Kinetic energy remote control and electric vehicle

By using kinetic energy generators and PCBAs in the remote control of electric vehicles, using manual pressing to generate electricity, the problem of lithium manganese batteries being unable to be charged is solved, and the battery is seamlessly battery life and cost reduction is achieved.

CN113644803BActive Publication Date: 2025-06-10JIANGSU AIMA VEHICLE SCI & TECH
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Patent Information

Application Number
CN202111079682.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-09-15
Publication Date
2025-06-10
Estimated Expiration
2041-09-15

AI Technical Summary

Technical Problem

The existing electric vehicle remote control uses lithium-manganese batteries, and the capacity cannot be charged after it is consumed, resulting in users needing to replace the battery, affecting the user experience and increasing costs.

Method used

The kinetic energy generator and PCBA are used to generate electrical energy spontaneously by manual pressing, and provide the required working voltage to the remote control through rectification, energy storage, step-down and functional circuits, replacing the traditional lithium-manganese battery.

Benefits of technology

The battery battery life of the kinetic energy remote control is achieved, which improves the user experience and reduces the cost of replacing lithium manganese batteries.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a kinetic energy remote control and an electric vehicle, comprising: a kinetic energy generator and a PCBA. The PCBA includes a rectification circuit, an energy storage circuit, a buck circuit, and a function circuit. The function circuit includes a radio frequency transmitting chip, and the radio frequency transmitting chip includes a plurality of key value switches. The kinetic energy generator generates an alternating voltage under the action of a manual pressing force. The rectification circuit rectifies the alternating voltage to obtain a first DC voltage. The buck circuit steps down the first DC voltage to obtain a second DC voltage. The function circuit presses the key value switch under the action of a manual pressing force to generate a code value corresponding to the key value switch, and sends the corresponding code value to the combination instrument according to the second DC voltage, so that the combination instrument performs corresponding operations according to the corresponding code value. By manually pressing, the kinetic energy generator spontaneously generates electric energy and provides the required working voltage for the kinetic energy remote control, replacing the traditional lithium manganese battery, improving the user experience and reducing the cost of replacing the lithium manganese battery.
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Description

Technical Field

[0001] The present invention relates to the field of electric vehicle control, and more particularly to a kinetic energy remote control and an electric vehicle. Background Art

[0002] Currently, the remote control of an electric vehicle uses a button-type lithium manganese battery. When the capacity of the lithium manganese battery is exhausted, it cannot be recharged. If the remote control has no power, the electric vehicle cannot be started. Therefore, the user needs to replace the lithium manganese battery of the remote control. However, the user cannot replace the battery by himself and needs to go to a repair point for replacement, which results in a poor user experience and increases the cost of replacing the lithium manganese battery. Summary of the Invention

[0003] In view of this, the purpose of the present invention is to provide a kinetic energy remote control and an electric vehicle, which can generate electric energy spontaneously by manually pressing a kinetic energy generator and provide the required working voltage for the kinetic energy remote control, replacing the traditional lithium manganese battery, improving the user experience and reducing the cost of replacing the lithium manganese battery.

[0004] In a first aspect, an embodiment of the present invention provides a kinetic energy remote control, which includes a kinetic energy generator and a PCBA. The PCBA includes a rectifier circuit, an energy storage circuit, a buck circuit and a function circuit. The function circuit includes a radio frequency transmission chip, and the radio frequency transmission chip includes a plurality of key value switches;

[0005] The kinetic energy generator, the rectifier circuit, the energy storage circuit, the buck circuit and the function circuit are connected in sequence;

[0006] The kinetic energy generator is used to generate an alternating voltage under the action of a manually applied pressure;

[0007] The rectifier circuit is used to rectify the alternating voltage to obtain a first direct current voltage;

[0008] The energy storage circuit is used to store the first direct current voltage;

[0009] The buck circuit is used to step down the first direct current voltage to obtain a second direct current voltage;

[0010] The function circuit is used to press the key value switch under the action of the manually applied pressure, generate a code value corresponding to the key value switch, and send the corresponding code value to the combination instrument according to the second direct current voltage, so that the combination instrument performs corresponding operations according to the corresponding code value.

