Flutter inducing instrument
By designing an electrode assembly that is easy to fold and store and a vibrator with a manually controlled switch, the problem of large size and inconvenient operation of existing electric vibrator electrodes is solved, and portability and operating efficiency are improved.
Patent Information
- Application Number
- CN202422708246.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-07
AI Technical Summary
Existing electrostimulation electrodes are bulky and inconvenient to operate, making them difficult for operators to carry and use.
A tremor induction device is designed, which includes an electrode assembly, an energy storage battery and a storage box. The electrode assembly consists of a first electrode, a second electrode, a cable and a control switch. The electrode assembly can be folded and stored in the storage box. The control switch is easy to operate manually, and the cable is directly connected to the energy storage battery.
The small and compact structure of the induced vibration instrument is realized, which is convenient for the operator to manually control the discharge and improves the operation efficiency and portability.
Smart Images

Figure CN223392768U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of medical equipment, and more specifically, to a vibrator inducing device. Background Art
[0002] During medical clinical trials, it's often necessary to induce abnormal heart rhythms in experimental subjects to simulate diseased heart rhythms, thereby verifying the safety and effectiveness of medical devices or drugs. The most common procedure involves inducing ventricular fibrillation in experimental subjects. For example, when conducting animal experiments with defibrillators and automated external defibrillators (AEDs), it's essential to induce a defibrillable heart rhythm (typically ventricular fibrillation) in the animal to ensure the device has a target for treatment and triggers the defibrillation procedure. Therefore, inducing ventricular fibrillation (VF) in these animal experiments is a critical step in experimental preparation.
[0003] Electrically induced defibrillation is an effective method for inducing ventricular fibrillation in animals with minimal disturbance. However, currently available electrical defibrillation electrodes are generally bulky and require a host device to control discharge, which is inconvenient for operators to use, can easily lead to induction failure, and is also difficult to carry.
[0004] Therefore, how to design a vibrator inducing device to facilitate the operator's carrying and use has become a technical problem that needs to be solved urgently by those skilled in the art. Utility Model Content
[0005] In view of this, the purpose of the present invention is to provide a vibrator inducing device to facilitate the operator to carry and use.
[0006] To achieve the above objectives, the present invention provides the following technical solutions:
[0007] A tremor induction device, comprising an electrode assembly, an energy storage battery and a storage box, wherein the electrode assembly comprises a first electrode, a second electrode, a first cable, a second cable and a control switch;
[0008] The first electrode includes a first metal electrode, a first insulating sleeve, and a first handle, wherein the first insulating sleeve is sleeved on the outside of the first metal electrode, the first cable is electrically connected between the first metal electrode and the energy storage battery, the first handle is connected to the proximal end of the first metal electrode and sleeved on the outside of the first cable, and the control switch is provided on the first handle and is used to control the on and off of the first metal electrode and the first cable;
[0009] The second electrode includes a second metal electrode, a second insulating sleeve, and a second handle, wherein the second insulating sleeve is sleeved outside the second metal electrode, the second cable is electrically connected between the second metal electrode and the energy storage battery, and the second handle is connected to the proximal end of the second metal electrode and sleeved outside the second cable;
[0010] The storage box has a first storage space and a second storage space that are independent of each other. The electrode assembly is used to be stored in the first storage space, and the energy storage battery is used to be stored in the second storage space.
[0011] Optionally, in the above-mentioned induced vibration instrument, at least one of a cable fixing member, a fixing buckle and a magnetic member is provided in the first accommodation space;
[0012] The two cable fixing members are used for winding the first cable and the second cable, and at least one of the cable fixing members is slidably disposed on an adjustment track so that the distance between the two cable fixing members can be adjusted;
[0013] There are at least two fixing buckles, which are used to form a first clamping position and a second clamping position for clamping and fixing the first handle and the second handle respectively;
[0014] There are at least two magnetic components, which are used to absorb and fix the first metal electrode and the second metal electrode respectively.
[0015] Optionally, in the above-mentioned tremor induction device, a relief hole for avoiding the control switch is provided on the first engaging position.
