A generator that generates electricity using high-speed kinetic energy.
By combining a winding base, a motion guide rod, a motion guide sleeve, a permanent magnet, and a permanent magnet sleeve, the linear motion of a high-speed projectile is converted into rotational motion. The permanent magnet is used to cut magnetic lines of force to generate electrical energy, thus solving the problem of converting the kinetic energy of a high-speed projectile into electrical energy in existing technologies.
Patent Information
- Application Number
- CN202211214454.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-30
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2042-09-30
AI Technical Summary
There is no existing technology that can convert the kinetic energy of a high-speed projectile into rotational motion to generate electricity.
A combined structure consisting of a winding base, a motion guide rod, a motion guide sleeve, a permanent magnet, and a permanent magnet sleeve was designed. This structure converts the linear motion of a high-speed projectile into rotational motion and generates electricity by using the permanent magnet to cut magnetic lines of force.
It has achieved the conversion of the linear motion of a high-speed projectile into rotational motion, thereby generating electrical energy.
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Figure CN115514152B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of generator technology, and in particular to a generator that generates electricity using high-speed kinetic energy. Background Technology
[0002] Existing power generation methods mainly include conventional generators such as thermal power, hydropower, nuclear power, solar power, and wind power. However, a search revealed no reports of generating electricity through the conversion of kinetic energy from high-speed projectiles. Summary of the Invention
[0003] The technical problem to be solved by the present invention is to provide a generator that converts the linear motion of a high-speed projectile into rotational motion to generate electricity.
[0004] The technical problem to be solved by this invention can be achieved through the following technical solution:
[0005] A generator that utilizes high-speed kinetic energy transmission includes:
[0006] A winding seat, which has a cylindrical structure and an inner cavity;
[0007] The cover plate and the toothed cover are fixed at both ends of the winding seat. The winding seat and / or the cover plate and / or the toothed cover are provided with lead wire holes. The cover plate and / or the toothed cover are also provided with medium holes.
[0008] At least one winding post is disposed in the inner cavity of the winding seat for winding each coil group, and meets the winding and insulation requirements of the winding group; each winding post has a cylindrical structure, and its two axial ends are respectively fixed on the cover plate and the toothed cover, and the medium hole on the cover plate or / and the toothed cover communicates with the inner cavity of the winding post.
[0009] A coil wound around the outer periphery of each winding post, the leads of which are led out from the lead holes on the winding base and / or the cover plate and / or the toothed cover;
[0010] A motion guide rod is disposed at the center of each winding post and fixed at both ends of the cover plate and the toothed cover, respectively, for guiding the conversion of linear motion into rotational motion; a spirally extending motion guide groove is disposed on the outer periphery of the motion guide rod.
[0011] A motion guide sleeve is disposed in the inner cavity of each winding post and sleeved on the motion guide rod. It cooperates with the motion guide rod to convert linear motion into rotational motion. Under the action of a medium with high-speed emission kinetic energy, the motion guide sleeve moves along the axial direction of the motion guide rod on the one hand, and rotates around the motion guide rod on the other hand.
[0012] Permanent magnets fixed on the outer periphery of each moving guide sleeve are used to generate magnetic lines of force;
[0013] A permanent magnet sleeve surrounds the permanent magnet, and the outer periphery of the permanent magnet sleeve is in both sliding and rolling contact with the inner cavity wall of the winding post.
[0014] In a preferred embodiment of the present invention, a plurality of buffer pads are provided on the inner surface of the cover plate, each buffer pad being disposed in the inner cavity of the winding post to buffer and protect the moving guide sleeve, permanent magnet and permanent magnet sleeve when they move to their limit positions, thus preventing breakage.
[0015] In a preferred embodiment of the invention, the motion guide rod passes through the buffer pad.
[0016] In a preferred embodiment of the present invention, the section of the motion guide rod from the middle position to the adjacent buffer pad is a smooth rod structure.
[0017] In a preferred embodiment of the present invention, a plurality of guide pins are provided on the motion guide sleeve, and the guide pins are both slidably and rollingly embedded in the motion guide groove on the outer periphery of the motion guide rod.
