Cooling frame for mechanical part machining
By combining the design of the fan and the atomizer, uniform cooling is achieved during the machining process of mechanical parts, solving the problem of uneven coolant distribution and improving cooling efficiency and part quality.
Patent Information
- Application Number
- CN202520584729.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2035-03-31
AI Technical Summary
Existing cooling devices often result in uneven coolant distribution during the machining of mechanical parts, leading to localized overheating or insufficient cooling, which affects the machining accuracy and surface quality of the parts.
The design incorporates a fan and atomizer. The fan generates airflow that drives the atomizer to atomize the coolant into fine particles, which are then evenly sprayed onto the mechanical parts. A serpentine cooling pipe increases the contact area between the coolant and the parts, achieving uniform cooling.
It improves the utilization rate and cooling effect of coolant, ensures uniform cooling of mechanical parts, shortens cooling time, and enhances machining accuracy and surface quality.
Smart Images

Figure CN223947461U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to mechanical part processing technical field especially, relates to a cooling frame for mechanical part processing. BACKGROUND
[0002] In the mechanical part processing process, due to the action of friction, cutting force, etc., the part will generate a large amount of heat, so that the part temperature rises. Under high temperature environment, the part material will have thermal expansion, softening and other adverse phenomena, which not only will affect the dimensional accuracy and shape accuracy of the part, but also may cause deformation and error accumulation in the processing process, and further reduce the overall quality of the product.
[0003] In order to effectively deal with this problem, the mechanical manufacturing industry generally uses cooling frame to cool the part in the processing process. The cooling frame provides cooling liquid to the processing area, takes away heat, thereby reducing the part temperature, maintaining the stability and precision of the processing process. However, the existing cooling device still has some deficiencies in actual application.
[0004] In particular, the cooling liquid in the existing cooling device often cannot be uniformly distributed to the entire processing area. This may be due to improper parameter settings such as cooling liquid injection mode, injection angle or injection pressure, resulting in uneven flow of cooling liquid in the processing area, and further causing local overheating or insufficient cooling phenomenon. Such uneven cooling effect will directly affect the processing precision and surface quality of the part.
[0005] Therefore, we need to provide a cooling frame for mechanical part processing. SUMMARY
[0006] In order to overcome the disadvantage of uneven cooling effect, the utility model provides a cooling frame for mechanical part processing.
[0007] A cooling frame for mechanical part processing, comprising a support frame, a transmission frame, a motor, a controller, a guide plate and a discharge plate, the support frame top is installed with the transmission frame, the support frame upper left front side is installed with the motor, the motor output shaft is connected with the left front end of the transmission frame, the controller is installed in the support frame inner top left front side, and the controller is electrically connected with the motor, the guide plate is arranged on the top right side of the transmission frame, the discharge plate is arranged on the top left side of the transmission frame, and the cooling assembly is further arranged between the front and rear sides of the support frame.
[0008] In one embodiment, the cooling assembly comprises a connecting frame, a fan, a connecting pipe and an atomizer, the connecting frame is arranged between the front and rear sides of the support frame, the fan is installed on the left side of the connecting frame, the circular through hole is formed in the middle of the connecting frame, and the atomizer is embeddedly installed on the upper part of the connecting frame, and the connecting pipe is connected to the inlet of the atomizer.
[0009] In one of the embodiments, a cooling box and a cooling pipe are further included, the cooling box is arranged at the right side of the support frame, and the cooling pipe is connected between the inlet and the outlet at the left side of the cooling box and located below the transmission frame.
[0010] In one of the embodiments, a blocking net is further included, and the blocking net is arranged at the right side of the circular opening.
[0011] In one of the embodiments, the upper part of the connecting frame is designed in a right-upward inclined manner.
[0012] In one of the embodiments, the cooling pipe is designed in a serpentine manner.
[0013] The utility model has the advantages and obvious progress that:
[0014] The fan can rapidly generate airflow, and the atomizer atomizes the cooling liquid into fine particles, which are uniformly sprayed on the mechanical parts being transported along with the airflow, so that the utilization rate of the cooling liquid is improved, the cooling effect is more uniform and efficient, and the cooling time of the mechanical parts is effectively shortened. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model.
[0016] Figure 2 It is a schematic diagram of the three-dimensional structure of the controller, the material guide plate, the discharging plate and other components of the utility model.
[0017] Figure 3 It is a schematic diagram of the three-dimensional structure of the fan, the connecting pipe and the atomizer and other components of the utility model.
[0018] Figure 4 It is a schematic diagram of the three-dimensional structure of the transmission frame, the cooling box and the cooling pipe and other components of the utility model.
