Novel energy transfer device

By designing a multi-point gear meshing structure, the problems of low efficiency and poor stability of traditional energy transfer devices are solved, achieving efficient and stable energy transfer and wear resistance under high loads, making it suitable for energy conversion equipment that requires high speed.

CN121363616APending Publication Date: 2026-01-20YANGGU LONGCHANDA FOOD CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202511493531.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-20
Publication Date
2026-01-20

AI Technical Summary

Technical Problem

Traditional new energy transfer devices are inefficient, bulky, and have poor transmission stability. They are also prone to overload and wear when transmitting high power.

Method used

The multi-point gear meshing structure is adopted. Through the uniform distribution of the main gear and driven gear set and the meshing of the bevel gear set, power is split, speed up and converged, ensuring timely adjustment of meshing pressure distribution under high load and avoiding excessive wear.

Benefits of technology

It improves transmission efficiency and load-bearing capacity, reduces noise and vibration, extends the service life of the device, and ensures stable operation under high loads.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121363616A_ABST
    Figure CN121363616A_ABST
Patent Text Reader

Abstract

The invention belongs to the field of machinery, and relates to a novel energy transmission device which comprises a main gear, a driven gear set is arranged below the main gear, the driven gear set comprises a first-stage driven gear and a second-stage driven gear, a first transmission shaft is arranged in the center of the first-stage driven gear, and a second transmission shaft is arranged on one side of the first transmission shaft. A first gear disc is arranged at the bottom of the second transmission shaft, and a supporting plate is arranged at the bottom of the first gear disc. The gear system is complete in structure and complete in function, transmission efficiency and bearing capacity can be effectively improved, influences caused by gear abrasion, overload and other problems in a traditional gear system are avoided, noise, vibration and energy consumption are reduced, and a guarantee is provided for long-term stable operation of a novel energy transmission device.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application belongs to the field of machinery, and particularly relates to a novel energy transmission device. BACKGROUND

[0002] At present, the traditional novel energy transmission device mainly relies on the transmission mode of single gear, although the energy conversion can be realized, but there are often defects such as low efficiency, large size, poor transmission stability and the like. In addition, in some occasions requiring high power transmission, the single gear system is prone to problems such as overload and aggravated wear. Therefore, it is particularly important to develop a novel multi-gear meshing device which can improve the efficiency and reduce the energy loss while ensuring the transmission stability. SUMMARY

[0003] The present application aims to provide a novel energy transmission device which can timely adjust the gear meshing pressure distribution when working under high load, so as to ensure that there is no excessive wear when working under high load, and solve the problems of gear wear, overload and life reduction in the prior art.

[0004] In order to achieve the above-mentioned purpose, the technical scheme adopted by the present application is that the present application provides a novel energy transmission device, which comprises a main gear, a driven gear set is arranged below the main gear, the driven gear set is divided into a primary driven gear and a secondary driven gear, a transmission shaft one is arranged at the center of the primary driven gear, a transmission shaft two is arranged on one side of the transmission shaft one, a gear disc one is arranged at the bottom of the transmission shaft two, and a support plate is arranged at the bottom of the gear disc one.

[0005] Specifically, a center main shaft is arranged in the middle of the main gear, and a crank handle is connected to one end of the center main shaft.

[0006] Specifically, the driven gear set is uniformly distributed along the circumference of the main gear and is engaged with the main gear.

[0007] Specifically, a bevel gear set is arranged at the center of the transmission shaft one, and a fixed gear ring is arranged at the bottom of the bevel gear set.

[0008] Specifically, a gear disc two is arranged on one side of the gear disc one, the gear disc one and the gear disc two are engaged with each other, and the diameter of the gear disc one is greater than the diameter of the gear disc two.

[0009] Specifically, the transmission shaft one is vertically installed on the support plate, and the transmission shaft two is arranged in parallel with the transmission shaft one.

