Skipping rope handle and skipping rope
By designing a skipping rope handle including the head section, the bent section and the handheld section, the clamping force of the thumb and index finger is used to solve the problem of handle sliding, achieving a stable and firm grasp of the handle, and improving the continuity and efficiency of skipping rope training.
Patent Information
- Application Number
- CN202421739890.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-07-22
AI Technical Summary
Existing rope skipping handles are prone to sliding when the trainer grasps the hand, resulting in interruption in training. Especially in rope skipping, small process changes may affect the results.
A skipping rope handle is designed, which includes a head section, a bent section and a hand-held section. The bent section is bent, and the head section and the hand-held section are connected by the bent bend section. When the trainer grasps his hand, his thumb and index finger are clamped on the bend section to provide a barrier force to ensure that the handle is firmly grasped.
Through the clamping force of the thumb and index finger, the handle can be effectively prevented from sliding or falling out, allowing the trainer to conduct skipping rope training stably, improving the continuity and efficiency of the training.
Smart Images

Figure CN222969105U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of fitness equipment, and more specifically, to a skipping rope handle and a skipping rope. Background Art
[0002] Skipping rope is a traditional physical exercise item, which plays an important role in people's daily physical exercise. And from the initial ordinary physical exercise item, various skipping methods have gradually emerged for skipping rope, and it has even developed into a high-intensity competitive event.
[0003] The patent publication number is CN219208863U, which discloses a skipping rope handle and a skipping rope. The skipping rope handle includes an outer shell body, an inner cylinder body inserted from the rear end of the inner cavity of the outer shell body, and a rotary support body arranged between the inner cylinder body and the outer shell body. It also includes a first axial limiting structure and a second axial limiting structure arranged between the inner cavity and the inner cylinder body. The outer shell body of the skipping rope handle in this solution is a straight cylinder type. When the trainer's hand grips the outer shell body of the skipping rope handle, during the skipping process, as the trainer constantly swings the skipping rope, mutual sliding is likely to occur between the hand and the skipping rope handle; moreover, during the exercise process, the trainer's hand often sweats easily, making it even easier for the skipping rope handle to slide. On the one hand, it affects counting and the skipping speed, and on the other hand, the skipping rope handle is likely to slip out of the trainer's hand, resulting in the interruption of training and seriously affecting the skipping process. Especially in skipping rope competitions, a tiny process often leads to different results.
[0004] Another example is the patent publication number CN113209545A, which discloses an intelligent skipping rope handle, including a main handle, a sub-handle and a rope body. The main handle and the sub-handle are connected by the rope body, and the rope body and the main handle are connected by a rotating head. A circuit board is arranged inside the main handle, and a button is also arranged on the surface of the main handle. The button is electrically connected to the circuit board. In this solution, when the trainer's hand grips the handle, mutual sliding is also likely to occur between the hand and the handle, and it is easy for the fingers and the button to be misaligned, so that the button cannot be operated in time during the skipping process, thus affecting the skipping training. Content of the Utility Model
[0005] The utility model provides a skipping rope handle, which enables the trainer's hand to grip the skipping rope handle more stably and firmly, so as to solve the problem that mutual sliding is likely to occur between the trainer's hand and the skipping rope handle.
[0006] It also provides a skipping rope. By using the skipping rope handle for training, a stable skipping process can be achieved.
[0007] To achieve the above purpose, the technical solution provided by the utility model is as follows:
[0008] A skipping rope handle, including,
[0009] The handle body is in the shape of a rod handle and includes a head section, a bending section, and a hand-held section that are connected in sequence from the head to the tail;
[0010] The axis line aa of the head section, the axis line bb of the bending section, and the axis line cc of the hand-held section are located in the same plane;
[0011] Relative to the axis line aa of the head section, the axis line bb of the bending section is bent toward the side away from the axis line aa of the head section, and an angle α is formed between the axis line bb and the axis line aa, and the angle α is not greater than 50°;
[0012] Relative to the axis line bb of the bending section, the axis line cc of the hand-held section is bent toward the side close to the axis line aa of the head section, and an angle β is formed between the axis line cc and the axis line aa, and the angle β is not greater than the angle α.