[0011] Furthermore, it further includes an anti-theft button and an anti-theft release button. The anti-theft button corresponds to a first key value switch, and the anti-theft release button corresponds to a second key value switch;

[0012] The functional circuit is used to press the first key value switch and generate a first code value corresponding to the first key value switch when the arming button is pressed;

[0013] When the disarming button is pressed, press the second key value switch to generate a second code value corresponding to the second key value switch.

[0014] Further, the radio frequency transmitting chip is used to send the first code value and / or the second code value to the combination instrument, so that the combination instrument performs the corresponding operations according to the first code value and / or the second code value.

[0015] Further, the rectifying circuit includes diodes D1, D2, D3, and D4, the energy storage circuit includes capacitor C1, and the step-down circuit includes diode D5.

[0016] Further, the positive electrode of diode D1 is connected to the positive electrode of diode D3 and grounded; the negative electrode of diode D3 is connected to the positive electrode of diode D4;

[0017] The negative electrode of diode D1 is connected to the positive electrode of diode D2, the negative electrode of diode D2 is respectively connected to the negative electrode of diode D4, one end of capacitor C1, and the negative electrode of diode D5, and the other end of capacitor C1 is connected to the positive electrode of diode D5 and grounded.

[0018] Further, it further includes a first component, a second component, and a transmission pressing block. The first component includes an arming button contact and a first switch, and the second component includes an upper housing transmission pressing block contact and a transmission pressing block contact;

[0019] When the arming button is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, the arming button contact and the first switch contact and undergo a stroke displacement, the upper housing transmission pressing block contact and the transmission pressing block contact, and the transmission pressing block generates a displacement, thereby driving the kinetic energy generator to work.

[0020] Further, it further includes a third component, and the third component includes a disarming button contact and a second switch;

[0021] When the disarming button is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, the disarming button contact and the second switch contact and undergo the stroke displacement, the upper housing transmission pressing block contact and the transmission pressing block contact, and the transmission pressing block generates a displacement, thereby driving the kinetic energy generator to work.

[0022] Furthermore, it also includes an upper shell and a lower shell, the upper shell and the lower shell constitute a containing chamber, and the kinetic energy generator and the PCBA are arranged in the containing chamber.

[0023] Furthermore, it also includes a rubber button, which is arranged on the upper shell, and the rubber button is sequentially provided with an arming button and a disarming button.

[0024] In a second aspect, an embodiment of the present invention provides an electric vehicle, comprising the kinetic energy remote controller as described above.

[0025] The embodiment of the present invention provides a kinetic remote control and an electric vehicle, including: a kinetic generator and a PCBA, the PCBA including a rectifier circuit, an energy storage circuit, a step-down circuit and a functional circuit, the functional circuit including a radio frequency transmitting chip, and the radio frequency transmitting chip including a plurality of key switches; the kinetic generator, the rectifier circuit, the energy storage circuit, the step-down circuit and the functional circuit are connected in sequence; the kinetic generator is used to generate an AC voltage under the action of a manual pressing force; the rectifier circuit is used to rectify the AC voltage to obtain a first DC voltage; the energy storage circuit is used to store the first DC voltage; the step-down circuit is used to step down the first DC voltage to obtain a second DC voltage; the functional circuit is used to press the key switch under the action of the manual pressing force, generate a code value corresponding to the key switch, and send the corresponding code value to a combination instrument according to the second DC voltage, so that the combination instrument performs a corresponding operation according to the corresponding code value; the kinetic generator is used to spontaneously generate electric energy through manual pressing, and provide the required working voltage for the kinetic remote control, thereby replacing the traditional lithium manganese battery, improving the user experience and reducing the cost of replacing the lithium manganese battery.

[0026] Other features and advantages of the present invention will be described in the following description, and partly become apparent from the description, or understood by practicing the present invention. The purpose and other advantages of the present invention are realized and obtained by the structures particularly pointed out in the description, claims and drawings.

[0027] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] In order to more clearly illustrate the specific implementation methods of the present invention or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.

