Energy-saving radiator for chemical equipment

By setting a sliding sheath and a rotary cleaning device between the heat sink pipes of the chemical equipment radiator, the problem of reducing heat dissipation efficiency caused by the accumulation of dust on the surface of the spiral blade is solved, and efficient cleaning and improving heat dissipation efficiency are achieved.

CN222881737UActive Publication Date: 2025-05-16INNER MONGOLIA YITAI CTO
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Patent Information

Application Number
CN202421834068.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-05-16
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

After long-term use of existing industrial radiators, dust and impurities are easily adhered to the surface of the spiral blades, resulting in reduced heat dissipation efficiency and difficulty in cleaning.

Method used

An energy-saving radiator for chemical equipment is designed. By setting a sliding sheath between parallel heat sinks, the sheath is equipped with an outer tooth ring and a spiral bristle inside the sheath. The outer tooth ring can be rotated and moved to clean the spiral blades, and multiple sets of blades are achieved simultaneously through gears and transmission components.

Benefits of technology

The surface of the spiral blades is effectively cleaned, the heat dissipation efficiency is improved, the cleaning process is simplified, and the cleaning speed and convenience are improved.

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Abstract

The utility model discloses an energy-saving radiator for chemical equipment, which belongs to the technical field of chemical equipment and comprises a mounting frame, a radiating pipe wound between two sides of the mounting frame in an S shape and a spiral blade welded on horizontal pipe sections of the radiating pipe. Outer gear rings are rotationally installed at the two ends of the interior of the sheath correspondingly, spiral bristles are arranged on the inner sides of the outer gear rings correspondingly, and the spiral bristles are located in gaps of the spiral blades. According to the utility model, the sheath is slidably arranged between the heat dissipation pipes which are parallel to each other, the outer gear ring which is sleeved on the heat dissipation pipes and rotates around the heat dissipation pipes is arranged in the sheath, the spiral bristles are arranged on the inner side of the outer gear ring, and the spiral bristles are positioned in the spiral blades, so that in the process of controlling the rotation of the outer gear ring, the outer gear ring can rotate around the spiral blades; and the outer gear ring can move in the length direction of the heat dissipation pipe to clean the spiral blades, and the heat dissipation effect in the using process is guaranteed.
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Description

Technical Field

[0001] The utility model relates to a radiator, in particular to an energy-saving radiator for chemical equipment, belonging to the technical field of chemical equipment. Background Art

[0002] In the prior art, for example, a utility model with application number 202022890536.9 discloses an industrial radiator. In order to solve the problem that the cooling pipe of the traditional industrial radiator is usually one-way and not long enough when dissipating heat, and the contact area with the air is too small, the utilization rate of the coolant is insufficient, and the heat dissipation means is single, and the heat dissipation efficiency is low by simply dissipating heat through the air, the heat dissipation pipes are spirally arranged and heat dissipation metal sheets are attached to the outer surface, which increases the heat dissipation area in contact with the air while extending the length of the pipe, so that the coolant has sufficient distance for cooling, thereby improving the utilization rate of the coolant and increasing the cooling efficiency.

[0003] Similar to the above application, there are still some shortcomings:

[0004] Although the use of spiral blades increases the contact area with the air, after long-term use, more dust and impurities will adhere to the surface of the blades. The gap between the spiral blades is small, so it is more troublesome to clean them, which affects the efficiency of heat dissipation.

[0005] Therefore, an energy-saving radiator for chemical equipment is designed to optimize the above problems. Utility Model Content

[0006] The main purpose of the utility model is to provide an energy-saving radiator for chemical equipment, by arranging a sliding sheath between mutually parallel heat dissipation tubes, and the interior of the sheath is provided with an outer toothed ring which is sleeved on the heat dissipation tube and rotates around the heat dissipation tube, and in addition, the inner side of the outer toothed ring is provided with spiral bristles, and the spiral bristles are located inside the spiral blades. In the process of controlling the rotation of the outer toothed ring, the outer toothed ring can also move along the length direction of the heat dissipation tube to clean the spiral blades, thereby ensuring the heat dissipation effect during use. A gear is rotatably installed between two groups of outer toothed rings, and a rectangular hole is opened on the gear. The rectangular rod passes through the inside of the rectangular hole, and is used in conjunction with a transmission assembly composed of a motor, a worm, a worm wheel, and a connecting rod. The outer sides of multiple groups of spiral blades can be cleaned simultaneously, thereby improving the cleaning speed and being more convenient to use.

