0021] In the utility model, if not specified, all parts, percentages are weight units, and the equipment and raw materials used can be purchased from the market or commonly used in the art. The method in the following examples is the conventional method in the art, unless otherwise specified. The components or equipment in the following examples are general standard parts or components known to those skilled in the art, and their structure and principle can be known to the skilled person through technical manual or obtained through conventional experimental method.
[0022] The embodiments of the utility model are described in detail in conjunction with the drawings below. In the following detailed description, many specific details are set forth in order to provide a comprehensive understanding of the embodiments of the utility model. However, one or more embodiments can be implemented by those skilled in the art without these specific details.
[0023] As Figs. 1-3The utility model discloses an embodiment discloses a kind of composite energy-absorbing and floating shock-absorbing protective cycling gloves, including glove main body 1, glove main body 1 is equipped with palm center 11 and back of hand 12.Back of hand 12 is equipped with mutually separated central hard protection module 2 and four joint hard protection modules 3.Size larger central hard protection module 2 is fixed in the middle region of back of hand 12, four size smaller joint hard protection modules 3 are fixed in the region corresponding to metacarpophalangeal joint of back of hand 12, specifically, four joint hard protection modules 3 are one-to-one corresponding to the metacarpophalangeal joint region corresponding to index finger, middle finger, ring finger and little finger of back of hand 12, since mutually separated, the activity of each joint when user clenches fist does not interfere with each other.Central hard protection module 2 and joint hard protection module 3 are all hollow shell 4, and hollow shell 4 is equipped with support structure 5 in the inside.
[0024] Palm center 11 is equipped with shock-absorbing module 6 and floating base cloth 7 with elasticity, shock-absorbing module 6 is fixedly connected with the middle region of floating base cloth 7, and the periphery edge region of floating base cloth 7 is fixedly connected with palm center 11, and the middle region of floating base cloth 7 can change the relative position of palm center 11.Specifically, floating base cloth 7 is high-elasticity fabric, and it is only fixed on the wear-resistant fabric of palm center 11 by the edge region of its periphery in this way, the middle region of floating base cloth 7 and the shock-absorbing module 6 above it are not fixed directly with palm center 11, and form a structure that can float in a small range.
[0025] Palm center 11 is also equipped with palmar hard protection module 8, and palmar hard protection module 8 is fixed to the side region of palm center 11.Palmar hard protection module 8 is mainly aimed at the scene that palm outer edge of rider touches ground and slides when falling, provides wear resistance and impact protection, and is complementary to the function of floating shock-absorbing module 6 mainly responsible for buffering gripping pressure, to form more comprehensive safety protection.Palmar hard protection module 8 is also hollow shell 4, and hollow shell 4 is equipped with support structure 5 in the inside.
[0026] Specifically, support structure 5 includes continuously extended honeycomb support rib 51, and honeycomb support rib 51 forms honeycomb hole, and the hole opening direction of honeycomb hole is perpendicular to the height direction of hollow shell 4.The structure has higher strength-weight ratio, can set collapse by controllable buckling when being impacted vertically to hole opening direction, to efficiently absorb and dissipate impact energy, and its protection effect is superior to solid structure of same weight.Hollow shell 4 is injection molded by high-strength engineering plastic, and support structure 5 is also integrally formed with hollow shell 4 by injection molding.
[0027] In order to further optimize the impact resistance, the distribution density of the honeycomb support ribs 51 in the central region of the hollow shell 4 is greater than that in the edge region. A denser honeycomb structure is provided in the central region which is most likely to be subjected to a frontal impact, while a relatively sparse structure is provided in the edge region, improving the impact resistance structure efficiency. Alternatively, the wall thickness of the honeycomb support ribs 51 can also be non-uniformly arranged, with the wall thickness of the honeycomb support ribs 51 in the outer region of the hollow shell 4 facing the impact direction being greater than that in the inner region. In this way, the thicker outer wall is used to resist and disperse the initial impact force, while the thinner inner wall is more likely to deform under pressure, thereby guiding the energy to be more fully absorbed.
[0028] The glove body 1 is also provided with a wrist strap 9, one end of the wrist strap 9 being fixedly connected to the glove body 1, and the other end of the wrist strap 9 being detachably connected to the glove body 1 or one end of the wrist strap 9 through a magic tape structure 91. The provision of the wrist strap 9 ensures that the glove can be firmly fixed on the wrist during intense exercise or accidents, preventing it from falling off.