[0029] Figure 1A schematic diagram of a kinetic remote controller provided in Embodiment 1 of the present invention;

[0030] Figure 2 A schematic diagram of the structure of a rectifier circuit, an energy storage circuit and a step-down circuit provided in Embodiment 1 of the present invention;

[0031] Figure 3 A schematic diagram of a functional circuit structure provided in Embodiment 1 of the present invention;

[0032] Figure 4 An exploded diagram of a kinetic remote control provided in Embodiment 2 of the present invention;

[0033] Figure 5 A schematic diagram of the rubber button structure provided in the second embodiment of the present invention;

[0034] Figure 6 This is a schematic diagram of the internal structure of the kinetic remote control provided in Embodiment 2 of the present invention.

[0035] icon:

[0036] 1-rubber button; 2-upper shell; 3-kinetic energy generator; 4-PCBA; 5-lower shell; 6-transmission pressure block; 7-spring; 8-transmission pressure block shaft; 9-magnetic element elastic arm; 10-lower shell spring shaft; 11-transmission pressure block shaft fixing hole; 12-arm button; 13-disarm button; 14-arm button contact; 15-upper shell transmission pressure block contact; 16-disarm button contact; 17-first switch; 18-elastic height space; 19-transmission pressure block contact; 20-second switch; 41-rectifier circuit; 42-energy storage circuit; 43-step-down circuit; 44-functional circuit. DETAILED DESCRIPTION

[0037] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution of the present invention will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0038] To facilitate understanding of this embodiment, the embodiment of the present invention is described in detail below.

[0039] Embodiment 1:

[0040] Figure 1 This is a schematic diagram of a kinetic energy remote control provided in Embodiment 1 of the present invention.

[0041] Reference Figure 1, the kinetic energy remote control includes a kinetic energy generator 3 and a PCBA (Printed Circuit Board Assembly), and the PCBA includes a rectifying circuit 41, an energy storage circuit 42, a step-down circuit 43, and a function circuit 44. The function circuit 44 includes a radio frequency transmitting chip, and the radio frequency transmitting chip includes a plurality of key value switches;

[0042] The kinetic energy generator 3, the rectifying circuit 41, the energy storage circuit 42, the step-down circuit 43, and the function circuit 44 are connected in sequence;

[0043] The kinetic energy generator 3 is used to generate an alternating voltage under the action of a manual pressing force;

[0044] Here, the kinetic energy generator 3 includes a coil part and a rotating part. When the rotating part is subjected to a manual pressing force, it moves from one equilibrium state to another equilibrium state, and electric energy is generated each time it moves, thereby providing voltage for the kinetic energy remote control.

[0045] The rectifying circuit 41 is used to rectify the alternating voltage to obtain a first DC voltage;

[0046] The energy storage circuit 42 is used to store the first DC voltage;

[0047] The step-down circuit 43 is used to step down the first DC voltage to obtain a second DC voltage;

[0048] The function circuit 44 is used to press the key value switch under the action of a manual pressing force, generate a code value corresponding to the key value switch, and send the corresponding code value to the combination instrument according to the second DC voltage, so that the combination instrument performs corresponding operations according to the corresponding code value.

[0049] Specifically, since the kinetic energy generator 3 generates an alternating voltage, it needs to be processed by the rectifying circuit 41, the energy storage circuit 42, and the step-down circuit 43 to obtain a second DC voltage, which is the voltage required by the function circuit 44. The rectifying circuit 41 rectifies the alternating voltage to obtain a first DC voltage; the energy storage circuit 42 stores the first DC voltage; the step-down circuit 43 steps down the first DC voltage to a second DC voltage. Among them, the first DC voltage is greater than the second DC voltage.

[0050] Here, the combination instrument includes an alarm, and the alarm can also be an independent component. The corresponding code value is sent to the alarm so that the alarm performs corresponding operations according to the corresponding code value.

[0051] Furthermore, it also includes an arming button and a disarming button. The arming button corresponds to the first key value switch, and the disarming button corresponds to the second key value switch;

[0052] The functional circuit 44 is configured to press the first key value switch and generate a first code value corresponding to the first key value switch when the arming button is pressed;

[0053] When the disarming button is pressed, press the second key value switch to generate a second code value corresponding to the second key value switch.

