Sandstone processing system adjusting mechanism and air-cooling heat dissipation motor

By introducing an adjustment mechanism into the sand and gravel processing system, the airflow velocity and utilization rate are increased, solving the problem of airflow loss in the air-cooled motor and achieving more efficient heat dissipation and energy utilization.

CN223553164UActive Publication Date: 2025-11-14CHINA WATER CONSERVANCY & HYDROPOWER NO 9 ENG BUREAU CO LTD
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Patent Information

Application Number
CN202422059578.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-11-14
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

Air-cooled motors in sand and gravel processing systems suffer from reduced heat dissipation efficiency and energy loss due to airflow loss.

Method used

The sand and gravel processing system adjustment mechanism includes an annular plate, a rectangular block, a reset component, a baffle element, and a snap-fit ​​element. By reducing the gap between the soft rubber baffle and the motor, the airflow velocity is increased, and the airflow utilization rate is improved.

Benefits of technology

This improves the cooling effect of the motor, reduces energy consumption, and ensures the stability of the motor's working performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an adjusting mechanism of a gravel processing system, and relates to the technical field of heat dissipation motors, the adjusting mechanism comprises an adjusting element, the adjusting element comprises an annular plate and rectangular blocks which are distributed in an annular array and connected to the annular plate, a gap between a soft rubber baffle and a motor is reduced, so that the flow rate of airflow passing through the space between the soft rubber baffle and the motor is increased, and the heat dissipation efficiency is improved. The speed of air flow inside and on the outer surface of the motor is increased, so that the cooling effect of the motor is improved, the utilization rate of the air flow is prevented from being reduced by gathering the air flow through the soft rubber baffle, and the loss of energy is further reduced. The utility model provides an air-cooled heat dissipation motor which comprises a fan element, and fan blades installed in a fan shell rotate to generate air flow, so that the air flow circulates in the motor and on the outer surface of the motor and cools the motor, and the working performance of the motor is prevented from being reduced due to the fact that the temperature in the motor is too high. And the stability of the working performance of the motor is ensured.
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Description

Technical Field

[0001] This utility model relates to the technical field of heat dissipation motors, and in particular to an adjustment mechanism for a sand and gravel processing system. Background Technology

[0002] Air-cooled motors are a type of motor that uses airflow to dissipate heat generated inside the motor. Air-cooled motors are typically designed with a heat sink and a fan. They play an important role in sand and gravel processing systems, ensuring long-term operation of the motor and the overall performance of the sand and gravel processing system by providing stable and reliable heat dissipation.

[0003] Air-cooled motors typically generate airflow by rotating fan blades, causing the airflow to flow to one side of the motor. The airflow passes through gaps in the motor housing and circulates between the inside and outside of the motor. As the airflow flows through the motor, it carries away the high temperature inside the motor. However, because the airflow generated by the rotating fan blades cannot completely flow into the inside of the motor, there will be airflow loss. This not only leads to energy loss but also reduces the airflow utilization rate, affecting the efficiency of air cooling. Utility Model Content

[0004] The purpose of this section is to outline some aspects of embodiments of the present invention and to briefly describe some preferred embodiments. Simplifications or omissions may be made in this section, as well as in the abstract and title of this application, to avoid obscuring the purpose of these documents; however, such simplifications or omissions should not be construed as limiting the scope of the present invention.

[0005] In view of the problem that airflow loss in the above-mentioned prior art leads to reduced heat dissipation efficiency, this utility model is proposed.

[0006] Therefore, the purpose of this utility model is to provide an adjustment mechanism for a sand and gravel processing system, which aims to solve the problem of reduced heat dissipation efficiency caused by airflow loss.

[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an adjustment mechanism for a sand and gravel processing system, comprising an adjustment element, including an annular plate, rectangular blocks arranged in a ring array connected to the annular plate, and a reset component arranged in a ring array on the annular plate;

[0008] The partition element includes a steel wire ring disposed on the annular plate and a partition assembly disposed on the steel wire ring.

