A drum power transition device
Patent Information
- Application Number
- CN202522060668.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-09-25
AI Technical Summary
[0002]传统的滚筒动力传动装置往往存在动力传递不稳定、冲击大以及适应性差等问题,这些问题严重影响了设备的运行效率和稳定性
本实用新型通过设置独特的动力过渡机构3,能够有效解决现有滚筒动力传动过程中存在的动力传递不稳定、冲击大以及适应性差的问题,具有动力传递平稳、缓冲效果好、适用范围广等优点。
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Figure CN224770801U_ABST
Abstract
Description
Technical Field
[0001] This utility model discloses a roller power transfer device, which relates to the field of power transmission equipment technology. Background Technology
[0002] Traditional roller power transmission devices often suffer from problems such as unstable power transmission, large impacts, and poor adaptability, which seriously affect the operating efficiency and stability of the equipment. To address these issues, this invention proposes a novel roller power transition device. Through a unique power transition mechanism design, it aims to achieve smooth power transmission and a buffering effect, thereby improving the operating efficiency and adaptability of the equipment. Utility Model Content
[0003] In order to solve the problems existing in the prior art, the present invention provides a roller power transfer device.
[0004] The technical solution adopted by this utility model to solve its technical problem is: A roller power transition device includes a driving roller assembly 1, a driven roller assembly 2, and a power transition mechanism 3 connecting the two. The driving roller assembly 1 includes a power motor 101, which is bolted to a bottom mounting plate 301. The output shaft of the power motor 101 is keyed to a driving wheel 103, which is connected to the driving roller 104 via a belt. The driven roller assembly 2 includes a driven roller 201. The power transition mechanism 3 includes a bottom mounting plate 301, a driving transmission component 302, and a driven transmission component 303, respectively disposed at the top of the driving roller 104 and the driven roller 201. The driving transmission component 302 is connected to the driving wheel 103 via a belt, and the driven transmission component 303 is connected to the driving transmission component 302 via a belt.
[0005] This utility model also has the following additional technical features: As a further specific optimization of the technical solution of this utility model: the driving wheel 103 is provided with an upper belt groove, the driving transmission member 302 includes an upper belt groove and a lower belt groove, and the driven transmission member 303 includes a lower belt groove, wherein: the driving wheel 103 and the upper belt groove of the driving transmission member 302 are connected by a belt; the lower belt groove of the driving transmission member 302 and the lower belt groove of the driven transmission member 303 are connected by a belt.
[0006] As a further specific optimization of the technical solution of this utility model: the top end of the active roller 104 and the active transmission component 302 are welded into an integral structure, and the top end of the driven roller 201 and the driven transmission component 303 are welded into an integral structure.
[0007] As a further specific optimization of the technical solution of this utility model: the top end of the active roller 104 and the motor mounting plate 102 are mounted by bearings; the bottom end of the active roller 104 and the bottom mounting plate 301 are mounted by bearings; the top end of the driven roller 201 and the motor mounting plate 102 are mounted by bearings; the bottom end of the driven roller 201 and the bottom mounting plate 301 are mounted by bearings.
[0008] As a further specific optimization of the technical solution of this utility model: the power motor 101 drives the drive wheel 103 to rotate, the drive wheel 103 drives the drive roller 104 to rotate via a belt, and the drive roller 104 drives the driven roller 201 to rotate via a belt.
[0009] As a further specific optimization of the technical solution of this utility model, it includes a protective cover 4, which is bolted to the top of the motor mounting plate 102 and wraps around the outside of the drive wheel 103, the drive transmission component 302 and the driven transmission component 303.
[0010] Compared with the prior art, the advantages of this utility model are: This utility model, by setting a unique power transition mechanism 3, can effectively solve the problems of unstable power transmission, large impact and poor adaptability in the existing roller power transmission process, and has the advantages of smooth power transmission, good buffering effect and wide applicability. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the main structure of this utility model; Figure 2 This is a schematic diagram of the disassembled structure of this utility model.
[0012] Explanation of reference numerals in the attached drawings: 1. Driven roller assembly; 2. Driven roller assembly; 3. Power transfer mechanism; 4. Protective cover. Detailed Implementation
[0013] Exemplary embodiments of the present invention will now be described in more detail with reference to the accompanying drawings.