[0054] Furthermore, the RF transmitting chip is configured to send the first code value and / or the second code value to the combination instrument, so that the combination instrument performs corresponding operations according to the first code value and / or the second code value.

[0055] Here, when the user presses the arming button and the disarming button simultaneously, the RF transmitting chip will send the first code value and the second code value to the combination instrument at the same time, and the combination instrument performs corresponding operations according to the first code value and the second code value. Among them, different code values correspond to different functions.

[0056] When the user presses the arming button, the RF transmitting chip will send the first code value to the combination instrument, and the combination instrument performs corresponding operations according to the first code value; or when the user presses the disarming button, the RF transmitting chip will send the second code value to the combination instrument, and the combination instrument performs corresponding operations according to the second code value.

[0057] Furthermore, referring to Figure 2 , the rectifying circuit includes diodes D1, D2, D3, and D4, the energy storage circuit includes capacitor C1, and the step-down circuit includes diode D5.

[0058] Furthermore, the positive electrode of diode D1 is connected to the positive electrode of diode D3 and grounded; the negative electrode of diode D3 is connected to the positive electrode of diode D4;

[0059] The negative electrode of diode D1 is connected to the positive electrode of diode D2, the negative electrode of diode D2 is respectively connected to the negative electrode of diode D4, one end of capacitor C1, and the negative electrode of diode D5, and the other end of capacitor C1 is connected to the positive electrode of diode D5 and grounded.

[0060] Here, in Figure 2 , J1 is an interface that connects the rectifying circuit to the kinetic energy generator.

[0061] Furthermore, referring to the schematic diagram of the functional circuit structure shown in Figure 3 , the functional circuit includes an RF transmitting chip. The RF transmitting chip includes multiple key value switches, U1, resistor R1, triode Q1, capacitor C2, resistor R2, capacitor C3, triode Q2, capacitor C4, capacitor C5, capacitor C6, resistor R3, resistor R4, inductor L1, and light-emitting diodes, etc.; among them, the multiple key value switches include S1, S2, S3, and S4.

[0062] Here, the RF transmitter chip is a 433M or 315M short-range wireless transmission circuit with low power consumption, high performance, wide voltage and high output power.

[0063] The embodiment of the present invention provides a kinetic remote control and an electric vehicle, including: a kinetic generator and a PCBA, the PCBA including a rectifier circuit, an energy storage circuit, a step-down circuit and a functional circuit, the functional circuit including a radio frequency transmitting chip, and the radio frequency transmitting chip including a plurality of key switches; the kinetic generator, the rectifier circuit, the energy storage circuit, the step-down circuit and the functional circuit are connected in sequence; the kinetic generator is used to generate an AC voltage under the action of a manual pressing force; the rectifier circuit is used to rectify the AC voltage to obtain a first DC voltage; the energy storage circuit is used to store the first DC voltage; the step-down circuit is used to step down the first DC voltage to obtain a second DC voltage; the functional circuit is used to press the key switch under the action of the manual pressing force, generate a code value corresponding to the key switch, and send the corresponding code value to a combination instrument according to the second DC voltage, so that the combination instrument performs a corresponding operation according to the corresponding code value; the kinetic generator is used to spontaneously generate electric energy through manual pressing, and provide the required working voltage for the kinetic remote control, thereby replacing the traditional lithium manganese battery, improving the user experience and reducing the cost of replacing the lithium manganese battery.

[0064] Embodiment 2:

[0065] Figure 4 This is an exploded view of the kinetic remote control provided in Embodiment 2 of the present invention.

[0066] Reference Figure 4 The kinetic energy remote control includes: a rubber button 1, an upper shell 2, a kinetic energy generator 3, a PCBA 4, a lower shell 5, a transmission pressure block 6, a spring 7, a transmission pressure block shaft 8, a magnetic element elastic arm 9, a lower shell spring shaft 10, a transmission pressure block shaft fixing hole 11, an arming button 12, an arming button 13, an arming button contact 14, an upper shell transmission pressure block contact 15, an arming button contact 16, a first switch 17, an elastic height space 18, a transmission pressure block contact 19 and a second switch 20.