[0009] The snap-fit ​​element includes a second fixing rod disposed on the reset assembly, and a snap-fit ​​component disposed on the side of the reset assembly.

[0010] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system of this utility model, the reset assembly includes a fixed rod rotatably connected through the rectangular block, a spring symmetrically sleeved on the fixed rod, a telescopic plate connected to the fixed rod, a fixed plate rotatably connected to the telescopic plate, an abutment plate connected to the fixed plate, and a T-shaped slider connected to the fixed plate.

[0011] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system of this utility model, the two ends of the spring one are fixedly connected to the rectangular block and the telescopic plate respectively, the lower surface of the abutment plate one away from the fixed plate one is provided with an inclined surface, and the fixed rod two slides through the fixed plate one.

[0012] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system of this utility model, the partition assembly includes a second steel wire ring connected to the telescopic plate, a soft rubber baffle connected between the first steel wire ring and the second steel wire ring, and a support rod connected between the second steel wire ring and the first steel wire ring.

[0013] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system described in this utility model, the soft rubber baffle is configured as a truncated cone shape.

[0014] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system of this utility model, the snap-fit ​​assembly includes a second fixing plate disposed on the side of the second fixing rod away from the first fixing plate, a T-shaped abutment plate slidably connected through the inside of the second fixing plate, a slide rod symmetrically connected to the second fixing plate, and a second spring sleeved on the slide rod.

[0015] As a preferred embodiment of the adjusting mechanism of the sand and gravel processing system of this utility model, the two ends of the second spring are fixedly connected to the second fixed plate and the T-shaped abutment plate respectively, the slide rod slides inside the T-shaped abutment plate, the upper surface of the T-shaped abutment plate near the second fixed plate is provided with an inclined surface, and the first fixed plate and the T-shaped abutment plate are on the same horizontal plane.

[0016] The beneficial effects of this utility model are as follows: by reducing the gap between the soft rubber baffle and the motor, the airflow velocity between the soft rubber baffle and the motor is increased, which increases the airflow velocity inside and outside the motor, thereby improving the cooling effect of the motor. Furthermore, by concentrating the airflow through the soft rubber baffle, the utilization rate of the airflow is avoided, thus reducing energy consumption.

[0017] In view of the problem of low airflow utilization and energy loss in the above-mentioned prior art, this utility model is proposed.

[0018] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an air-cooled heat dissipation motor, including a fan component, including a fan housing, a fan-shaped plate connected to the fan housing, a limiting slide groove arranged in a ring array on the fan-shaped plate, and a motor connected to the fan-shaped plate.

[0019] In a preferred embodiment of the air-cooled heat dissipation motor described in this utility model, the second fixing rod is fixedly connected to the fan housing, the annular plate is fixedly connected to the motor, and the T-shaped slider slides on the limiting groove.

[0020] In a preferred embodiment of the air-cooled heat dissipation motor described in this utility model, the motor is located at the air outlet of the fan housing.

[0021] The beneficial effects of this utility model are as follows: the airflow generated by the rotation of the fan blades installed inside the fan housing allows the airflow to circulate between the inside and outside surface of the motor, thereby cooling the motor and preventing the motor's performance from being reduced due to excessive internal temperature, thus ensuring the stability of the motor's performance. Attached Figure Description

[0022] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0023] Figure 1 This is a partial structural schematic diagram of the adjustment mechanism of a sand and gravel processing system according to the present invention.

[0024] Figure 2 This is a schematic diagram of the internal structure of the reset component of the adjustment mechanism of a sand and gravel processing system according to the present invention.

[0025] Figure 3 This is a schematic diagram of the internal structure of the baffle component of the adjustment mechanism of a sand and gravel processing system according to this utility model.

[0026] Figure 4 This is a schematic diagram of the internal structure of the snap-fit ​​component of the adjustment mechanism of a sand and gravel processing system according to this utility model.