[0007] The purpose of the utility model can be achieved by adopting the following technical solutions:

[0008] An energy-saving radiator for chemical equipment comprises a mounting frame, a heat dissipation pipe coiled in an S shape between two sides of the mounting frame, and spiral blades welded to the horizontal pipe sections of the heat dissipation pipe, a sheath is slidably arranged between adjacent horizontal pipe sections on the heat dissipation pipe, both ends of the interior of the sheath are rotatably arranged with external toothed rings, the inner sides of the external toothed rings are arranged with spiral bristles, and the spiral bristles are located in the gaps of the spiral blades, and a rotating mechanism is arranged between the two groups of external toothed rings inside the sheath.

[0009] Preferably, arc-shaped support plates are fixed on the outer side of the sheath and at positions below both ends of the outer gear ring, and the inner diameter of the arc-shaped support plates is the same as the outer diameter of the outer gear ring.

[0010] Preferably, the length of the spiral bristles is greater than the distance between the outer circumferential surface of the spiral blade and the surface of the heat dissipation tube, and the spiral bristles are attached to the surface of the heat dissipation tube.

[0011] Preferably, protective shells are fixed to both ends of the installation frame, and the protective shells protect the outside of the arc-shaped pipe section of the heat dissipation pipe.

[0012] Preferably: the rotating mechanism includes a gear, a rectangular hole and a rectangular rod, the rectangular rod is rotatably installed between the two ends of the mounting frame, and the rectangular rod is located between adjacent horizontal tube sections on the heat dissipation pipe, the gear is rotatably installed at the middle position inside the sheath, and the gear is meshed with the outer sides of the two sets of outer gear rings, a rectangular hole is opened at the middle position of the gear, the rectangular rod passes through the inside of the rectangular hole, and a transmission assembly for controlling the rotation of multiple sets of rectangular rods is provided inside the sheath.

[0013] Preferably: the transmission assembly includes a motor, a worm, a worm wheel and a connecting rod, the connecting rod is fixed at the end of the rectangular rod, the end of the connecting rod away from the rectangular rod is equipped with a worm wheel, the motor is installed on the inner top of the protective shell, the output end of the motor is installed with a worm, and the worm is meshed with multiple sets of worm wheels.

[0014] Preferably, inclined surfaces are symmetrically arranged on both sides of the bottom end of the installation frame along the length direction, and a conical protrusion is formed at the middle position of the bottom end of the installation frame along the width direction.

[0015] The beneficial effects of the utility model are:

[0016] The utility model provides an energy-saving radiator for chemical equipment, wherein a sliding sheath is arranged between mutually parallel radiating tubes, and an outer toothed ring is arranged inside the sheath, which is sleeved on the radiating tube and rotates around the radiating tube. In addition, spiral bristles are arranged on the inner side of the outer toothed ring, and the spiral bristles are located inside the spiral blades. In the process of controlling the rotation of the outer toothed ring, the outer toothed ring can also move along the length direction of the radiating tube to clean the spiral blades, thereby ensuring the heat dissipation effect during use.

[0017] A gear is installed between two sets of outer gear rings, and a rectangular hole is opened on the gear. A rectangular rod passes through the inside of the rectangular hole, and is used in conjunction with a transmission assembly consisting of a motor, a worm, a worm wheel, and a connecting rod. The outer sides of multiple sets of spiral blades can be cleaned simultaneously, which improves the cleaning speed and is more convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is the internal expansion structure diagram of the utility model;

[0019] Figure 2 It is a cross-sectional view of the sheath of the utility model;

[0020] Figure 3 It is a transmission component diagram of the utility model;

[0021] Figure 4 It is the front view of the utility model.

[0022] In the figure: 1. mounting frame; 2. heat dissipation pipe; 3. spiral blade; 4. protective shell; 5. rectangular rod; 6. sheath; 7. outer gear ring; 8. gear; 9. spiral bristles; 10. rectangular hole; 11. transmission assembly; 12. arc-shaped support plate; 13. motor; 14. worm; 15. worm wheel; 16. connecting rod. DETAILED DESCRIPTION

[0023] In order to make the technical solution of the utility model more clear and specific to those skilled in the art, the utility model is further described in detail below in conjunction with embodiments and drawings, but the implementation methods of the utility model are not limited thereto.