[0013] Furthermore, the joints between the head section and the bending section, and between the bending section and the hand-held section are smoothly transitioned.
[0014] Furthermore, the head section, the bending section, and the hand-held section are integrally formed to form the handle body.
[0015] Furthermore, the handle body is split along its axis line to form a front housing and a rear housing, and the front housing and the rear housing are fixedly connected together.
[0016] Furthermore, the free end of the hand-held section is the handle tail end, and the hand-held section is conical, and its cross-sectional area gradually increases from the handle tail end to the joint of the bending section and the hand-held section.
[0017] Furthermore, a connecting portion is provided at one end of the head section, and the connecting portion is used for connecting with a rope body.
[0018] Furthermore, the connecting portion is a rotary body, and the rotary body can rotate relative to the handle body.
[0019] Furthermore, a support plate is circumferentially provided on the inner side of one end of the head section close to the rotary body for fixedly supporting the rotary body.
[0020] The present utility model also provides a skipping rope, which includes a first skipping rope handle and a second skipping rope handle, and at least one of the first skipping rope handle and the second skipping rope handle is the skipping rope handle as described above;
[0021] The first skipping rope handle and the second skipping rope handle are connected by a rope body;
[0022] Or, weight bodies are respectively connected to the first skipping rope handle and the second skipping rope handle.
[0023] Furthermore, the counterweight body is a sphere with a hollow interior, and a plurality of through holes are provided on the surface of the sphere.
[0024] Compared with the prior art, the technical solution provided by the utility model has the following beneficial effects:
[0025] (1) The utility model provides a skipping rope handle, comprising a head section, a bending section and a hand-holding section. The bending section is bent, and the head section and the hand-holding section are connected by the bent bending section. When a trainee grasps the skipping rope handle with his hand, the thumb and index finger are clamped on the bending section. During skipping rope training, the clamping force of the thumb and index finger can provide resistance to the handle from sliding or falling out, so that the handle body can be stably and firmly grasped in the trainee's hand.
[0026] (2) In the skipping rope handle of the utility model, the angles of the angle α between the axis line bb and the axis line aa and the angle β between the axis line cc and the axis line aa can be set according to different needs, so that the skipping rope handle can be designed according to different trainees, thereby improving the comfort of the skipping rope handle.
[0027] (3) The utility model provides a skipping rope handle, wherein the grip section of the skipping rope handle is conical in shape, so that the grip section has a certain amount of space for movement in the palm, which facilitates adjustment of the position of the handle body in the hand, and enables the handle body to be easily adjusted to the most comfortable position for each trainee.
[0028] (4) The utility model provides a skipping rope handle, in which the connection between the head section and the bending section and between the bending section and the hand-holding section is smoothly transitioned, thereby increasing the comfort when the hand grasps; the head section, the bending section and the hand-holding section are integrally formed to form the handle body, thereby simplifying the molding method of the handle body.
[0029] (5) In the skipping rope of the utility model, at least one of the first skipping rope handle and the second skipping rope handle is the skipping rope handle described above, and has the beneficial effects of the skipping rope handle. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a schematic diagram of the handle of the skipping rope and the overall structure of the skipping rope;
[0031] Figure 2 It is a schematic diagram of the relative position relationship between the head segment and the handheld segment;
[0032] Figure 3 It is a schematic diagram of the skipping rope handle and the three-dimensional structure of the skipping rope;
[0033] Figure 4 A schematic diagram of the internal structure of the rope skipping handle facing the rear housing;
[0034] Figure 5 A schematic diagram of the internal structure of the rope skipping handle facing the front housing;
[0035] Figure 6 It is a schematic diagram of the internal structure of the front housing;
[0036] Figure 7 It is a schematic diagram of the connection between the rotating body, the rotating connection part and the connection seat;
[0037] Figure 8 It is a schematic diagram of the structure of the rotating body;
[0038] Figure 9 It is a schematic diagram of the structure of the connection seat.
