Integrated electrocardio skipping rope
By setting electrodes on each handle of the jump rope and connecting them with the rope, the detection path between the electrodes is extended, solving the problem of inaccurate heart rate detection in existing jump ropes and improving the accuracy of heart rate monitoring.
Patent Information
- Application Number
- CN202422989228.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2034-12-05
AI Technical Summary
Existing jump ropes cannot accurately monitor heart rate changes, and the electrodes of existing integrated ECG jump ropes are too close together, resulting in inaccurate test results.
Electrodes are placed on each handle, and two electrodes are connected by a rope to increase the distance between the electrodes to extend the path of the electrical signal through the human body. Heart rate is detected using signal transmission components and a circuit board.
This technology improves the accuracy of heart rate detection during rope skipping by extending the detection length between electrodes.
Smart Images

Figure CN223774232U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of sports equipment, especially to an integrated ECG skipping rope. BACKGROUND
[0002] Skipping rope is a kind of sports equipment that people like to use in daily life, which is composed of a rope and a handle. The existing skipping rope has a single function, and cannot monitor the heart rate change in the skipping process, so it needs to be used with an external independent ECG device. There is also a skipping rope in the prior art that can monitor the heart rate change, for example, an integrated ECG skipping rope with the publication number CN 219023115 U, which mainly detects the heart rate by setting two electrodes on a handle. This results in a small potential difference between the two electrodes, and the detected result is not accurate. SUMMARY
[0003] The utility model aims at providing an integrated ECG skipping rope to solve the above problems. By setting electrodes on each handle and connecting the two electrodes through a rope, the distance between the electrodes is increased, and the heart rate during skipping can be measured more accurately.
[0004] To achieve the above purpose, the utility model provides the following scheme:
[0005] An integrated ECG skipping rope includes a first handle shell and a second handle shell. The first handle shell and the second handle shell are respectively connected with a rope connecting piece at the end. The two ends of the rope are respectively installed on the two rope connecting pieces. A signal line is arranged in the rope. Rotating blocks are respectively arranged in the first handle shell and the second handle shell. The rotating blocks are connected with the rope connecting pieces. Signal transmission components are arranged between the first handle shell, the second handle shell and the corresponding rotating blocks. Counting components are further arranged between the second handle shell and the corresponding rotating blocks. Signal docking components are arranged on the rope connecting pieces. A circuit board is arranged in the second handle shell. The counting components are electrically connected with the circuit board. A first electrode is embedded in the outer wall of the first handle shell. The first electrode is electrically connected with the circuit board through the signal transmission components, the signal docking components and the signal line on the first handle shell. A second electrode is embedded in the second handle shell. The second electrode is electrically connected with the circuit board. The circuit board is electrically connected with a battery and a signal transmission module.
[0006] Preferably, the signal transmission component comprises a plurality of conductive rings coaxially embedded in the outer wall of the rotating block, the plurality of conductive rings are distributed along the rotating block in equal intervals in the axial direction, a plurality of movable electrodes are slidably connected to the inner walls of the first handle shell and the second handle shell respectively, a sliding groove for the movable electrodes to move is formed on the first handle shell and the second handle shell, a second spring is arranged between the movable electrodes and the bottom wall of the sliding groove, the second spring on the second handle shell is electrically connected to the circuit board, and the second spring on the first handle shell is electrically connected to the first electrode.
[0007] Preferably, the signal transmission component comprises a signal connecting rope mounted on the rope connector, one end of a cable in the signal connecting rope is connected to the corresponding conductive ring, and the other end of the cable in the signal connecting rope is connected to a needle-shaped electrode; the needle-shaped electrode is provided in a mounting sleeve shell fixedly connected to the signal connecting rope; and the ends of the signal lines in the rope body are connected to the corresponding needle-shaped electrodes.
[0008] Preferably, each signal line of the rope body is connected to an electrode sleeve, and the needle-shaped electrode is inserted into the corresponding electrode sleeve.