[0016] Optionally, in the above-mentioned tremor induction device, the first handle includes:
[0017] a first handle upper shell, wherein a switch mounting hole is formed on the first handle upper shell, and a first mounting boss is provided at a distal end of the first handle upper shell;
[0018] A first handle lower shell is connected to the first handle upper shell to form a first installation space. The control switch is disposed in the first installation space and exposed in the first installation space at the switch installation hole. The first metal electrode and the first cable are electrically connected in the first installation space. A second mounting boss is disposed at the distal end of the first handle lower shell. The first mounting boss and the second mounting boss together form a first installation channel for compressing the first metal electrode and the first insulating sleeve.
[0019] a first sleeve, sleeved outside the first mounting boss and the second mounting boss, and connecting the first mounting boss and the second mounting boss;
[0020] The first sheath is sleeved on the outside of the first cable and connected to the proximal end of the upper shell of the first handle.
[0021] Optionally, in the above-mentioned oscillation induction device, a first clamping protrusion is provided on the proximal circumferential outer wall of each of the first mounting boss and the second mounting boss;
[0022] A first clamping ring groove for the first clamping protrusion to be embedded in is formed on the proximal circumferential inner wall of the first sleeve.
[0023] Optionally, in the above-mentioned tremor induction device, a first positioning boss is provided on the distal end of the first sheath, and a first positioning groove for the first positioning boss to be embedded in is provided on the proximal end of the first handle upper shell; and / or,
[0024] A first limiting protrusion is provided at the proximal end of the first handle lower shell, and a first limiting hole for the first limiting protrusion to be embedded is provided on the middle vertical surface of the first handle upper shell.
[0025] Optionally, in the above-mentioned tremor induction device, the second handle includes:
[0026] a second handle upper shell, wherein a third mounting boss is provided at a distal end of the second handle upper shell;
[0027] A second handle lower shell is connected to the second handle upper shell to form a second installation space, the second metal electrode and the second cable are electrically connected in the second installation space, a fourth mounting boss is provided at the distal end of the second handle lower shell, and the third mounting boss and the fourth mounting boss together form a second installation channel for compressing the second metal electrode and the second insulating sleeve;
[0028] a second sleeve, sleeved outside the third mounting boss and the fourth mounting boss, and connecting the third mounting boss and the fourth mounting boss;
[0029] The second sheath is sleeved on the outside of the second cable and connected to the proximal end of the upper shell of the second handle.
[0030] Optionally, in the above-mentioned oscillation induction device, the proximal circumferential outer walls of the third mounting boss and the fourth mounting boss are both provided with second clamping protrusions;
[0031] A second snap ring groove for the second snap protrusion to be embedded in is formed on the proximal circumferential inner wall of the second sleeve.
[0032] Optionally, in the above-mentioned tremor induction device, a second positioning boss is provided at the distal end of the second sheath, and a second positioning groove for the second positioning boss to be embedded in is provided at the proximal end of the second handle upper shell; and / or,
[0033] A second limiting protrusion is provided at the proximal end of the second handle lower shell, and a second limiting hole for the second limiting protrusion to be embedded is provided on the middle vertical surface of the second handle upper shell.
[0034] Optionally, in the above-mentioned induced tremor device, the electrode assembly is made of high-temperature resistant material.
[0035] The induction vibrator provided by the present invention includes an electrode assembly, an energy storage battery, and a storage box. The electrode assembly includes a first electrode, a second electrode, a first cable, a second cable, and a control switch. The first electrode includes a first metal electrode, a first insulating sleeve, and a first handle. The first cable is electrically connected between the first metal electrode and the energy storage battery. The first handle is connected to the proximal end of the first metal electrode and is sleeved outside the first cable. The control switch is provided on the first handle and is used to control the on and off of the first metal electrode and the first cable. The first insulating sleeve is sleeved outside the first metal electrode. The second electrode includes a second metal electrode, a second insulating sleeve, and a second handle. The second cable is electrically connected between the second metal electrode and the energy storage battery. The second handle is connected to the proximal end of the second metal electrode and is sleeved outside the second cable. The second insulating sleeve is sleeved outside the second metal electrode. The storage box has a first storage space and a second storage space that are independent of each other. The electrode assembly is used to be stored in the first storage space, and the energy storage battery is used to be stored in the second storage space.