[0029] The working principle of the protective cycling glove is described as follows.
[0030] When the cyclist performs actions such as gripping the handlebars and applying the brakes, the skin of the back of the hand 12 stretches, and the separately arranged central hard protection module 2 and the joint hard protection module 3 can move independently with the bending of the hand, completely not affecting the flexibility of the joints. Changes in the gripping posture of the palm cause the center of pressure to shift, and the shock-absorbing module 6 of the palm center 11 will fine-tune through the elastic deformation of the floating base cloth 7 under the extrusion of the palm and the handlebars, always aligning its core buffer area with the actual highest pressure point to provide the most effective shock absorption. When an accidental impact occurs, if the impact acts on the back of the hand 12, the outer wall of the hollow shell 4 of the hard protection module will first disperse the impact force over a large area, and then the honeycomb support ribs 51 inside will sequentially bend and even collapse, absorbing most of the impact energy in the process, thereby maximizing the protection of the hand bones. If the impact acts on the palm side, protection is provided by the palm side hard protection module 8.
[0031] In this paper, specific examples are used to describe the principles and implementation methods of the present application. The above examples are only used to help understand the method and its core idea. It should be noted that for ordinary technical personnel in this technical field, without departing from the principles of the present application, the present application can be improved and modified in several ways, and these improvements and modifications also fall within the protection scope of the claims of the present application.
Claims
1. A protective cycling glove with composite energy absorption and floating shock absorption, comprising a glove body (1) provided with a palm (11) and a back of hand (12), characterized in that: The back of hand (12) is provided with a central hard protection module (2) and a plurality of joint hard protection modules (3) separated from each other, the central hard protection module (2) is fixed to the middle region of the back of hand (12), the joint hard protection module (3) is fixed to the region corresponding to the metacarpophalangeal joint of the back of hand (12), the central hard protection module (2) and the joint hard protection module (3) are both hollow shells (4), and the inside of the hollow shell (4) is provided with a support structure (5); The palm (11) is provided with a shock absorption module (6) and a floating base cloth (7) with elasticity, the shock absorption module (6) is fixedly connected with the middle region of the floating base cloth (7), the peripheral edge region of the floating base cloth (7) is fixedly connected with the palm (11), and the middle region of the floating base cloth (7) can change the relative position with the palm (11).
2. A protective cycling glove with composite energy absorption and floating shock absorption according to claim 1, characterized in that: The palm (11) is also provided with a palmar hard protection module (8), and the palmar hard protection module (8) is fixed to the side region of the palm (11).
3. A protective cycling glove incorporating energy absorption and floating shock absorption according to claim 2, characterised in that: The palmar hard protection module (8) is a hollow shell (4), and the inside of the hollow shell (4) is provided with a support structure (5).
4. The protective cycling glove of claim 1 or 3, wherein: The support structure (5) includes continuously extended honeycomb support ribs (51), the honeycomb support ribs (51) form honeycomb holes, and the hole opening direction of the honeycomb holes is perpendicular to the height direction of the hollow shell (4).
5. A protective cycling glove incorporating energy absorption and floating shock absorption according to claim 4, characterised in that: The distribution density of the honeycomb support ribs (51) in the central region of the hollow shell (4) is greater than that in the edge region.
6. A protective cycling glove incorporating energy absorption and floating shock absorption according to claim 4, characterised in that: The wall thickness of the honeycomb support ribs (51) is unevenly arranged, and the wall thickness of the honeycomb support ribs (51) in the outer region of the hollow shell (4) towards the impact direction is greater than that in the inner region.
7. The protective cycling glove of claim 1, wherein: The number of the joint hard protection modules (3) is four, and the four joint hard protection modules (3) correspond to the metacarpophalangeal joint regions of the index finger, the middle finger, the ring finger and the little finger of the back of hand (12) respectively.
8. The protective cycling glove of claim 1, wherein: The glove body (1) is also provided with a wrist strap (9), one end of the wrist strap (9) is fixedly connected with the glove body (1), and the other end of the wrist strap (9) is detachably connected with the glove body (1) or one end of the wrist strap (9) through a magic tape structure (91).