[0010] The use method of the novel energy transmission device comprises the following steps: 1) power input: rotating the center main shaft to drive the main gear to rotate; 2) shunt speed-up: the main gear synchronously transmits power to each driven gear set; 3) Reversing transmission: the power output by each driven gear set is transmitted to the bevel gear set through the transmission shaft one; 4) Multi-converging integration: the reversed multi-power is transmitted and converged to the gear disc one through the transmission shaft two; 5) High-speed output: the gear disc one drives the gear disc two to rotate at high speed, completing the second-stage speed-up.

[0011] Specifically, step 1) the center main shaft is driven by manually shaking the handle.

[0012] Specifically, step 1) the number of teeth of the main gear is 45 teeth.

[0013] Compared with the prior art, the advantages and positive effects of the present application are that, 1. The present application has a complete structure and perfect functions, can effectively improve the transmission efficiency and carrying capacity, and avoids the influence of gear wear, overload and other problems in the traditional gear system, reduces noise, vibration and energy consumption, and provides protection for the long-term stable operation of the new energy transmission device. 2. The present application can ensure that the multi-point gear meshing structure can timely adjust the gear meshing pressure distribution when working under high load, so as to ensure that there is no excessive wear when working under high load, and solves the problems of gear wear, overload and life reduction in the prior art. BRIEF DESCRIPTION OF DRAWINGS

[0014] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced below. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0015] Fig. 1 is an axonometric view of the new energy transmission device provided by the embodiment; In the above figures, 1 is a main gear, 2 is a center main shaft, 3 is a handle, 4 is a driven gear set, 5 is a first-stage driven gear, 6 is a second-stage driven gear, 7 is a transmission shaft one, 8 is a bevel gear set, 9 is a fixed gear ring, 10 is a transmission shaft two, 11 is a gear disc one, 12 is a gear disc two, and 13 is a support plate. DETAILED DESCRIPTION

[0016] In order to more clearly illustrate the above-mentioned purposes, features and advantages of the present application, the following will be combined with the drawings and Embodiments of the present application are further described. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.

[0017] In the following description, numerous specific details are set forth in order to provide a thorough understanding of the application. However, the application can be practiced without the specific details. In other instances, well-known methods, procedures, components, and circuits have not been described in detail so as not to unnecessarily obscure aspects of the application.

[0018] As shown in Figure 1, the new energy transmission device includes a main gear 1, which is 45 teeth. A driven gear set 4 is arranged below the main gear 1. The driven gear set 4 is divided into a first driven gear 5 and a second driven gear 6. The first driven gear 5 is centrally provided with a transmission shaft 7. The transmission shaft 7 is provided with a transmission shaft 10 on one side. The transmission shaft 10 is provided with a gear disc 11 at the bottom. The gear disc 11 is provided with a support plate 13 at the bottom.

[0019] The user shakes the handle 3, which generates a rotary torque directly transmitted to the central main shaft 2, and drives the main gear 1 fixed thereon to rotate, which is the source of energy for the entire system. The main gear 1 is not directly connected to an output device, but is simultaneously connected to the surrounding driven gear set 4 meshing. The main gear 1 is provided with a central main shaft 2, which is the main torque transmission rod. The rotary force applied by the user on the handle 3 is transmitted to the main gear 1 through the central main shaft 2. The strength and stability of the central main shaft 2 directly determine the upper limit of the input power of the entire device.

[0020] The driven gear set 4 is arranged below the main gear 1 and is evenly distributed along the circumference of the main gear 1 and meshes with the main gear 1. This "one drive multiple" parallel structure greatly reduces the load acting on each driven gear set 4 and its subsequent transmission components. Thus, the drawbacks of traditional single-path transmission, in which all loads are concentrated on a pair of gear pairs, are fundamentally avoided, thereby significantly reducing wear and tear, improving the carrying capacity and service life of the entire device. At the same time, the meshing of multiple gear sets makes the transmission more stable, reducing vibration and noise.