[0039] Label description:
[0040] 1. Handle main body; 101. Button; 102. Heart rate sensor; 103. Display screen; 104. Fixing part; 105. Limit groove; 106. First limit rib; 107. Second limit rib; 108. Fixing hole; 109. Support plate;
[0041] 11. Head section; 12. Bending section; 121. Second upper side; 122. Second lower side; 13. Handheld section; 131. Third side; 132. Handle end; 14. Front housing; 15. Rear housing;
[0042] 2. Rotating body; 201. Connecting rod; 202. Flat section; 203. Rope threading hole;
[0043] 21. Rotating connection part; 22. Connection seat; 221. Inductive body; 222. Fixed end; 223. Flat hole; 3. Rope body; 4. Counterweight body; 401. Through hole; 5. Circuit board; 501. Button; 502. Counting sensor; 503. Display; 504. Charging interface; 505. Battery. Specific embodiments
[0044] To further understand the content of the present invention, the present invention will be described in detail in combination with the drawings and embodiments.
[0045] It should be noted that the terms "first", "second", etc. in the specification, claims and drawings of this application are used to distinguish similar objects, and do not necessarily need to be used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so as to implement the embodiments of the present application described here.
[0046] In this application, the orientation or positional relationships indicated by the terms "upper", "lower", "left", "right", "front", "rear", "top", "bottom", "inner", "outer", "middle", "vertical", "horizontal", "lateral", "longitudinal", etc. are based on the orientation or positional relationships shown in the drawings. These terms are mainly used to better describe this application and its embodiments, and are not used to limit that the indicated devices, elements, or components must have a specific orientation, or be constructed and operated in a specific orientation. Moreover, in addition to being able to represent orientation or positional relationships, some of the above terms may also be used to represent other meanings. For example, the term "upper" may also be used to represent a certain attachment relationship or connection relationship in some cases. For those of ordinary skill in the art, the specific meanings of these terms in this application can be understood according to specific circumstances.
[0047] A skipping rope handle provided in this embodiment, as a handle of a sports equipment, is mainly applied to be connected with a rope body for skipping rope exercise. Of course, in other cases, the skipping rope handle in this embodiment can also be used as a handle of other sports equipment, such as a grip strengthener, etc. This embodiment still takes skipping rope as an example for explanation.
[0048] As Figure 1 and 2 shown, a skipping rope handle provided includes a handle body 1. When performing skipping rope training, the hand of the trainer grips the handle body 1.
[0049] The handle body 1 includes a head section 11, a bending section 12, and a hand-held section 13, and the head section 11, the bending section 12, and the hand-held section 13 are connected in sequence from the head to the tail. Among them, the bending section 12 is bent, its upper end is connected to the head section 11, and its lower end is connected to the hand-held section 13. The axis line aa of the head section 11, the axis line bb of the bending section 12, and the axis line cc of the hand-held section 13 are located in the same plane.
[0050] Relative to the axis line aa of the head section 11, the axis line bb of the bending section 12 is bent towards the side away from the axis line aa of the head section 11 and forms an angle α between the axis line bb and the axis line aa, and the angle α is 45°; relative to the axis line bb of the bending section 12, the axis line cc of the hand-held section 13 is bent towards the side close to the axis line aa of the head section 11 and forms an angle β between the axis line cc and the axis line aa, and the angle β is 30°.
[0051] In other embodiments, the angles α and β can also be set to other values, but the angle α is not greater than 50°, and the angle β is not greater than the angle α.