[0009] Preferably, the counting component comprises a trigger block embedded in the side wall of the rotating block, two counting sliders are slidably connected to the inner wall of the second handle shell, a sliding groove for the counting sliders to slide is formed in the inner wall of the second handle shell, a first spring is arranged between the counting slider and the bottom wall of the sliding groove, the two first springs are connected to the circuit board, and the width of the trigger block can simultaneously contact the two counting sliders.
[0010] Preferably, the first handle shell is internally provided with a counterweight.
[0011] Preferably, a charging socket is embedded in the side wall of the second handle shell and electrically connected to the circuit board.
[0012] The utility model has the following technical effects:
[0013] When the rope skipping is performed, different handles are held respectively, at this time, the first electrode and the second electrode are respectively in contact with different palms, and the electrical signal can be transmitted from the first electrode, the signal transmission component, the signal docking component, the signal line in the rope body, the circuit board and the second electrode, and the left and right hands of the human body, so that the path of the electrical signal of the two electrodes through the human body is prolonged, and the detection length between the two electrodes is increased by using this mode, so that the heart rate detection result in the rope skipping process is more accurate. BRIEF DESCRIPTION OF DRAWINGS
[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed in the embodiments will be briefly introduced as follows. Obviously, the drawings described in the following embodiments are only some of the 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 these drawings.
[0015] Figure 1 It is a structural schematic diagram of the first handle shell of the present application.
[0016] Figure 2 It is a structural schematic diagram of the second handle shell of the present application.
[0017] Figure 3 It is a structural schematic diagram of the second handle shell of the present application. Figure 2 It is a sectional view structural schematic diagram of A-A in the present application.
[0018] Figure 4 It is a structural schematic diagram of the second handle shell of the present application. Figure 2 It is an enlarged structural schematic diagram of B in the present application.
[0019] Figure 5 It is an end surface structural schematic diagram of the rope body of the present application.
[0020] 1, first handle shell; 101, first electrode; 102, counterweight; 2, second handle shell; 201, second electrode; 3, rope connecting piece; 301, rotating block; 302, signal connecting rope; 303, mounting sleeve; 304, needle-shaped electrode; 305, trigger block; 306, conductive ring; 4, bearing; 5, circuit board; 501, battery; 502, charging socket; 6, rope; 601, electrode sleeve; 7, counting slider; 701, first spring; 8, movable electrode; 801, second spring. DETAILED DESCRIPTION
[0021] The technical solutions in the embodiments of the present application will be described clearly and completely in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0022] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the present application will be further described in detail in combination with the drawings and specific embodiments.
[0023] Reference Figures 1 to 5As shown, the embodiment provides an integrated ECG skipping rope, which comprises a first handle shell 1, a second handle shell 2, a rope connecting piece 3 rotatably connected to the end of the first handle shell 1 and the second handle shell 2, a rope 6 installed on the two rope connecting pieces 3 at both ends, a signal line arranged in the rope 6, a rotating block 301 arranged in the first handle shell 1 and the second handle shell 2, an axis connection between the rotating block 301 and the rope connecting piece 3, a signal transmission component arranged between the first handle shell 1 and the corresponding rotating block 301 and between the second handle shell 2 and the corresponding rotating block 301, a counting component arranged between the second handle shell 2 and the corresponding rotating block 301, a signal docking component arranged on the rope connecting piece 3, a circuit board 5 arranged in the second handle shell 2, an electrical connection between the counting component and the circuit board 5, a first electrode 101 embedded on the outer wall of the first handle shell 1, an electrical connection between the first electrode 101 and the circuit board 5 through the signal transmission component, the signal docking component and the signal line on the first handle shell 1, a second electrode 201 embedded on the outer shell of the second handle shell 2, an electrical connection between the second electrode 201 and the circuit board 5, and an electrical connection between the circuit board 5 and a battery 501 and a signal transmission module. The signal transmission module can be connected with a mobile terminal (mobile phone, tablet computer, etc.) through Bluetooth or WiFi to read the data of the skipping rope. A switch is connected to the circuit board 5 and installed on the second handle shell 2 to control the start and stop of the circuit board 5.