[0036] Compared with the existing technology, the induction vibrator provided by the utility model has a small and compact structure and high reliability; the provision of the first handle and the second handle facilitates the operator to manually hold the first electrode and the second electrode for operation; a control switch is provided on the first handle to control whether the first metal electrode is energized, so that the operator can control the discharge by himself without the need for other operators to press the discharge button on the host side, thereby improving the operating efficiency; in addition, the first cable and the second cable are electrically connected to the energy storage battery, and the energy storage battery can directly supply power to the first electrode and the second electrode, and the storage box can store the electrode assembly and the energy storage battery, which is convenient for the operator to carry and use. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0038] Figure 1 This is a schematic diagram of the structure of the vibration inducing device disclosed in the embodiment of the utility model. Figure 1 ;
[0039] Figure 2This is a schematic diagram of the structure of the vibration inducing device disclosed in the embodiment of the utility model. Figure 2 ;
[0040] Figure 3 for Figure 2 Cross-section at the middle BB;
[0041] Figure 4 for Figure 3 A partial enlarged view of the M in the middle;
[0042] Figure 5 for Figure 2 Cross-section at AA in the middle;
[0043] Figure 6 for Figure 5 A local enlarged view of point N in the middle;
[0044] Figure 7 A cross-sectional view of the second electrode disclosed in an embodiment of the present utility model;
[0045] Figure 8 This is a schematic structural diagram of the first metal electrode disclosed in an embodiment of the present utility model;
[0046] Figure 9 This is a schematic structural diagram of the first handle upper shell disclosed in an embodiment of the utility model;
[0047] Figure 10 This is a schematic structural diagram of the second handle upper shell disclosed in an embodiment of the present utility model.
[0048] Figure 11 This is a schematic diagram of the storage box disclosed in the embodiment of the utility model Figure 1 ;
[0049] Figure 12 This is a schematic diagram of the storage box disclosed in the embodiment of the utility model Figure 2 .
[0050] Among them, 100 is the first electrode, 110 is the first metal electrode, 111 is the fixing handle, 112 is the circular discharge part, 113 is the screw mounting hole, 120 is the first insulating sleeve, 130 is the first handle, 131 is the first handle upper shell, 1311 is the first mounting boss, 1312 is the switch mounting hole, 132 is the first handle lower shell, 133 is the first sleeve, 1331 is the first clamping ring groove, and 134 is the first sheath;
[0051] 200 is the second electrode, 210 is the second metal electrode, 220 is the second insulating sleeve, 230 is the second handle, 231 is the second handle upper shell, 2311 is the third mounting boss, 2312 is the second limiting hole, 232 is the second handle lower shell, 2321 is the second limiting protrusion, 233 is the second sleeve, 234 is the second sheath, and 2341 is the second positioning boss;
[0052] 300 is a control switch, 301 is a terminal block, 310 is a first cable, 311 is a second cable, and 312 is a connector;
[0053] 400 is the energy storage battery;
[0054] 500 is a storage box, 510 is a cable fixing part, 511 is an adjustment track, 520 is a fixing buckle, 530 is an avoidance hole, and 540 is a magnetic part. DETAILED DESCRIPTION
[0055] The core of the utility model is to disclose a tremor inducing device, which is convenient for operators to carry and use.
[0056] The following embodiments are described with reference to the accompanying drawings. The embodiments described below do not limit the scope of the utility model as set forth in the claims. Furthermore, the entire contents of the components described in the following embodiments are not necessarily required to provide the solutions described in the claims. It should be noted that, for ease of description, only the portions relevant to the utility model are shown in the accompanying drawings. The embodiments and features of the embodiments of the present utility model may be combined with one another unless there is a conflict.
[0057] During use of the induction device of the present invention, the end closest to the heart to be inducing induction is defined as the distal end, and the end further from the heart to be inducing induction is defined as the proximal end. In addition, except for the structure of the control switch 300, the structures of the first electrode 100 and the second electrode 200 and the accompanying drawings can be referred to in conjunction with each other.