[0067] Furthermore, it also includes a first component, a second component and a transmission pressure block, the first component includes a defense button contact and a first switch, and the second component includes an upper housing transmission pressure block contact and a transmission pressure block contact;

[0068] When the arming button is pressed manually, a manual pressing force is generated. Under the action of the manual pressing force, the arming button contact contacts the first switch and causes a stroke displacement. The transmission pressure block contact of the upper shell contacts the transmission pressure block contact and causes the transmission pressure block to displace, thereby driving the kinetic energy generator to work.

[0069] Specifically, refer to Figure 6, when the arming button 12 is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, it moves along the arrow direction, causing the arming button contact 14 to contact the first switch 17. Under the action of the manual pressing force, the arming button contact 14 causes the first switch 17 to have a stroke displacement. At the same time, under the action of the lever principle and the continuous manual pressing of the arming button 12, the upper housing drive block contact 15 contacts the drive block contact 19. Under the action of the manual pressing force, the drive block 6 generates a displacement along the arrow direction, driving the magnetic element elastic arm of the kinetic energy generator 3 to deform and cut the magnetic induction line within the elastic height space 18 distance;

[0070] When the arming button 12 is released, the manual pressing force is removed, and the spring 7 restores its deformation to generate a resilience force, which acts on the magnetic element elastic arm 9 to rebound and reset. At the same time, it restores the deformation and cuts the magnetic induction line within the elastic height space 18 distance. Under the action of the lever principle and the continuous action of the spring 7, the arming button contact 14 is separated from the first switch 17.

[0071] Furthermore, it further includes a third component, and the third component includes a disarming button contact and a second switch;

[0072] When the disarming button is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, the disarming button contact and the second switch contact and have a stroke displacement. The upper housing drive block contact and the drive block contact contact, and cause the drive block to generate a displacement, thereby driving the kinetic energy generator to work.

[0073] Specifically, in Figure 6 , when the disarming button 13 is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, it moves along the arrow direction, causing the disarming button contact 16 to contact the second switch 20. Under the continuous action of the manual pressing force, the disarming button contact 16 and the second switch 20 have a stroke displacement. At the same time, under the action of the lever principle and the continuous manual pressing of the disarming button 13, the upper housing drive block contact 15 contacts the drive block contact 19. Under the action of the manual pressing force, the drive block 6 generates a displacement along the arrow direction, driving the magnetic element elastic arm of the kinetic energy generator 3 to deform and cut the magnetic induction line within the elastic height space 18 distance;

[0074] When the disarming button 13 is released, the manual pressing force is removed, and the spring 7 restores its deformation to generate a resilience force, which acts on the magnetic element elastic arm 9 to rebound and reset. At the same time, it restores the deformation and cuts the magnetic induction line within the elastic height space 18 distance. Under the action of the lever principle and the continuous action of the spring 7, the disarming button contact 16 is separated from the second switch 20.

[0075] Furthermore, it further includes an upper housing 2 and a lower housing 5. The upper housing 2 and the lower housing 5 form an accommodation chamber, and a kinetic energy generator 3 and a PCBA 4 are arranged in the accommodation chamber.

[0076] Further, see Figure 5 , and also includes a rubber button, which is arranged on the upper shell, and the rubber button is sequentially provided with a defense button 12 and a disarming button 13.

[0077] An electric vehicle comprises the kinetic energy remote controller as described above.

[0078] The computer program product provided in the embodiment of the present invention includes a computer-readable storage medium storing program code. The instructions included in the program code can be used to execute the method described in the previous method embodiment. The specific implementation can be found in the method embodiment and will not be repeated here.

[0079] Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working process of the system and device described above can refer to the corresponding process in the aforementioned method embodiment, and will not be repeated here.

[0080] In addition, in the description of the embodiments of the present invention, unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0081] If the functions are implemented in the form of software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art or the part of the technical solution, can be embodied in the form of a software product. The computer software product is stored in a storage medium, including several instructions for a computer device (which can be a personal computer, a server, or a network device, etc.) to perform all or part of the steps of the methods described in each embodiment of the present invention. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), disk or optical disk, etc., which can store program codes.