[0024] The corresponding rope connecting piece 3 is rotatably connected to the first handle shell 1 and the second handle shell 2 through a bearing 4.
[0025] When skipping rope, different handles are held, at this time, the first electrode 101 and the second electrode 201 are in contact with different palms, and the electrical signal can be transmitted from the first electrode 101, the signal transmission component, the signal docking component, the signal line in the rope, the circuit board 5 and the second electrode 201. The left and right hands of the human body transmit the electrical signal, which prolongs the path of the electrical signal of the two electrodes through the human body, so that the detection length between the two electrodes is increased, and the heart rate detection result in the skipping rope process is more accurate.
[0026] Further optimization scheme, the signal transmission component includes a plurality of conductive rings 306, a plurality of conductive rings 306 are coaxially embedded on the outer wall of the rotating block 301, a plurality of conductive rings 306 are distributed along the axis of the rotating block 301 at equal intervals, a plurality of movable electrodes 8 are slidably connected to the inner wall of the first handle shell 1 and the second handle shell 2, a plurality of sliding grooves are formed on the first handle shell 1 and the second handle shell 2 for the movement of the movable electrodes 8, a second spring 801 is arranged between the movable electrode 8 and the bottom wall of the sliding groove, the second spring 801 on the second handle shell 2 is electrically connected to the circuit board 5, and the second spring 801 on the first handle shell 1 is electrically connected to the first electrode 101.
[0027] By setting the cooperation between the conductive ring 306 and the movable electrode 8, the normal transmission of the signal during the rotation of the rope can be ensured.
[0028] Further optimization scheme, the signal transmission component includes a signal connecting rope 302 installed on the rope connector 3, one end of the cable in the signal connecting rope 302 is connected with the corresponding conductive ring 306, the other end of the cable in the signal connecting rope 302 is connected with a plurality of needle-shaped electrodes 304, the plurality of needle-shaped electrodes 304 are arranged in a mounting sleeve 303, the mounting sleeve 303 is fixedly connected with the signal connecting rope 302, and the ends of the signal lines in the rope 6 are connected with the corresponding needle-shaped electrodes 304 respectively.
[0029] Further optimization scheme, each signal line of the rope 6 is connected with an electrode sleeve 601, and the needle-shaped electrode 304 is inserted into the corresponding electrode sleeve 601. After the electrode sleeve 601 and the needle-shaped electrode 304 are docked, the mounting sleeve 303 is sleeved outside the end portion of the rope 6.
[0030] The electrode sleeve 601 is matched with the electrode sleeve 601, so that the circuit board 5 and the first electrode 101 are connected, and stable signal transmission between the first electrode 101 and the circuit board 5 is ensured.
[0031] Further optimization scheme, the counting component includes a trigger block 305 embedded in the side wall of the rotating block 301, two counting sliding blocks 7 are slidably connected to the inner wall of the second handle shell 2, a sliding groove is formed in the inner wall of the second handle shell 2 for the sliding of the counting sliding blocks 7, a first spring 701 is arranged between the counting sliding block 7 and the bottom wall of the sliding groove, and the two first springs 701 are connected with the circuit board 5. The width of the trigger block 305 can simultaneously contact the two counting sliding blocks 7.
[0032] The trigger block 305 simultaneously contacts the two counting sliding blocks 7 during the rotation of the rope 6 by one turn, and at this time, the count is one, so that the signal is transmitted to the circuit board 5 to realize the counting function of the skipping rope.
[0033] Further optimization scheme, the first handle shell 1 is internally provided with a counterweight 102. The purpose of arranging the counterweight 102 is to make the weights of the first handle shell 1 and the second handle shell 2 the same.
[0034] Further optimization scheme, the side wall of the second handle shell 2 is embedded with a charging jack 502, and the charging jack 502 is electrically connected with the circuit board 5.
[0035] In the description of the utility model, it should be understood that the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like is the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the utility model, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore it cannot be understood as a limitation on the utility model.