[0058] Combine Figures 1-12The inducible vibrator disclosed in the present invention includes an electrode assembly, an energy storage battery 400 and a storage box 500. The electrode assembly includes a first electrode 100, a second electrode 200, a first cable 310, a second cable 311 and a control switch 300; the first electrode 100 includes a first metal electrode 110, a first insulating sleeve 120 and a first handle 130. The first cable 310 is electrically connected between the first metal electrode 110 and the energy storage battery 400. The first handle 130 is connected to the proximal end of the first metal electrode 110 and is sleeved outside the first cable 310. The control switch 300 is set on the first handle 130 and is used to control the on and off of the first metal electrode 110 and the first cable 310. The first insulating sleeve 120 is sleeved outside the first metal electrode 110. The second electrode 200 includes a second metal electrode 210, a second insulating sleeve 220, and a second handle 230. The second cable 311 is electrically connected between the second metal electrode 210 and the energy storage battery 400. The second handle 230 is connected to the proximal end of the second metal electrode 210 and is sleeved over the second cable 311. The second insulating sleeve 220 is sleeved over the second metal electrode 210. The storage box 500 has a first and second independent storage space. The electrode assembly is stored in the first storage space, and the energy storage battery 400 is stored in the second storage space.
[0059] Compared with the prior art, the induction vibrator disclosed in the present invention has a small and compact structure and high reliability; the provision of the first handle 130 and the second handle 230 facilitates the operator to manually hold the first electrode 100 and the second electrode 200 for operation; a control switch 300 is provided on the first handle 130 to control whether the first metal electrode 110 is energized, so that the operator can control the discharge by himself without the need for other operators to press the discharge button on the host side, thereby improving operating efficiency; in addition, the first cable 310 and the second cable 311 are electrically connected to the energy storage battery 400, and the energy storage battery 400 can directly supply power to the first electrode 100 and the second electrode 200, and the storage box 500 can store the electrode assembly and the energy storage battery 400, thereby improving the portability of the induction vibrator and expanding its application scenarios.
[0060] Combine Figure 1 The first cable 310 and the second cable 311 are electrically connected to the energy storage battery 400 through the connector 312 .
[0061] Combine Figure 11 and Figure 12At least one of a cable fixing component 510, a fixing buckle 520 and a magnetic component 540 is provided in the first accommodation space; wherein, the two cable fixing components 510 are used for winding the first cable 310 and the second cable 311, and at least one cable fixing component 510 is slidably provided on the adjustment rail 511 so that the spacing between the two cable fixing components 510 can be adjusted to adapt to the winding of the first cable 310 and the second cable 311 of different lengths; there are at least two fixing buckles 520, which are used to respectively form a first clamping position and a second clamping position for clamping the first handle 130 and the second handle 230; there are at least two magnetic components 540, which are used to respectively adsorb and fix the first metal electrode 110 and the second metal electrode 210.
[0062] Furthermore, a relief hole 530 for avoiding the control switch 300 is provided on the first engaging position. The provision of the relief hole 530 can effectively prevent the control switch 300 from affecting the placement of the first electrode 100 .
[0063] In addition, the storage box 500 is also provided with handles and other components for the operator to carry.
[0064] Combine Figure 3 In a specific embodiment disclosed in the present utility model, the first handle 130 includes a first handle upper shell 131 , a first handle lower shell 132 , a first sleeve 133 and a first sheath 134 . A switch mounting hole 1312 is provided on the first handle upper shell 131, and a first mounting boss 1311 is provided at the distal end of the first handle upper shell 131. The first handle lower shell 132 is connected to the first handle upper shell 131 to form a first mounting space. The control switch 300 is provided in the first mounting space and exposed in the first mounting space at the switch mounting hole 1312 for operation by the operator; the first metal electrode 110 and the first cable 310 are electrically connected in the first mounting space, and a second mounting boss is provided at the distal end of the first handle lower shell 132. The first mounting boss 1311 and the second mounting boss are combined to form a first mounting channel for pressing the first metal electrode 110 and the first insulating sleeve 120; the first sleeve 133 is sleeved on the outside of the first mounting boss 1311 and the second mounting boss to connect the first mounting boss 1311 and the second mounting boss, thereby realizing the connection between the first handle upper shell 131 and the first handle lower shell 132. The first sheath 134 is sleeved over the first cable 310 and connected to the proximal end of the first handle upper shell 131 for fixing the first cable 310 to prevent the first handle 130 from moving on the first cable 310 .