[0052] Taking Figure 2Taking the middle azimuth as an example, specifically, the lower end of the head section 11 is connected to the bending section 12. Relative to the head section 11, the axis line bb of the bending section 12 bends towards the right. After the bending section 12 bends, it extends towards the handheld section 13 and is connected to the handheld section 13. Relative to the bending section 12, the axis line cc of the handheld section 13 bends towards the left, making the handle body 1 form a "Z" shape or a "lightning" shape.
[0053] Still taking Figure 1 and Figure 2 the view direction in as an example for description, the upper side of the bending section 12 is the second upper side 121, and the lower side is the second lower side 122. In this embodiment, the second upper side 121 is configured as the place where the thumb presses when the hand grasps, and the second lower side 122 is configured as the place where the index finger abuts when the hand grasps.
[0054] Taking the example of a trainer grasping with the right hand, the handheld section 13 in this skipping rope handle is the main part for hand grasping. When grasping with the right hand, the thumb presses on the second upper side 121 of the bending section 12, and the index finger abuts on the second lower side 122 of the bending section 12 and is close to the connection between the bending section 12 and the handheld section 13, so that the thumb and index finger of the hand clamp on the bent bending section 12. After the hand grasps the handle body 1, the handheld section 13 is located in the palm, and the remaining four fingers except the thumb grasp on the handheld section 13, and the thumb and index finger clamp on both sides of the bending section 12.
[0055] During the skipping process, usually the head section 11 in the handle body 1 faces the outside of the trainer's body, and the handheld section 13 faces the inside of the body. The force direction of the handle body 1 is the direction from the handheld section 13 towards the head section 11. In this embodiment, through the bent bending section 12 connected to the head section 11 and the handheld section 13, after the hand grasps the handle body 1, the thumb and index finger clamp the bending section 12, and the clamping force of the thumb and index finger can provide a block for the handle to slide or come out, so that the handle body 1 can be stably and firmly grasped in the trainer's hand. Similarly, the left hand grasping method of the trainer is the same as the right hand grasping method. Moreover, the shape of the handle body also enables the trainer to avoid the rope hitting the hand during the skipping process. During the skipping process, the hand mainly grasps at the handheld section 13, and the thumb presses on the bending section 12, and the rope is not easy to touch the hand.
[0056] The connections between the head section 11 and the bending section 12 and between the bending section 12 and the handheld section 13 are smoothly transitioned, making the grasping more comfortable. In this embodiment, the smooth transition is not limited to the arc-shaped transition method, but also includes the transition method connected by several chamfer lines, as long as there are no protruding edges at the connection.
[0057] As an implementation, the head segment 11, the bending segment 12, and the handheld segment 13 are integrally formed to form the handle body 1. The handle body 1 is made of plastic and can be formed by injection molding during integral forming. In other cases, the handle body 1 can also be made by 3D printing. Of course, in some cases, the head segment 11, the bending segment 12, and the handheld segment 13 can also be connected in other ways.
[0058] Combined Figure 3 As shown, the free end of the handheld segment 13 is the handle tail end 132. The outer shape of the handheld segment 13 is conical, and its cross-sectional area gradually increases from the handle tail end 132 to the connection between the bending segment 12 and the handheld segment 13. The handle tail end 132 is arc-shaped. Setting the outer shape of the handheld segment 13 as conical can, on the one hand, optimize the structure of the handle body 1 and reduce the use of raw materials; on the other hand, when the hand grasps the handle body 1, the main force points of the hand grasping are at the bending segment 12 and the upper part of the handheld segment 13. The handheld segment 13 is located at the palm of the hand. The closer the handheld segment 13 is to the handle tail end 132, the smaller its cross-sectional area, providing a certain movement space for the handheld segment 13 in the palm, facilitating the adjustment of the position of the handle body 1 in the hand and making it easy to adjust the handle body 1 to the most comfortable position for each trainer.