[0027] Figure 5 This is a schematic diagram of the overall structure of an air-cooled heat dissipation motor according to the present invention.

[0028] Figure 6 This is a schematic diagram of the installation of an air-cooled heat dissipation motor and an adjustment mechanism for a sand and gravel processing system according to the present invention. Detailed Implementation

[0029] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0030] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0031] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0032] Secondly, this utility model is described in detail with reference to the schematic diagrams. When describing the embodiments of this utility model, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not adhering to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of this utility model. In addition, actual manufacturing should include the three-dimensional spatial dimensions of length, width, and depth.

[0033] Example 1

[0034] Reference Figures 1 to 6 As shown in the first embodiment of this utility model, an adjustment mechanism for a sand and gravel processing system is provided. This device includes,

[0035] The adjusting element 100 includes an annular plate 101, rectangular blocks 102 arranged in an annular array and connected to the annular plate 101, and a reset component 103 arranged in an annular array on the annular plate 101. The reset component 103 can achieve the effect of automatically resetting the partition component 200.

[0036] The baffle element 200 includes a wire ring 201 disposed on the annular plate 101 and a baffle assembly 202 disposed on the wire ring 201, which helps to accelerate the airflow velocity on the outer surface of the motor 404, thereby improving the cooling effect of the motor 404.

[0037] The snap-fit ​​element 300 includes a fixing rod 301 disposed on the reset assembly 103 and a snap-fit ​​component 302 disposed on the side of the reset assembly 103. The snap-fit ​​component 302 helps to snap the expansion and contraction of the partition element 200, thereby increasing the stability of the partition element 200 during operation.

[0038] During use, the operator installs the adjusting element 100 on the fan element 400, and then drives the partition element 200 to work by adjusting the reset assembly 103. Through the scaling of the partition element 200 itself, the airflow velocity on the outer surface of the motor 404 is increased, thereby improving the cooling efficiency of the motor 404. Then, the adjusting element 100 is engaged with the snap-fit ​​element 300, so that the snap-fit ​​element 300 can reinforce the partition element 200.

[0039] Example 2

[0040] Reference Figures 1 to 5 As shown, this is the second embodiment of the present invention. This embodiment differs from the first embodiment in that: the reset assembly 103 includes a fixed rod 103a rotatably connected to the rectangular block 102, a spring 103b symmetrically sleeved on the fixed rod 103a, a telescopic plate 103c connected to the fixed rod 103a, a fixed plate 103d rotatably connected to the telescopic plate 103c, a contact plate 103e connected to the fixed plate 103d, and a T-shaped slider 103f connected to the fixed plate 103d. The two ends of the spring 103b are fixedly connected to the rectangular block 102 and the telescopic plate 103c, respectively. The lower surface of the contact plate 103e on the side away from the fixed plate 103d has an inclined surface. The fixed rod 301 slides through the fixed plate 103d. The elasticity generated by the rotation of the fixed rod 103a causes the fixed rod 103a to drive the fixed plate 103d to reset, thus improving the convenience of the reset assembly 103.

[0041] Compared to Embodiment 1, the further embodiment 202 includes a second steel wire ring 202a connected to the telescopic plate 103c, a soft rubber baffle 202b connected between the first steel wire ring 201 and the second steel wire ring 202a, and a support rod 202c connected between the second steel wire ring 202a and the first steel wire ring 201. The soft rubber baffle 202b is shaped like a truncated cone. Due to its easy deformation, the soft rubber baffle 202b helps to guide the airflow, thereby increasing the airflow velocity.