[0021] The driven gear set 4 is divided into a first driven gear 5 and a second driven gear 6. The first driven gear 5 is centrally provided with a transmission shaft 7. The first driven gear 5 has 40 teeth, and the second driven gear 6 has 30 teeth. Each driven gear set 4 is a composite unit composed of a first driven gear 5 with a larger radius and a second driven gear 6 with a smaller radius fixed on the same transmission shaft 7. In this way, the "same "Fixed shaft" means that the rotational speeds are exactly the same. According to the gear transmission principle, at the meshing point, the linear velocities v of the two gears are equal. Linear velocity v = ω × r. Since the radius of the driven gear 5 is larger than that of the main gear 1, in order to maintain equal linear velocities, its angular velocity must be smaller than that of the main gear 1, thus achieving deceleration and torque increase.

[0022] A bevel gear set 8 is centrally located on drive shaft 7, with a fixed gear ring 9 at its bottom. A drive shaft 10 is located on one side of drive shaft 7. Drive shaft 7 is vertical, and its bottom end is connected to a pair of bevel gears in bevel gear set 8 that mesh perpendicularly. One bevel gear is fixed to the end of drive shaft 7, while the other is mounted on one side of drive shaft 7. The two bevel gears are different in size and therefore rotate at different speeds. When drive shaft 7 rotates, power is transmitted to gear disc 11 through the meshing of these two bevel gears.

[0023] A gear disk 11 is located at the bottom of the second drive shaft 10. All power transmitted from the driven gear set 4 is ultimately collected on this single gear disk 11 via the second drive shaft 10, thus achieving a "consolidation" effect, merging multiple power paths into one to drive other external gears for high-speed output. A gear disk 12 is located on one side of the gear disk 11. The gear disk 12 has 60 teeth. The gear disks 11 and 12 mesh with each other, and the diameter of the gear disk 11 is larger than the diameter of the gear disk 12. After passing through the driven gear set... The first stage of preparation (4) and the second stage of powerful acceleration ("gear pair") ultimately raise the speed output to the shaft of gear 12 to a very high level, making it ideal for driving energy conversion devices such as generators that require high-speed input. A support plate 13 is provided at the bottom of gear 11, and drive shaft 7 is vertically mounted on the support plate 13. Drive shaft 10 is arranged parallel to drive shaft 7. The support plate 13 provides a stable and reliable mounting base for the vertical drive shafts 7 and 10. By supporting these shafts, the support plate 13 ensures smooth rotation while precisely maintaining the relative positions of all gears.

[0024] Example 2, a method of using the novel energy transfer device as shown in Example 1, includes the following steps: 1) Power Input: By driving the central spindle 2 to rotate, the main gear 1 fixedly mounted on it will rotate synchronously. This step can be accomplished by manually cranking the crank handle 3. This design allows the device to... Still reliable work in the absence of power supply environment, expand its application scenarios. The number of teeth of the main gear 1 is preferably 45 teeth, this specification design can achieve the best balance between torque transmission ability and rotational speed after dynamics calculation and optimization, which lays a solid foundation for subsequent multi-path shunting; 2) Shunt speed increase: the main gear 1 will receive the power and torque, synchronously and evenly transmitted to the multiple driven gear sets 4 uniformly distributed along its circumference. This "one drive multiple" configuration is the key to realizing the high carrying capacity of the invention, which automatically disperses the traditional concentrated load to multiple parallel transmission paths, significantly reducing the stress on individual gear pairs, thereby fundamentally improving the reliability and fatigue life of the device; 3) Reverse transmission: the power output by each driven gear set 4 after one-stage speed increase is transmitted downward through the vertically arranged transmission shaft 7 and drives the bevel gear set 8 at the bottom end. The core role of the bevel gear set 8 is to change the direction of power transmission, which accurately converts the rotational motion around the vertical axis into rotational motion around the horizontal axis; 4) Multi-converging integration: the multi-path power after turning is transmitted and collected to the gear disc 1 11 through the transmission shaft 2 10. This step realizes "from zero to one", which efficiently collects the mechanical energy previously dispersed in multiple independent paths into a single gear disc 1 11. This converging method not only ensures the unity of power output, but also cancels out the radial force with its symmetrical structure, making the transmission process more stable; 5) High-speed output: the gear disc 1 11 drives the gear disc 2 12 to rotate at high speed, completing the second-stage speed increase. After two-stage speed increase, the output shaft of the gear disc 2 12 can obtain high enough rotational speed to efficiently drive the generator and other energy converters, finally converting the collected and amplified mechanical energy into electrical energy or other forms of energy.