[0059] The handle body 1 is formed by an outer shell, and a space capable of accommodating other components is provided inside. A heart rate sensor 102 is provided at the outer shell where the bending segment 12 is located. Specifically, the heart rate sensor 102 is located on the second upper side 121 of the bending segment 12. One side of the heart rate sensor 102 is outside the outer shell, and the other side is connected to the circuit board 5 located inside the handle body 1, so that when the trainer's thumb presses on the second upper side 121, it can press on the heart rate sensor 102 for collecting the heart rate of the trainer and performing real-time heart rate collection and monitoring during the skipping training process.
[0060] Two buttons 101 are also provided on the handle body 1. By operating the buttons, the counting function of the skipping rope or the heart rate monitoring function of the skipping rope can be started. In other cases, one button 101 or other quantities can also be set. In this embodiment, the buttons 101 are set on the side close to the thumb fingertip when the hand grasps the handle body 1, facilitating the thumb to operate the buttons. More specifically, the buttons 101 are set at the head segment 11 or the bending segment 12 of the handle body 1, thus being close to the thumb.
[0061] A display screen 103 is also provided on the handle body 1. The display screen 103 can be used to display the skipping count and the real-time heart rate. The display screen 103 is located on the side close to the trainer during use, facilitating observation during training. More specifically, the display screen 103 is set at the handheld segment 13.
[0062] A circuit board 5 is disposed inside the handle body 1, and the heart rate sensor 102, the button 101, and the display screen 103 are all electrically connected to the circuit board 5.
[0063] In this embodiment, a connecting portion is provided at one end of the head segment 11. The connecting portion is connected to the rotating body 2, and the other end of the head segment 11 is connected to the bending segment 12. The rotating body 2 can rotate relative to the handle body 1, and the rotating body 2 is used to connect to the rope body 3. During the skipping process, each time the rope is skipped once, the rotating body 2 rotates one circle following the rope body 3, which can prevent the rope body 3 from being wound together. In other cases, the connecting portion at one end of the head segment 11 can also be a part of the head segment 11, and the connecting portion is integrally provided with the head segment 11, and the rope body 3 is directly connected to the connecting portion. The skipping rope handle in this way is relatively simple, but the rope body 3 is prone to winding during the skipping process.
[0064] Combined Figure 1 and Figure 3 As shown, the handle body 1 is formed by an outer shell, and a circuit board 5 is disposed inside the outer shell. In this embodiment, the rotating body 2 rotates relative to the handle body 1, and an induction body 221 is connected to the rotating body 2. One end of the circuit board 5 located inside the outer shell is provided with a counting sensor 502 for connecting to the induction body 221, and the other end of the circuit board 5 extends along the direction of the head segment 11, the bending segment 12, and the hand-held segment 13 to the handle tail end 132 of the handle body 1 in sequence. Here, the connection method between the counting sensor 502 and the induction body 221 is an inductive connection, and the two do not directly contact. The counting sensor 502 is disposed close to the induction body 221. During the rotation of the rotating body 2, the induction body 221 is driven to rotate synchronously. When the induction body 221 rotates to a position where it can be recognized by the counting sensor 502, the counting sensor 502 is triggered to transmit a signal and count once.
[0065] Combined Figure 4 and Figure 5 As shown, one end of the circuit board 5 extends to a position close to the rotating body 2, and the other end extends to the handle tail end 132 following the bending direction of the handle body 1. The shape of the handle body 1 is set such that, relative to the axis line aa of the head segment 11, the axis line bb of the bending segment 12 is bent toward the axis line aa of the head segment 11; relative to the axis line bb of the bending segment 12, the axis line cc of the hand-held segment 13 is bent toward the axis line bb of the bending segment 12 again. The circuit board 5 is also bent accordingly to adapt to the shape of the handle body 1, so as to maximize the use of the space inside the handle body 1 to reasonably layout the components on the circuit board 5 and make the structure of the handle body 1 more compact.