[0018] In a preferred embodiment of the present invention, one end of the guide pin embedded in the motion guide groove is spherical.
[0019] In a preferred embodiment of the present invention, a plurality of grooves are provided on the inner surface of the grooved cover to enhance the groove effect, that is, to prevent the moving guide sleeve and permanent magnet from slipping off automatically, and to require a certain acceleration force to start moving.
[0020] By employing the above technical solution, this invention can convert the linear motion of a high-speed projectile into rotational motion to generate electricity. Attached Figure Description
[0021] Figure 1 This is a front view of the internal structure of the device of the present invention.
[0022] Figure 2 for Figure 1 A schematic diagram of the central cross-sectional structure.
[0023] Figure 3 for Figure 1 A partial structural diagram.
[0024] Figure 4 for Figure 1 A schematic diagram of the component structure. Detailed Implementation
[0025] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below with reference to specific illustrations.
[0026] See Figures 1 to 4 The figure shows a generator that generates electricity using high-speed kinetic energy, including a winding base 1, several moving guide rods 2, several moving guide sleeves 3, several guide pins 10, several permanent magnets 4, several permanent magnet sleeves 5, several coils 9, several buffer pads 8, toothed cover 6, cover plate 7, etc. (all are shown in the figure).
[0027] The winding seat 1 has a cylindrical structure and an inner cavity 1a. The toothed cover 6 and the cover plate 7 are fixed at both ends of the winding seat 1 in the axial direction. The winding seat 1 and / or the cover plate 7 and / or the toothed cover 6 are provided with lead wire holes (not shown in the figure) and the cover plate 7 and / or the toothed cover 6 are also provided with medium holes (not shown in the figure). Through the medium holes, a medium with high-speed emission kinetic energy is blown into the inner cavity 1a of the winding seat 1 and a low-pressure medium that has lost its power is sent out.
[0028] A plurality of winding posts 11 can be arranged in the inner cavity 1a of the winding base 1. These winding posts 11 are arranged in parallel and are used for winding each coil group to meet the winding and insulation requirements of the winding group. Each winding post 11 has a cylindrical structure, and its two axial ends are respectively fixed on the cover plate 7 and the toothed cover 6. The dielectric hole on the cover plate 7 or / and the toothed cover 6 communicates with the inner cavity 11a of the winding post 11.
[0029] Several grooves 6a are provided on the inner surface of the grooved cover 6 to enhance the groove effect, that is, to prevent the moving guide sleeve and permanent magnet from slipping off automatically, and they must be subjected to a certain acceleration force to start moving.
[0030] A coil 9 is wound around the outer periphery of each winding post 12, and the lead wire 9a of the coil 9 is led out from the lead wire hole on the winding base 1 or / and the cover plate 7 or / and the toothed cover 6 and connected to the load.
[0031] Each motion guide rod 2 is positioned at the center of the inner cavity 12a of the winding post 12. The axial ends of the motion guide rod 2 are fixed to the cover plate 7 and the toothed cover 6, respectively, for guiding the conversion of linear motion into rotational motion. A spirally extending motion guide groove 2a is provided on the outer periphery of the motion guide rod 2.
[0032] The motion guide sleeve 3 is disposed in the inner cavity 12a of the winding post 12 and sleeved on the motion guide rod 2. It cooperates with the motion guide rod 2 to convert linear motion into rotational motion. Under the action of a medium with high-speed kinetic energy, the motion guide sleeve 3 moves axially along the motion guide rod 2 and rotates around it. Several guide pins 10 are provided on the motion guide sleeve 3. These guide pins 10 are slidably and rollably embedded in the motion guide groove 2a on the outer periphery of the motion guide rod 2. One end of the guide pin 10 embedded in the motion guide groove 2a is spherical.
[0033] The permanent magnet 4 is fixed on the outer periphery of the moving guide sleeve 11 to generate magnetic lines of force; a permanent magnet sleeve 5 is surrounded on the permanent magnet 7, and the outer periphery of the permanent magnet sleeve 5 is in both sliding and rolling contact with the inner cavity wall of the winding post 12.