[0042] Compared to Embodiment 1, the snap-fit ​​assembly 302 further includes a second fixed plate 302a disposed on the side of the second fixed rod 301 away from the first fixed plate 103d, a T-shaped abutment plate 302b slidably connected inside the second fixed plate 302a, a slide rod 302c symmetrically connected to the second fixed plate 302a, and a second spring 302d sleeved on the slide rod 302c. The two ends of the second spring 302d are fixedly connected to the second fixed plate 302a and the T-shaped abutment plate 302b respectively. The slide rod 302c slides inside the T-shaped abutment plate 302b. The upper surface of the T-shaped abutment plate 302b near the second fixed rod 301 has an inclined surface, and the first fixed plate 103d and the T-shaped abutment plate 302b are on the same horizontal plane. The snap-fit ​​assembly 302 snaps the partition element 200, preventing shaking when airflow flows inside the partition element 200 and improving the stability of the partition element 200 during operation.

[0043] During use, the operator presses down on the fixing plate 103d, causing the fixing plate 103d to move the contact plate 103e to slide on the outside of the fixing rod 301 towards the side closer to the fan housing 401. This causes the fixing plate 103d to move the T-shaped slider 103f inside the limiting groove 403 towards the center of the fan-shaped plate 402. During the sliding of the contact plate 103e, the inclined surface of the contact plate 103e abuts against the inclined surface of the T-shaped contact plate 302b, causing the T-shaped contact plate 302b to move away from the fixing rod 301 inside the fixing plate 302a. The sliding motion causes the T-shaped contact plate 302b to pull the second spring 302d to extend away from the second fixed plate 302a. As the first contact plate 103e continues to move, it stops contacting the T-shaped contact plate 302b. At this time, under the action of the second spring 302d, the T-shaped contact plate 302b slides inside the second fixed plate 302a towards the side closer to the second fixed rod 301, causing the top of the first contact plate 103e to contact the bottom of the T-shaped contact plate 302b, thereby engaging the first contact plate 103e through the T-shaped contact plate 302b.

[0044] During the movement of the fixed plate 103d, the fixed plate 103d drives the telescopic plate 103c to rotate around the fixed rod 103a towards the side closer to the motor 404. This causes the telescopic plate 103c to drive the spring 103b to rotate synchronously. At the same time, the telescopic plate 103c retracts under the action of the T-shaped slider 103f and the limiting groove 403. As the telescopic plate 103c rotates towards the motor 404, it drives the soft rubber baffle 202b near the fan housing 401 to move via the support rod 202c. This causes the end of the soft rubber baffle 202b near the fan housing 401 to retract towards the side closer to the motor 404, reducing the gap between the soft rubber baffle 202b and the motor 404. This increases the airflow velocity between the soft rubber baffle 202b and the motor 404, thus increasing the airflow velocity inside and outside the motor 404 and improving the cooling effect of the motor 404.

[0045] The remaining structure is the same as that in Example 1.

[0046] Example 3

[0047] Reference Figures 1 to 6 As shown, this is the third embodiment of the present invention. This embodiment differs from the second embodiment in that the fan element 400 includes a fan housing 401, a fan-shaped plate 402 connected to the fan housing 401, a limiting slide groove 403 arranged in a ring array on the fan-shaped plate 402, and a motor 404 connected to the fan-shaped plate 402. By placing the fan element 404 at the air outlet of the fan housing 401, the airflow generated inside the fan housing 401 flows through the inside and outside surface of the motor 404, thereby achieving a cooling effect on the motor 404.

[0048] Compared to Embodiment 2, the second fixing rod 301 is fixedly connected to the fan housing 401, the annular plate 101 is fixedly connected to the motor 404, the T-shaped slider 103f slides on the limiting groove 403, the motor 404 is located at the air outlet of the fan housing 401, and the stability of the reset assembly 103 during operation is achieved by the T-shaped slider 103f sliding inside the limiting groove 403.

[0049] During use, the operator controls the fan blades inside the motor 404 to rotate, causing the fan blades to drive the airflow from outside the fan housing 401 into the fan housing 401, and then discharge it through the fan-shaped plate 402. This causes the airflow generated by the fan housing 401 to blow towards one side of the motor 404, so that part of the airflow enters the motor 404 and part of the airflow flows over the outer surface of the motor 404, thereby cooling the motor 404 and preventing the internal temperature of the motor 404 from becoming too high, which would reduce the working performance of the motor 404 and ensure the stability of the working performance of the motor 404.