[0024] like Figure 1-Figure 4 As shown, this embodiment provides an energy-saving radiator for chemical equipment, including a mounting frame 1, a heat dissipation pipe 2 coiled in an S shape between two sides of the mounting frame 1, and a spiral blade 3 welded to the horizontal pipe section of the heat dissipation pipe 2, a sheath 6 is slid between adjacent horizontal pipe sections on the heat dissipation pipe 2, both ends of the inside of the sheath 6 are rotatably installed with an outer toothed ring 7, the inner side of the outer toothed ring 7 is provided with spiral bristles 9, and the spiral bristles 9 are located in the gap of the spiral blade 3, and a rotating mechanism is provided between the two groups of outer toothed rings 7 inside the sheath 6.

[0025] Overall working principle: when cleaning the surface of the heat dissipation tube 2, the rotating mechanism is used to drive the two sets of outer toothed rings 7 inside the sheath 6 to rotate. Since the spiral bristles 9 on the inner side of the outer toothed ring 7 are located inside the spiral blade 3 and fit between the spiral blade 3, and the outer toothed ring 7 is sleeved on the outside of the spiral blade 3, which is similar to the fitting relationship between the nut and the screw in the prior art, during the rotation of the outer toothed ring 7, the spiral bristles 9 can rotate and move along the spiral blade 3 to clean the surface of the spiral blade 3.

[0026] In this embodiment, arc-shaped support plates 12 are fixed to the outer side of the sheath 6 and below the two ends of the outer gear ring 7 , and the inner diameter of the arc-shaped support plates 12 is the same as the outer diameter of the outer gear ring 7 .

[0027] Partial working principle: After the dust on the spiral blade 3 is swept off, the arc-shaped support plate 12 is used to receive it, thereby effectively preventing the dust from falling into the spiral blade 3 below.

[0028] In this embodiment, the length of the spiral bristles 9 is greater than the distance between the outer circumferential surface of the spiral blade 3 and the surface of the heat dissipation tube 2 , and the spiral bristles 9 are attached to the surface of the heat dissipation tube 2 .

[0029] Partial working principle: When the spiral bristles 9 rotate and move along the spiral blades 3, the surface of the heat dissipation tube 2 can be cleaned at the same time, and the cleaning is more thorough.

[0030] In this embodiment, protective shells 4 are fixed to both ends of the installation frame 1 , and the protective shells 4 protect the outside of the arc-shaped tube section of the heat dissipation tube 2 .

[0031] Partial working principle: The setting of the protective shell 4 can provide external protection for the arc-shaped pipe section of the heat dissipation pipe 2 and limit the end of the heat dissipation pipe 2.

[0032] In this embodiment, the rotating mechanism includes a gear 8, a rectangular hole 10 and a rectangular rod 5. The rectangular rod 5 is rotatably installed between the two ends of the mounting frame 1, and the rectangular rod 5 is located between adjacent horizontal pipe sections on the heat dissipation pipe 2. The gear 8 is rotatably installed at the middle position inside the sheath 6, and the gear 8 is meshed with the outer sides of the two groups of outer gear rings 7. A rectangular hole 10 is opened at the middle position of the gear 8, and the rectangular rod 5 passes through the inside of the rectangular hole 10. A transmission assembly 11 for controlling the rotation of multiple groups of rectangular rods 5 is provided inside the sheath 4.

[0033] Local working principle: in the process of controlling the rotation of the outer gear ring 7, the rectangular rod 5 is driven to rotate through the transmission assembly 11, and the rectangular rod 5 drives the gear 8 to rotate. In the process of translation of the sleeve 6, the gear 8 can also slide along the length direction of the rectangular rod 5 without affecting the rotation of the gear 8.

[0034] In this embodiment, the transmission assembly 11 includes a motor 13, a worm 14, a worm wheel 15 and a connecting rod 16. The connecting rod 16 is fixed to the end of the rectangular rod 5. The end of the connecting rod 16 away from the rectangular rod 5 is equipped with a worm wheel 15. The motor 13 is installed on the inner top of the protective shell 4. The worm 14 is installed on the output end of the motor 13. The worm 14 is meshed with multiple groups of worm wheels 15.