[0065] Combine Figure 8The first metal electrode 110 includes a fixed handle 111 extending into the first mounting channel and a circular discharge portion 112 for inducing vibration. A first insulating sleeve 120 with a uniform wall thickness fits snugly over the first metal electrode 110. The proximal end of the fixed handle 111 is exposed through the first insulating sleeve 120 for electrical connection with the first cable 310, while a side surface of the circular discharge portion 112 is exposed through the first insulating sleeve 120 for inducing vibration. The fixed handle 111 has a screw mounting hole 113, through which the first metal electrode 110 is screwed to the first handle upper shell 131.
[0066] The structures of the second metal electrode 210 and the first metal electrode 110 can refer to each other, and the structures of the first insulating sleeve 120 and the second insulating sleeve 220 can refer to each other, which will not be repeated here.
[0067] In a further optimization, first engaging projections are provided on the proximal circumferential outer walls of both the first mounting boss 1311 and the second mounting boss. A first engaging ring groove 1331 is provided on the proximal circumferential inner wall of the first sleeve 133, into which the first engaging projections engage. The engaging engagement between the first engaging projections and the first engaging ring groove 1331 provides a more secure connection between the first sleeve 133 and the first mounting boss 1311 and the second mounting boss.
[0068] A first positioning boss is protruding from the distal end of the first sleeve 134, and a first positioning groove is provided at the proximal end of the first handle upper shell 131 for the first positioning boss to be axially embedded in. The connection between the first sleeve 134 and the first handle upper shell 131 can be achieved by fitting the first positioning boss and the first positioning groove.
[0069] The first sleeve 133 realizes the connection between the distal ends of the first handle upper shell 131 and the first handle lower shell 132 by connecting the first mounting boss 1311 and the second mounting boss. In order to realize the connection between the proximal ends of the first handle upper shell 131 and the first handle lower shell 132, a first limiting protrusion is provided at the proximal end of the first handle lower shell 132, and a first limiting hole for the first limiting protrusion to be embedded is provided correspondingly at the middle vertical position of the first handle upper shell 131.
[0070] The control switch 300 preferably employs a waterproof structure to effectively extend its service life. The control switch 300 includes components such as a switch fixing bracket and a button cap. It is electrically connected to the first metal electrode 110 via a terminal block 301 and is fixed to the first handle upper shell 131 via screws. The specific structure and operating mechanism of the control switch 300 are conventional and will not be further described here.
[0071] In a specific embodiment disclosed in the present invention, the second handle 230 includes a second handle upper shell 231, a second handle lower shell 232, a second sleeve 233 and a second sheath 234. Figure 10 A third mounting boss 2311 is provided at the distal end of the second handle upper shell 231; the second handle lower shell 232 is connected to the second handle upper shell 231 and forms a second mounting space, the second metal electrode 210 and the second cable 311 are electrically connected in the second mounting space, and a fourth mounting boss is provided at the distal end of the second handle lower shell 232. The third mounting boss 2311 and the fourth mounting boss are enclosed and combined to form a second mounting channel for pressing the second metal electrode 210 and the second insulating sleeve 220; the second sleeve 233 is sleeved on the outside of the third mounting boss 2311 and the fourth mounting boss to connect the third mounting boss 2311 and the fourth mounting boss and press the second metal electrode 210 and the second insulating sleeve 220. The second sheath 234 is sleeved on the second cable 311 and connected to the proximal end of the second handle upper shell 231, which is used to fix the second handle 230 on the second cable 311 to prevent movement.
[0072] To ensure a secure connection between the second sleeve 233 and the third and fourth mounting bosses 2311 and 2311, second engaging projections are provided on the proximal circumferential outer walls of the third and fourth mounting bosses. A second engaging ring groove, into which the second engaging projections fit, is defined on the proximal circumferential inner wall of the second sleeve 233. The interlocking fit between the second engaging ring groove and the second engaging projection ensures a secure connection between the second sleeve 233 and the third and fourth mounting bosses 2311 and 2311.