[0082] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0083] Finally, it should be noted that the above-described embodiments are only specific embodiments of the present invention, used to illustrate the technical solutions of the present invention, rather than limiting it. The protection scope of the present invention is not limited thereto. Although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that any person skilled in the art within the technical scope disclosed by the present invention can still modify the technical solutions described in the foregoing embodiments or easily conceive of changes, or perform equivalent replacements for some of the technical features; and these modifications, changes or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be covered by the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.

Claims

1. A kinetic energy remote control, characterized in that, it includes a kinetic energy generator and a PCBA. The PCBA includes a rectification circuit, an energy storage circuit, a buck circuit and a function circuit. The function circuit includes a radio frequency transmission chip, and the radio frequency transmission chip includes a plurality of key value switches; the kinetic energy generator, the rectification circuit, the energy storage circuit, the buck circuit and the function circuit are connected in sequence; the kinetic energy generator is used to generate an alternating voltage under the action of a manual pressing force; the rectification circuit is used to rectify the alternating voltage to obtain a first DC voltage; the energy storage circuit is used to store the first DC voltage; the buck circuit is used to step down the first DC voltage to obtain a second DC voltage; the function circuit is used to press the key value switch under the action of the manual pressing force, generate a code value corresponding to the key value switch, and send the corresponding code value to the combination instrument according to the second DC voltage, so that the combination instrument performs corresponding operations according to the corresponding code value; it further includes an arming button and a disarming button. The arming button corresponds to a first key value switch, and the disarming button corresponds to a second key value switch; the function circuit is used to press the first key value switch and generate a first code value corresponding to the first key value switch when the arming button is pressed; when the disarming button is pressed, press the second key value switch to generate a second code value corresponding to the second key value switch; the rectification circuit includes diodes D1, D2, D3 and D4, the energy storage circuit includes a capacitor C1, and the buck circuit includes a diode D5; it further includes an upper housing and a lower housing. The upper housing and the lower housing form a receiving chamber, and the kinetic energy generator and the PCBA are arranged in the receiving chamber.

2. The kinetic energy remote control according to claim 1, characterized in that, the radio frequency transmission chip is used to send the first code value and / or the second code value to the combination instrument, so that the combination instrument performs the corresponding operations according to the first code value and / or the second code value.

3. The kinetic energy remote control according to claim 1, characterized in that, the positive electrode of diode D1 is connected to the positive electrode of diode D3 and grounded; the negative electrode of diode D3 is connected to the positive electrode of diode D4; the negative electrode of diode D1 is connected to the positive electrode of diode D2. The negative electrode of diode D2 is respectively connected to the negative electrode of diode D4, one end of capacitor C1 and the negative electrode of diode D5. The other end of capacitor C1 is connected to the positive electrode of diode D5 and grounded.

4. The kinetic energy remote control according to claim 1, characterized in that, it further includes a first component, a second component and a transmission pressing block. The first component includes an arming button contact and a first switch, and the second component includes an upper housing transmission pressing block contact and a transmission pressing block contact; When the arming button is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, the arming button contact and the first switch come into contact and undergo a stroke displacement. The upper housing drive block contact and the drive block contact come into contact, causing the drive block to displace, thereby driving the kinetic energy generator to operate.

5. The kinetic energy remote controller according to claim 4, characterized in that, it further includes a third component, and the third component includes a disarming button contact and a second switch; When the disarming button is manually pressed, a manual pressing force is generated. Under the action of the manual pressing force, the disarming button contact and the second switch come into contact and undergo the stroke displacement. The upper housing drive block contact and the drive block contact come into contact, causing the drive block to displace, thereby driving the kinetic energy generator to operate.

6. The kinetic energy remote controller according to claim 1, characterized in that, it further includes a rubber button, the rubber button is arranged on the upper housing, and an arming button and a disarming button are sequentially arranged on the rubber button.

7. An electric vehicle, characterized in that, it includes the kinetic energy remote controller according to any one of claims 1 to 6.

Citation Information

Patent Citations

  • Kinetic energy remote controller and electric vehicle

    CN216122167U