[0066] A rotating body 2 is provided on the handle body 1. Each time the skipping rope is used, the rotating body 2 rotates one circle. When the rotating body 2 rotates, it drives the sensing body 221 to rotate. The counting sensor 502 recognizes the sensing body 221 once and performs a count once, enabling the skipping rope handle in this embodiment to achieve a counting function and increasing the usage functions of the skipping rope handle.
[0067] The outer shell of the handle body 1 is provided as a split type. In this embodiment, the handle body 1 is split vertically along its axis. Specifically, the outer shell of the handle body 1 is split into a front shell 14 and a rear shell 15. The front shell 14 and the rear shell 15 can be connected by clamping, or by setting a fixing hole on the front shell 14 and a fixing pin on the rear shell 15, and the fixing hole and the fixing pin are fixed to each other for connection. The split type of the outer shell in the up-and-down manner is more convenient for the installation of the circuit board 5. However, in other cases, the split type of the outer shell is not limited to the up-and-down manner and can also be other ways.
[0068] Combined Figure 5 and Figure 6 As shown, in this embodiment, the circuit board 5 is located inside the front shell 14. In other embodiments, the circuit board 5 can also be arranged inside the rear shell 15.
[0069] Specifically in this embodiment, a second limiting rib 107 is provided on the front shell 14. The second limiting rib 107 is located inside the edge of the opening of the front shell, and the second limiting rib 107 is in a stepped shape. A fixing hole 108 is also provided on the rear shell 15. A protruding step is provided on the rear shell 15, and the fixing hole 108 is arranged on the step. When setting the circuit board 5, the circuit board 5 is located on the step, and the edge of the circuit board 5 is supported on the second limiting rib 107. Multiple stepped steps are provided on the second limiting rib 107. According to the different depths of the circuit board 5 located inside the front shell 14, the stepped steps on the second limiting rib 107 can adapt to support the edge of the circuit board 5, enabling the circuit board 5 to be stably installed inside the handle body 1.
[0070] The circuit board 5 is connected to the fixing hole 108 through a fixing member 104. The fixing member 104 can adopt a fastening screw, and the fastening screw passes through the circuit board 5 and is fixedly connected to the fixing hole 108.
[0071] Several first limiting ribs 106 are also arranged at intervals inside the edge of the opening of the front shell. The first limiting ribs 106 abut against the edge of the circuit board 5 to prevent the circuit board 5 from shaking inside the handle body 1. Moreover, the first limiting ribs 106 and the second limiting ribs 107 can also increase the structural strength of the outer shell.
[0072] A battery 505 connected to the circuit board 5 is also provided inside the handle body 1, and the battery 505 is located inside the handheld section 13. The battery 505 provides power for the circuit board 5 and other components inside the handle body 1. The battery 505 is arranged in the handheld section 13, which can balance the weight of the skipping rope handle, avoid the weight of the skipping rope handle concentrating on the upper part of the skipping rope handle, and prevent the upper part of the skipping rope handle from being overstressed during the skipping process and being easily thrown out of the hand.
[0073] A charging interface 504 is provided near the handle end 132 of the handheld section 13. The battery 505 is a rechargeable battery, and the charging interface 504 can be externally connected to a power source to charge the battery 505. In other cases, the charging interface 504 can also be arranged at other positions. In other embodiments, the charging interface 504 may not be provided, and the battery 505 is a replaceable battery.
[0074] Through holes for arranging the display screen 103 and the buttons 101 are formed on the front housing, so that while one side of the display screen 103 and the buttons 101 is electrically connected to the circuit board 5, the other side can extend out of the front housing through the through holes, for the trainer to operate the buttons 101 and observe the display screen 103. Button keys 501 are arranged at corresponding positions on the circuit board 5. When the buttons 101 are operated, the buttons 101 can trigger the button keys 501, thereby controlling the working conditions of the circuit board 5.