[0073] Further, combined with Figure 6 The distal end of the second sheath 234 is provided with a second positioning boss 2341, and the proximal end of the second handle upper shell 231 is provided with a second positioning groove for the second positioning boss 2341 to be axially embedded. The second positioning boss 2341 is cylindrical.
[0074] Combine Figure 7 The proximal end of the second handle lower shell 232 is provided with a second limiting protrusion 2321 for embedding into the second handle upper shell 231, and the middle vertical position of the second handle upper shell 231 is provided with a second limiting hole 2312 for embedding the second limiting protrusion 2321. Figure 10 The second limiting protrusion 2321 can be semicircular and can be one or more in number.
[0075] To facilitate high-temperature sterilization, the electrode assembly is made of high-temperature resistant materials, allowing it to withstand high-temperature steam sterilization without damage. The inducible vibrator disclosed in this utility model not only meets normal discharge requirements but also features a manual on / off control function. It also offers the advantages of being compact and resistant to high-temperature steam sterilization.
[0076] The assembly process of the present invention is as follows: the first insulating sleeve 120 and the second insulating sleeve 220 are respectively covered on the first metal electrode 110 and the second metal electrode 210 in advance, and then the first sleeve 133 and the second sleeve 233 are respectively sleeved on the fixing handles of the first metal electrode 110 and the second metal electrode 210, and the terminal 301 is fixed to the first metal electrode 110 and the second metal electrode 210 with screws, and then the assembled components are respectively fixed to the first handle upper shell 131 and the second handle upper shell 231 with screws. Further, place the control switch 300 on the first handle upper shell 131 and fix it, then cover the button cap on the switch mounting hole 1312; respectively put the first sheath 134 and the second sheath 234 on the first cable 310 and the second cable 311, and respectively install the first sheath 134 and the second sheath 234 to the proximal ends of the first handle upper shell 131 and the second handle upper shell 231 until the first positioning boss and the second positioning boss 2341 are fully inserted into the first positioning groove and the first positioning groove, and the wiring is completed at the same time; respectively install the first handle lower shell 132 and the second handle lower shell 232 Install it on the first handle upper shell 131 and the second handle upper shell 231, and make the first limiting protrusion and the second limiting protrusion 2321 respectively snap into the first limiting hole and the second limiting hole 2312; put the first sleeve 133 on the outside of the first mounting boss 1311 and the second mounting boss, and make the first clamping protrusion embedded in the first clamping ring groove 1331, and put the second sleeve 233 on the outside of the third mounting boss 2311 and the fourth mounting boss, and make the second clamping protrusion embedded in the second clamping ring groove, finally connect the first cable 310 and the second cable 311 to the energy storage battery 400 to complete the assembly.
[0077] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Specific technical means in some embodiments may be incorporated in part or in whole into another embodiment, unless expressly excluded by another embodiment. Therefore, the present invention will not be limited to the embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A tremor inducing device, characterized in that: It comprises an electrode assembly, an energy storage battery (400) and a storage box (500), wherein the electrode assembly comprises a first electrode (100), a second electrode (200), a first cable (310), a second cable (311) and a control switch (300); The first electrode (100) comprises a first metal electrode (110), a first insulating sleeve (120) and a first handle (130), wherein the first insulating sleeve (120) is sleeved on the outside of the first metal electrode (110), the first cable (310) is electrically connected between the first metal electrode (110) and the energy storage battery (400), the first handle (130) is connected to the proximal end of the first metal electrode (110) and sleeved on the outside of the first cable (310), and the control switch (300) is provided on the first handle (130) and is used to control the on / off of the first metal electrode (110) and the first cable (310); The second electrode (200) comprises a second metal electrode (210), a second insulating sleeve (220) and a second handle (230), wherein the second insulating sleeve (220) is sleeved outside the second metal electrode (210), the second cable (311) is electrically connected between the second metal electrode (210) and the energy storage battery (400), and the second handle (230) is connected to the proximal end of the second metal electrode (210) and sleeved outside the second cable (311); The storage box (500) has a first accommodating space and a second accommodating space that are independent of each other; the electrode assembly is used to be stored in the first accommodating space, and the energy storage battery (400) is used to be stored in the second accommodating space.