[0050] The remaining structure is the same as that in Example 2.

[0051] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. An adjustment mechanism for a sand and gravel processing system, characterized in that: include, The adjustment element (100) includes an annular plate (101), rectangular blocks (102) arranged in a ring array connected to the annular plate (101), and reset components (103) arranged in a ring array on the annular plate (101). The partition element (200) includes a wire ring (201) disposed on the annular plate (101) and a partition assembly (202) disposed on the wire ring (201); The snap-fit ​​element (300) includes a second fixing rod (301) disposed on the reset assembly (103) and a snap-fit ​​assembly (302) disposed on the side of the reset assembly (103).

2. The adjusting mechanism of the sand and gravel processing system according to claim 1, characterized in that: The reset assembly (103) includes a fixed rod (103a) rotatably connected to the rectangular block (102), a spring (103b) symmetrically sleeved on the fixed rod (103a), a telescopic plate (103c) connected to the fixed rod (103a), a fixed plate (103d) rotatably connected to the telescopic plate (103c), an abutment plate (103e) connected to the fixed plate (103d), and a T-shaped slider (103f) connected to the fixed plate (103d).

3. The adjusting mechanism of the sand and gravel processing system according to claim 2, characterized in that: The two ends of the spring (103b) are fixedly connected to the rectangular block (102) and the telescopic plate (103c) respectively. The lower surface of the abutment plate (103e) away from the fixed plate (103d) is provided with an inclined surface. The fixing rod (301) slides through the fixed plate (103d).

4. The adjusting mechanism of the sand and gravel processing system according to claim 3, characterized in that: The partition assembly (202) includes a second steel wire ring (202a) connected to the telescopic plate (103c), a soft rubber baffle (202b) connected between the first steel wire ring (201) and the second steel wire ring (202a), and a support rod (202c) connected between the second steel wire ring (202a) and the first steel wire ring (201).

5. The adjusting mechanism of the sand and gravel processing system according to claim 4, characterized in that: The soft rubber baffle (202b) is configured in the shape of a truncated cone.

6. The adjusting mechanism of the sand and gravel processing system according to claim 4, characterized in that: The snap-fit ​​assembly (302) includes a second fixing plate (302a) disposed on the side of the second fixing rod (301) away from the first fixing plate (103d), a T-shaped abutment plate (302b) slidably connected inside the second fixing plate (302a), a slide rod (302c) symmetrically connected to the second fixing plate (302a), and a second spring (302d) sleeved on the slide rod (302c).

7. The adjusting mechanism of the sand and gravel processing system according to claim 4, characterized in that: The two ends of the second spring (302d) are fixedly connected to the second fixed plate (302a) and the T-shaped abutment plate (302b) respectively. The sliding rod (302c) slides inside the T-shaped abutment plate (302b). The upper surface of the T-shaped abutment plate (302b) near the second fixed rod (301) has an inclined surface, and the first fixed plate (103d) and the T-shaped abutment plate (302b) are on the same horizontal plane.

8. A wind-cooled heat dissipation motor, characterized in that: Including the sand and gravel processing system adjustment mechanism as described in claim 7, it also includes, The fan component (400) includes a fan housing (401), a fan-shaped plate (402) connected to the fan housing (401), a limiting slide groove (403) arranged in a ring array on the fan-shaped plate (402), and a motor (404) connected to the fan-shaped plate (402).

9. The air-cooled heat dissipation motor according to claim 8, characterized in that: The second fixing rod (301) is fixedly connected to the fan housing (401), the annular plate (101) is fixedly connected to the motor (404), and the T-shaped slider (103f) slides on the limiting groove (403).

10. The air-cooled heat dissipation motor according to claim 9, characterized in that: The motor (404) is located at the air outlet of the fan housing (401).