[0025] In summary, the main gear 1 rotates 45 teeth per revolution, which drives the multi-gear rotation, and finally the 30-tooth power output gear also rotates 45 teeth. Because the secondary driven gear 6 and the gear disc 2 12 are on the same transmission shaft 2 10, the power of the three secondary driven gears 6 is twice that of the gear disc 2 12, which is also twice that of the main gear 1. That is, the mechanical energy transmission device can expand the mechanical energy by 2 times, which can be clearly and intuitively seen on our mechanical energy transmission device.

[0026] If we further manufacture this mechanical energy transmission device, the mechanical energy can be expanded to 4 times, 8 times, 16 times, 32 times, 64 times, that is, the mechanical energy can be increased in geometric progression If the mechanical energy is expanded 16 times, it is installed on a new energy vehicle, and a 2-kilowatt motor is used as power, the power can be expanded to 32 kilowatts. Then install a 3-kilowatt generator to feed the electricity generated to the battery, so the new energy vehicle does not need to go to the charging pile to charge, and can go anywhere.

[0027] If the mechanical energy is expanded to 64 times, we can use it to generate electricity. With a 5-kilowatt motor as power, the power can be expanded to more than 300 kilowatts, and more than 6000 degrees of electricity can be generated per day. Therefore, it can provide us with a new green energy that can be taken without end and used without end. Of course, this mechanical energy transmission device can also provide power for various machines.

[0028] The contents not described in detail in the description belong to the prior art known to those skilled in the art.

[0029] The above is only the preferred embodiment of the present application, and is not intended to limit the other forms of the present application. Any skilled person in the art can use the disclosed technical content to make changes or modifications to equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification made on the basis of the technical essence of the present application to the above embodiments without departing from the technical solution content of the present application shall still fall within the protection scope of the technical solution of the present application.

Claims

1. A novel energy transfer device, characterized by, The main gear is provided with a driven gear set below, the driven gear set is divided into a first driven gear and a second driven gear, the first driven gear is provided with a transmission shaft one in the center, the transmission shaft one is provided with a transmission shaft two on one side, the transmission shaft two is provided with a gear disc one at the bottom, and the gear disc one is provided with a supporting plate at the bottom.

2. The novel energy transfer device of claim 1, wherein, The main gear is provided with a center main shaft in the middle, and the center main shaft is connected with a crank handle at one end.

3. The novel energy transfer device of claim 1, wherein, The driven gear set is uniformly distributed along the circumference of the main gear and is engaged with the main gear.

4. The novel energy transfer device of claim 1, wherein, The center of the transmission shaft one is provided with a bevel gear set, and the bottom of the bevel gear set is provided with a fixed gear ring.

5. The novel energy transfer device of claim 1, wherein, The gear disc one is provided with a gear disc two on one side, the gear disc one and the gear disc two are engaged with each other, and the diameter of the gear disc one is greater than that of the gear disc two.

6. The novel energy transfer device of claim 1, wherein, The transmission shaft one is vertically installed on the supporting plate, and the transmission shaft two is arranged in parallel with the transmission shaft one.

7. The method of using the novel energy transfer device of any of claims 1-6, wherein, The following steps are included: 1) power input: rotate the center main shaft to drive the main gear to rotate; 2) shunt speed increase: the main gear synchronously transmits power to each driven gear set; 3) reversing transmission: the power output by each driven gear set is transmitted to the bevel gear set through the transmission shaft one; 4) multi-converging integration: the multi-path power after reversing is transmitted and collected to the gear disc one through the transmission shaft two; 5) high-speed output: the gear disc one drives the gear disc two to rotate at high speed to complete the second speed increase.

8. The method of using the novel energy transfer device of claim 7, wherein, Step 1) drive the center main shaft by manually shaking the crank handle.

9. The method of using the novel energy transfer device of claim 7, wherein, Step 1) the number of teeth of the main gear is 45 teeth.