2. The tremor inducing device according to claim 1, wherein: At least one of a cable fixing member (510), a fixing buckle (520) and a magnetic member (540) is provided in the first accommodation space; The two cable fixing members (510) are used for winding the first cable (310) and the second cable (311), and at least one of the cable fixing members (510) is slidably arranged on an adjustment track (511) so that the distance between the two cable fixing members (510) can be adjusted; There are at least two fixing buckles (520), which are used to respectively form a first clamping position and a second clamping position for clamping and fixing the first handle (130) and the second handle (230); There are at least two magnetic attracting members (540), and they are used to respectively attract and fix the first metal electrode (110) and the second metal electrode (210).
3. The tremor inducing device according to claim 2, wherein: The first engaging position is provided with an avoidance hole (530) for avoiding the control switch (300).
4. The tremor inducing device according to claim 1, wherein: The first handle (130) comprises: A first handle upper shell (131), wherein a switch mounting hole (1312) is provided on the first handle upper shell (131), and a first mounting boss (1311) is provided at the distal end of the first handle upper shell (131); A first handle lower shell (132) is connected to the first handle upper shell (131) to form a first installation space, the control switch (300) is arranged in the first installation space and exposed to the first installation space at the switch installation hole (1312), the first metal electrode (110) and the first cable (310) are electrically connected in the first installation space, a second installation boss is provided at the distal end of the first handle lower shell (132), the first installation boss (1311) and the second installation boss enclose a first installation channel for pressing the first metal electrode (110) and the first insulating sleeve (120); a first sleeve (133) sleeved outside the first mounting boss (1311) and the second mounting boss, and connecting the first mounting boss (1311) and the second mounting boss; The first sheath (134) is sleeved on the outside of the first cable (310) and connected to the proximal end of the first handle upper shell (131).
5. The tremor inducing device according to claim 4, characterized in that: A first clamping protrusion is provided on the proximal circumferential outer wall of the first mounting boss (1311) and the second mounting boss; A first snap ring groove (1331) for the first snap protrusion to be embedded in is provided on the proximal circumferential inner wall of the first sleeve (133).
6. The tremor inducing device according to claim 4, characterized in that: The distal end of the first sheath (134) is provided with a first positioning boss, and the proximal end of the first handle upper shell (131) is provided with a first positioning groove for the first positioning boss to be embedded in; and / or, A first limiting protrusion is provided at the proximal end of the first handle lower shell (132), and a first limiting hole for the first limiting protrusion to be embedded is provided on the middle vertical surface of the first handle upper shell (131).
7. The tremor inducing device according to claim 1, wherein: The second handle (230) comprises: a second handle upper shell (231), wherein a third mounting boss (2311) is provided at the distal end of the second handle upper shell (231); The second handle lower shell (232) is connected to the second handle upper shell (231) to form a second installation space, the second metal electrode (210) and the second cable (311) are electrically connected in the second installation space, a fourth installation boss is provided at the distal end of the second handle lower shell (232), and the third installation boss (2311) and the fourth installation boss are enclosed to form a second installation channel for pressing the second metal electrode (210) and the second insulating sleeve (220); A second sleeve (233) is sleeved outside the third mounting boss (2311) and the fourth mounting boss, and connects the third mounting boss (2311) and the fourth mounting boss; The second sheath (234) is sleeved on the outside of the second cable (311) and connected to the proximal end of the second handle upper shell (231).
8. The tremor inducing device according to claim 7, wherein: The proximal circumferential outer walls of the third mounting boss (2311) and the fourth mounting boss are both provided with a second clamping protrusion; A second snap ring groove for the second snap protrusion to be embedded in is provided on the proximal circumferential inner wall of the second sleeve (233).
9. The tremor inducing device according to claim 7, wherein: The distal end of the second sheath (234) is provided with a second positioning boss (2341), and the proximal end of the second handle upper shell (231) is provided with a second positioning groove for the second positioning boss (2341) to be embedded; and / or, A second limiting protrusion (2321) is provided at the proximal end of the second handle lower shell (232), and a second limiting hole (2312) for the second limiting protrusion (2321) to be embedded is provided on the middle vertical surface of the second handle upper shell (231).
10. The tremor inducing device according to claim 1, wherein: The electrode assembly is made of high-temperature resistant material.