[0075] Through holes are also formed on the upper side surface of the bending section 12 for arranging the heart rate sensor 102. One side of the heart rate sensor 102 is connected to the circuit board 5, and the other side of the heart rate sensor 102 can extend out of the outer shell through the through hole, so that the thumb of the trainer can press the heart rate sensor 102 to collect the heart rate. A limiting groove 105 is arranged on the inner side of the outer shell near the through hole for installing the heart rate sensor 102. Specifically, the periphery of the heart rate sensor 102 is installed in the limiting groove 105 to limit and fix the heart rate sensor 102.
[0076] Combined Figure 7 、 Figure 8 and Figure 9 As shown in
[0077] One end of the connecting rod 201 is provided with a flat section 202, and both sides of the flat section 202 are planar. The flat section 202 is connected to the connecting seat 22, and the inductor 221 is located on the connecting seat 22. The connecting seat 22 includes a fixed end 222, and a flat hole 223 is formed in the fixed end 222. The flat hole 223 is in mating connection with the flat section 202. Through the mating connection between the flat section 202 on the connecting rod 201 and the flat hole 223 on the connecting seat 22, the connecting seat 22 can follow the rotating body 2 to rotate, and the phenomenon of slipping between the connecting seat 22 and the rotating body 2 is avoided. An auxiliary end is provided on one side of the fixed end 222, and the inductor 221 is arranged on the auxiliary end. While the connecting seat 22 follows the rotating body 2 to rotate, it drives the inductor 221 to rotate around the central axis of the rotating body 2.
[0078] Specifically, the inductor 221 is a magnetic body and can be a magnet. The counting sensor 502 uses a Hall sensor. As a magnetic field sensor, the Hall sensor can identify the magnet.
[0079] In one case, a rope passing hole 203 is provided on the rotating body 2. The rope passing hole 203 is a U-shaped hole, and one end of the rope body 3 passes through the rope passing hole 203 to be connected to the rotating body 2. The rope passing hole 203 is set as a U-shaped hole, which can fix the rope body 3 only through the rope passing hole 203 itself, and can also adjust the length of the skipping rope.
[0080] The present utility model also provides a skipping rope, which includes a first skipping rope handle and a second skipping rope handle. The first skipping rope handle is the skipping rope handle in the above, and the first skipping rope handle is usually grasped by the right hand of the trainer. In other cases, the second skipping rope handle can also be the skipping rope handle in the above, or both the first skipping rope handle and the second skipping rope handle are the skipping rope handles in the above.
[0081] In this embodiment, counterweights 4 are respectively connected to the first skipping rope handle and the second skipping rope handle. A relatively short rope body 3 is respectively connected to the first skipping rope handle and the second skipping rope handle through the rotating body 2, and the other end of the rope body 3 is connected to the counterweight 4 to form a cordless skipping rope.
[0082] In another case, the first skipping rope handle and the second skipping rope handle are connected by a rope body. The rope body 3 is set to be relatively long, and both ends of the rope body 3 are respectively connected to the first skipping rope handle and the second skipping rope handle through the rotating body 2 to form a corded skipping rope.
[0083] In this embodiment, the counterweight 4 is a hollow sphere, and a plurality of through holes 401 are formed on the surface of the sphere. The shape of the through holes 401 is in the shape of "lightning". Of course, in other cases, the through holes 401 can also be other shapes, such as circular holes. The through holes 401 are provided on the counterweight 4, which can be used for ventilation to reduce the wind resistance of the counterweight 4.
[0084] The head section 11 and the hand-held section 13 of the skipping rope handle adopted by this skipping rope are connected through a bent section 12, so that the head section 11 and the hand-held section 13 are not on the same straight line. When the trainer holds the skipping rope handle with the hand, the thumb and index finger are clamped on the bent section 12. When performing skipping rope training, the clamping force of the thumb and index finger can provide a barrier to prevent the handle from sliding or coming off, so that the handle body 1 can be firmly held in the trainer's hand stably.