[0014] A roller power transition device includes a driving roller assembly 1, a driven roller assembly 2, and a power transition mechanism 3 connecting the two. The driving roller assembly 1 includes a power motor 101, which is bolted to a bottom mounting plate 301. The output shaft of the power motor 101 is keyed to a driving wheel 103, which is connected to the driving roller 104 via a belt. The driven roller assembly 2 includes a driven roller 201. The power transition mechanism 3 includes a bottom mounting plate 301, a driving transmission component 302, and a driven transmission component 303, respectively disposed at the top of the driving roller 104 and the driven roller 201. The driving transmission component 302 is connected to the driving wheel 103 via a belt, and the driven transmission component 303 is connected to the driving transmission component 302 via a belt.
[0015] The drive wheel 103 is provided with an upper belt groove, the drive transmission member 302 includes an upper belt groove and a lower belt groove, and the driven transmission member 303 includes a lower belt groove. The drive wheel 103 and the upper belt groove of the drive transmission member 302 are connected by a belt; the lower belt groove of the drive transmission member 302 and the lower belt groove of the driven transmission member 303 are connected by a belt.
[0016] The top end of the driving roller 104 and the driving transmission component 302 are welded together to form an integral structure, and the top end of the driven roller 201 and the driven transmission component 303 are welded together to form an integral structure.
[0017] The top end of the drive roller 104 and the motor mounting plate 102 are mounted by bearings; the bottom end of the drive roller 104 and the bottom mounting plate 301 are mounted by bearings; the top end of the driven roller 201 and the motor mounting plate 102 are mounted by bearings; the bottom end of the driven roller 201 and the bottom mounting plate 301 are mounted by bearings.
[0018] The roller power transition device includes a protective cover 4, which is bolted to the top of the motor mounting plate 102 and covers the outside of the drive wheel 103, the drive transmission component 302 and the driven transmission component 303.
[0019] The transmission principle of the roller power transfer device is as follows: the power motor 101 drives the drive wheel 103 to rotate, the drive wheel 103 drives the drive roller 104 to rotate via the belt, and the drive roller 104 drives the driven roller 201 to rotate via the belt.
[0020] This utility model, by setting a unique power transition mechanism 3, can effectively solve the problems of unstable power transmission, large impact and poor adaptability in the existing roller power transmission process, and has the advantages of smooth power transmission, good buffering effect and wide applicability.
[0021] The above detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention.
Claims
1. A roller power transfer device, characterized in that: The device includes a drive roller assembly (1), a driven roller assembly (2), and a power transition mechanism (3) connecting the two. The drive roller assembly (1) includes a power motor (101), which is bolted to a bottom mounting plate (301). The output shaft of the power motor (101) is connected to a drive wheel (103) via a key. The drive wheel (103) is connected to the drive roller (104) via a belt. The driven roller assembly (2) includes a driven roller (201). The power transition mechanism (3) includes a bottom mounting plate (301), a drive transmission component (302), and a driven transmission component (303) respectively disposed at the top of the drive roller (104) and the driven roller (201). The drive transmission component (302) is connected to the drive wheel (103) via a belt, and the driven transmission component (303) is connected to the drive transmission component (302) via a belt.
2. The roller power transfer device according to claim 1, characterized in that: The drive wheel (103) is provided with an upper belt groove, the drive transmission member (302) includes an upper belt groove and a lower belt groove, and the driven transmission member (303) includes a lower belt groove. The drive wheel (103) and the upper belt groove of the drive transmission member (302) are connected by a belt. The lower belt groove of the drive transmission member (302) and the lower belt groove of the driven transmission member (303) are connected by a belt.
3. The roller power transfer device according to claim 1, characterized in that: The top end of the driving roller (104) and the driving transmission component (302) are welded together to form an integral structure, and the top end of the driven roller (201) and the driven transmission component (303) are welded together to form an integral structure.
4. The roller power transfer device according to claim 1, characterized in that: The top end of the drive roller (104) and the motor mounting plate (102) are mounted by bearings; the bottom end of the drive roller (104) and the bottom mounting plate (301) are mounted by bearings; the top end of the driven roller (201) and the motor mounting plate (102) are mounted by bearings; the bottom end of the driven roller (201) and the bottom mounting plate (301) are mounted by bearings.
5. The roller power transfer device according to claim 1, characterized in that: The power motor (101) drives the drive wheel (103) to rotate, the drive wheel (103) drives the drive drum (104) to rotate via the belt, and the drive drum (104) drives the driven drum (201) to rotate via the belt.
6. The roller power transfer device according to claim 1, characterized in that: It includes a protective cover (4), which is bolted to the top of the motor mounting plate (102) and covers the outside of the drive wheel (103), the drive transmission component (302) and the driven transmission component (303).