[0034] To buffer and protect the motion guide sleeve 11, permanent magnet 4, and permanent magnet sleeve 5 when they reach their extreme positions, preventing breakage, a buffer pad 8 is provided on the inner surface of the cover plate 7. The buffer pad 8 is disposed in the inner cavity 12a of the winding post 12, and the motion guide rod 2 passes through the buffer pad 8. The section 2b of the motion guide rod 2 from the middle position to the adjacent buffer pad 8 is a smooth rod structure. This position provides a buffer space for the free rotation of the motion guide sleeve 11, permanent magnet 4, and permanent magnet sleeve 5 when they reach their extreme positions.
[0035] The working principle of the generator that utilizes high-speed kinetic energy transmission to generate electricity in this invention is as follows:
[0036] This invention utilizes the force generated by the launch acceleration of a high-speed projectile to convert linear motion into rotational motion through the motion guide rod 2. During the rotation of the permanent magnet 4, the magnetic lines of force are cut, generating an induced electromotive force to generate electricity.
[0037] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the structural principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A generator that utilizes high-speed kinetic energy transmission, characterized in that, include: A winding seat, which has a cylindrical structure and an inner cavity; The cover plate and the toothed cover are fixed at both ends of the winding seat. The winding seat and / or the cover plate and / or the toothed cover are provided with lead wire holes. The cover plate and / or the toothed cover are also provided with medium holes. At least one winding post is disposed in the inner cavity of the winding seat for winding each coil group, and meets the winding and insulation requirements of the winding group; each winding post has a cylindrical structure, and its two axial ends are respectively fixed on the cover plate and the toothed cover, and the medium hole on the cover plate or / and the toothed cover communicates with the inner cavity of the winding post. A coil wound around the outer periphery of each winding post, the leads of which are led out from the lead holes on the winding base and / or the cover plate and / or the toothed cover; A motion guide rod is disposed at the center of each winding post and fixed at both ends of the cover plate and the toothed cover, respectively, for guiding the conversion of linear motion into rotational motion; a spirally extending motion guide groove is disposed on the outer periphery of the motion guide rod. A motion guide sleeve is disposed in the inner cavity of each winding post and sleeved on the motion guide rod. It cooperates with the motion guide rod to convert linear motion into rotational motion. Under the action of a medium with high-speed emission kinetic energy, the motion guide sleeve moves along the axial direction of the motion guide rod on the one hand, and rotates around the motion guide rod on the other hand. Permanent magnets fixed on the outer periphery of each moving guide sleeve are used to generate magnetic lines of force; A permanent magnet sleeve surrounds the permanent magnet, and the outer periphery of the permanent magnet sleeve is in both sliding and rolling contact with the inner cavity wall of the winding post.
2. A generator utilizing high-speed kinetic energy transmission as described in claim 1, characterized in that, Several buffer pads are provided on the inner surface of the cover plate. Each buffer pad is disposed in the inner cavity of the winding post to buffer and protect the moving guide sleeve, permanent magnet and permanent magnet sleeve when they move to the limit position, so as to avoid breakage.
3. A generator utilizing high-speed kinetic energy transmission as described in claim 2, characterized in that, The motion guide rod passes through the buffer pad.
4. A generator utilizing high-speed kinetic energy transmission as described in claim 3, characterized in that, The section of the motion guide rod from the middle position to the side adjacent to the buffer pad is a smooth rod structure.
5. A generator utilizing high-speed kinetic energy transmission as described in claim 1, characterized in that, A number of guide pins are provided on the motion guide sleeve, and the guide pins are both slidably and rollingly embedded in the motion guide groove on the outer periphery of the motion guide rod.
6. A generator utilizing high-speed kinetic energy transmission as described in claim 5, characterized in that, The end of the guide pin that is embedded in the motion guide groove is spherical.
7. A generator utilizing high-speed kinetic energy transmission as described in claim 1, characterized in that, The inner surface of the toothed cover is provided with several toothed grooves to enhance the toothed effect, that is, to prevent the moving guide sleeve and permanent magnet from slipping off automatically, and they must be subjected to a certain acceleration force to start moving.
Citation Information
Patent Citations
Generator for generating electricity by utilizing high-speed emission kinetic energy
CN219204293U