[0085] A circuit board 5 is arranged inside the handle body 1 formed by the outer shell. One end of the circuit board 5 extends to a position close to the rotating body 2, and the other end extends to the end 132 of the handle body 1 following the bending direction of the handle body 1, maximizing the space inside the handle body 1 and making the structure of the handle body 1 more compact. Moreover, a counting sensor 502 is arranged at one end of the circuit board 5 close to the rotating body 2, enabling the skipping rope handle to achieve a counting function and increasing the usage functions of the skipping rope handle.
[0086] The terms "installed", "set up", "provided with", "connected" referred to herein should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or there can be internal communication between two devices, components or parts. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to specific circumstances.
[0087] The above schematically describes the present invention and its implementation manners. This description is not restrictive. What is shown in the drawings is only one of the implementation manners of the present invention, and the actual structure is not limited thereto. Therefore, if those of ordinary skill in the art are inspired by it and design similar structural manners and embodiments to this technical solution without creative work without departing from the creative purpose of the present invention, they shall fall within the protection scope of the present invention.
Claims
1. A skipping rope handle, comprising: The handle body (1) is in the shape of a rod, and comprises a head section (11), a bending section (12) and a hand-holding section (13) which are connected in sequence from the head to the tail; Features: The axis line aa of the head section (11), the axis line bb of the bending section (12) and the axis line cc of the hand-held section (13) are located on the same plane; Relative to the axis aa of the head section (11), the axis bb of the bending section (12) is bent toward a side away from the axis aa of the head section (11) so that an angle α is formed between the axis bb and the axis aa, and the angle α is not greater than 50°; Relative to the axis bb of the bending section (12), the axis cc of the hand-held section (13) is bent toward the axis aa of the head section (11) so that an angle β is formed between the axis cc and the axis aa, and the angle β is not greater than the angle α.
2. The skipping rope handle according to claim 1, characterized in that: The connection between the head section (11) and the bending section (12) and between the bending section (12) and the hand-held section (13) is smoothly transitioned.
3. The skipping rope handle according to claim 2, characterized in that: The head section (11), the bending section (12) and the hand-holding section (13) are integrally formed to form the handle body (1).
4. The skipping rope handle according to claim 2, characterized in that: The handle body (1) is split along its axis to form a front shell (14) and a rear shell (15), and the front shell (14) and the rear shell (15) are fixedly connected together.
5. The skipping rope handle according to any one of claims 1 to 4, characterized in that: The free end of the hand-held section (13) is a handle tail end (132), and the hand-held section (13) is conical, with a cross-sectional area gradually increasing from the handle tail end (132) to the connection between the bent section (12) and the hand-held section (13).
6. The skipping rope handle according to claim 4, characterized in that: A connecting portion is provided at one end of the head section (11), and the connecting portion is used to be connected to the rope body (3).
7. The skipping rope handle according to claim 6, characterized in that: The connecting portion is a rotating body (2), and the rotating body (2) is capable of rotating relative to the handle body (1).
8. The skipping rope handle according to claim 7, characterized in that: A support plate (109) is circumferentially arranged on the inner side of one end of the head section (11) close to the rotating body (2), and is used to fix and support the rotating body (2).
9. A skipping rope, characterized in that: It comprises a first skipping rope handle and a second skipping rope handle, wherein at least one of the first skipping rope handle and the second skipping rope handle is the skipping rope handle according to any one of claims 1 to 8; The first rope skipping handle and the second rope skipping handle are connected via a rope body (3); Alternatively, the first rope skipping handle and the second rope skipping handle are respectively connected to a counterweight body (4).
10. The skipping rope according to claim 9, characterized in that: The counterweight body (4) is a sphere with a hollow interior, and a plurality of through holes (401) are provided on the surface of the sphere.
Citation Information
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