[0036] The above-described embodiments are only to describe the preferred modes of the present application, and are not intended to limit the scope of the present application. Without departing from the design spirit of the present application, various modifications and improvements to the technical solutions of the present application made by those of ordinary skill in the art shall fall within the protection scope determined by the claims of the present application.
Claims
1. An integrated ECG jump rope, characterized by, The utility model provides a kind of rope handle, including first handle shell (1), second handle shell (2), the first handle shell (1), second handle shell (2) end is rotatably connected with rope connecting piece (3) respectively, rope (6) two ends are respectively installed on two the rope connecting piece (3), signal line is located in the rope (6), the first handle shell (1), second handle shell (2) inside is rotatably connected with the rope connecting piece (3) respectively, signal transmission component is equipped between the first handle shell (1), second handle shell (2) and corresponding the rotatable block (301), second handle shell (2) and corresponding the rotatable block (301) between still be equipped with counting component, signal docking component is equipped on the rope connecting piece (3), second handle shell (2) is equipped with circuit board (5), the counting component is electrically connected with the circuit board (5), first electrode (101) is embedded in the first handle shell (1) outer side wall, and the first electrode (101) is electrically connected with the circuit board (5) by the signal transmission component, signal docking component, signal line on the first handle shell (1), second electrode (201) is embedded in the second handle shell (2) shell, and the second electrode (201) is electrically connected with the circuit board (5), and the circuit board (5) is electrically connected with battery (501), signal transmission module.
2. The integrated ECG jump rope of claim 1, wherein, The signal transmission component includes a plurality of conductive rings (306), a plurality of conductive rings (306) are coaxially embedded in the outer side wall of the rotatable block (301), the plurality of conductive rings (306) are distributed equidistantly along the axial direction of the rotatable block (301), a plurality of movable electrodes (8) are slidably connected to the inner walls of the first handle shell (1) and the second handle shell (2) respectively, a sliding groove is formed in the first handle shell (1) and the second handle shell (2) for the movement of the movable electrodes (8), a second spring (801) is arranged between the movable electrodes (8) and the bottom wall of the sliding groove, the second spring (801) on the second handle shell (2) is electrically connected to the circuit board (5), and the second spring (801) on the first handle shell (1) is electrically connected to the first electrode (101).
3. The integrated ECG jump rope of claim 2, wherein, The signal transmission component includes a signal connecting rope (302) installed on the rope connecting piece (3), one end of the cable in the signal connecting rope (302) is connected to the corresponding conductive ring (306), the other end of the cable in the signal connecting rope (302) is connected to a needle-shaped electrode (304), the needle-shaped electrode (304) is a plurality of, and the plurality of needle-shaped electrodes (304) are arranged in a mounting sleeve shell (303), the mounting sleeve shell (303) is fixedly connected to the signal connecting rope (302), and the ends of the signal lines in the rope (6) are respectively connected to the corresponding needle-shaped electrodes (304).
4. The integrated ECG jump rope of claim 3, wherein, Each signal line of the rope (6) is connected to an electrode sleeve (601), and the needle-shaped electrode (304) is inserted into the corresponding electrode sleeve (601).
5. The integrated ECG pacer of claim 1, wherein, The counting component comprises a trigger block (305) embedded in the side wall of the rotating block (301), two counting sliders (7) are slidably connected to the inner wall of the second handle shell (2), a sliding groove is formed in the inner wall of the second handle shell (2) and used for the sliding of the counting slider (7), a first spring (701) is arranged between the counting slider (7) and the bottom wall of the sliding groove, the two first springs (701) are connected with the circuit board (5), and the width of the trigger block (305) can be in contact with the two counting sliders (7) at the same time.
6. The integrated ECG jump rope of claim 1, wherein, The first handle shell (1) is internally provided with a counterweight (102).
7. The integrated ECG jump rope of claim 1, wherein, The side wall of the second handle shell (2) is embedded with a charging socket (502), and the charging socket (502) is electrically connected with the circuit board (5).
Citation Information
Patent Citations
Integrated electrocardio skipping rope
CN219023115U