[0035] Partial working principle: When cleaning, the starting motor 13 drives the worm 14 to rotate. The rotation of the worm 14 simultaneously controls the rotation of multiple groups of worm wheels 15. The worm wheels 15 cooperate with the connecting rod 16 to drive the multiple groups of rectangular rods 5 to rotate.

[0036] In this embodiment, inclined surfaces are symmetrically provided on both sides of the bottom end of the installation frame 1 along the length direction, and a conical protrusion is provided at the middle position of the bottom end of the installation frame 1 along the width direction.

[0037] Partial working principle: some of the dust that falls to the bottom of the installation frame 1 can flow outward along the inclined surface of the bottom of the installation frame 1, thereby preventing dust from accumulating at the bottom of the installation frame 1.

[0038] The above is only a further embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes within the scope disclosed by the present invention according to the technical solution and concept of the present invention, which fall within the protection scope of the present invention.

Claims

1. An energy-saving radiator for chemical equipment, comprising a mounting frame (1), a heat dissipation pipe (2) wound in an S-shape between two sides of the mounting frame (1), and a spiral blade (3) welded to a horizontal pipe section of the heat dissipation pipe (2), characterized in that: A sheath (6) is slidably disposed between adjacent horizontal pipe sections on the heat dissipation pipe (2), and external toothed rings (7) are rotatably mounted at both ends of the interior of the sheath (6). Spiral bristles (9) are disposed on the inner sides of the external toothed rings (7), and the spiral bristles (9) are located in the gaps between the spiral blades (3). A rotating mechanism is disposed between the two sets of external toothed rings (7) inside the sheath (6).

2. The energy-saving radiator for chemical equipment according to claim 1, characterized in that: An arc-shaped support plate (12) is fixed on the outer side of the sleeve (6) and at positions below both ends of the outer gear ring (7), and the inner diameter of the arc-shaped support plate (12) is the same as the outer diameter of the outer gear ring (7).

3. The energy-saving radiator for chemical equipment according to claim 2, characterized in that: The length of the spiral bristles (9) is greater than the distance between the outer circumferential surface of the spiral blade (3) and the surface of the heat dissipation tube (2), and the spiral bristles (9) are attached to the surface of the heat dissipation tube (2).

4. An energy-saving radiator for chemical equipment according to claim 1, 2 or 3, characterized in that: Protective shells (4) are fixed on both ends of the installation frame (1), and the protective shells (4) protect the outside of the arc-shaped pipe section of the heat dissipation pipe (2).

5. The energy-saving radiator for chemical equipment according to claim 4, characterized in that: The rotating mechanism comprises a gear (8), a rectangular hole (10) and a rectangular rod (5); the rectangular rod (5) is rotatably mounted between the two ends of the mounting frame (1), and the rectangular rod (5) is located between adjacent horizontal pipe sections on the heat dissipation pipe (2); the gear (8) is rotatably mounted at a middle position inside the protective sleeve (6), and the gear (8) meshes with the outer sides of two groups of outer gear rings (7); a rectangular hole (10) is provided at a middle position of the gear (8), and the rectangular rod (5) passes through the inside of the rectangular hole (10); and a transmission assembly (11) for controlling the rotation of multiple groups of rectangular rods (5) is provided inside the protective shell (4).

6. The energy-saving radiator for chemical equipment according to claim 5, characterized in that: The transmission assembly (11) comprises a motor (13), a worm (14), a worm wheel (15) and a connecting rod (16). The connecting rod (16) is fixed to the end of the rectangular rod (5). The end of the connecting rod (16) away from the rectangular rod (5) is equipped with a worm wheel (15). The motor (13) is installed at the inner top of the protective shell (4). The output end of the motor (13) is equipped with a worm (14). The worm (14) is meshed with multiple groups of worm wheels (15).

7. The energy-saving radiator for chemical equipment according to claim 6, characterized in that: Inclined surfaces are symmetrically arranged on both sides of the bottom end of the installation frame (1) along the length direction, and a conical protrusion is formed at the middle position of the bottom end of the installation frame (1) along the width direction.

Citation Information

Patent Citations

  • Industrial radiator

    CN214747381U