[0019] Figure 5 It is a schematic diagram of the three-dimensional structure of the cooling box and the cooling pipe of the utility model.
[0020] In the figure, 1 is a support frame, 2 is a transmission frame, 3 is a motor, 4 is a controller, 5 is a material guide plate, 6 is a discharging plate, 7 is a connecting frame, 8 is a fan, 9 is a connecting pipe, 10 is an atomizer, 11 is a cooling box, 12 is a cooling pipe, and 13 is a blocking net. DETAILED DESCRIPTION
[0021] The utility model will be further described in detail below in combination with the drawings and specific embodiments, but it does not limit the protection scope and application scope of the utility model.
[0022] The utility model provides a kind of cooling frame for machining mechanical parts, please see Figures 1 to 5 As shown, including support frame 1, transmission frame 2, motor 3, controller 4, guide plate 5, blanking plate 6, connecting frame 7, fan 8, connecting pipe 9, atomizer 10, cooling tank 11, cooling pipe 12 and intercepting net 13, support frame 1 as the main support structure of entire cooling frame, carries all other components, support frame 1 top is equipped with transmission frame 2, transmission frame 2 is by multiple transmission rollers, for conveying mechanical parts, support frame 1 upper left front side is equipped with motor 3, motor 3 is used to provide power, motor 3 output shaft is connected with the left front end of transmission frame 2, transmission frame 2 is driven by the transmission belt of motor 3, and transmission frame 2 is driven, controller 4 is installed in the left front top inside support frame 1, and controller 4 is electrically connected with motor 3, guide plate 5 is connected in the top right side of transmission frame 2, for guiding mechanical parts to drop into transmission frame 2, blanking plate 6 is connected in the top left side of transmission frame 2, to facilitate the mechanical parts after cooling to be unloaded from transmission frame 2, connecting frame 7 is connected between the front and back sides of support frame 1, and connecting frame 7 is located at the left of controller 4, and the upper portion of connecting frame 7 is designed as right upper side inclination, and fan 8 is installed at the left central position of connecting frame 7, and fan 8 is electrically connected with controller 4, and fan 8 is used to generate airflow, and the middle portion of connecting frame 7 is provided with circular through opening, and atomizer 10 is inlaidly installed on the upper portion of connecting frame 7, and atomizer 10 is electrically connected with controller 4, and atomizer 10 atomizes cooling liquid into small particles, improves cooling effect, and is evenly distributed on mechanical parts by airflow, and connecting pipe 9 is connected at the inlet of atomizer 10, and connecting pipe 9 is used to be connected with the port of cooling system, and cooling tank 11 is connected at the right side of support frame 1, and cooling tank 11 is used to store cooling liquid, and cooling pipe 12 is connected between the left side inlet and outlet of cooling tank 11, and cooling pipe 12 is designed as serpentine, can increase the contact area of cooling liquid and mechanical parts, improve cooling efficiency, and the left ends of the two cooling pipes 12 are connected together by connecting block, and the connecting block is connected with the bottom right side of blanking plate 6, supports cooling pipe 12, and cooling pipe 12 is located below transmission frame 2, to facilitate direct cooling of the mechanical parts of transmission, and intercepting net 13 is connected at the right side of circular through opening, for intercepting larger particles in air, to prevent its entering working environment or affecting the quality of mechanical parts.
[0023] When the cooling frame for machining mechanical parts is needed, the cooling frame should be placed in the designated work site first. Then, start the motor 3 through the controller 4. After receiving the signal, the motor 3 transmits power to the transmission frame 2, so that it starts to run smoothly. The transmission rollers on the transmission frame 2 are started, and the mechanical parts are accurately guided from the guide plate 5 to the transmission frame 2, starting the transmission process.
[0024] At the same time, the fan 8 and the atomizer 10 are started by the controller 4. The fan 8 quickly generates an air current that will pass through the circular opening on the connecting frame 7 and uniformly blow on the mechanical parts being transported. Before this, it is necessary to ensure that the connecting pipe 9 has been correctly connected to the port of the cooling system to provide a stable supply of cooling liquid for the atomizer 10. After receiving the cooling liquid, the atomizer 10 atomizes it into fine particles, which are then uniformly sprayed on the mechanical parts by the air current, achieving a high cooling effect.
[0025] During the transportation of the mechanical parts, the cooling pipe 12 is located below the transmission frame 2. The cooling liquid in the cooling pipe 12 adopts a serpentine design, which increases the contact area between the cooling liquid and the transmission frame 2, significantly improving the cooling efficiency. The cooling liquid circulates in the cooling pipe 12, constantly absorbing the heat from the mechanical parts and carrying it away. At the same time, the air current generated by the fan 8 further accelerates the dissipation of heat, further improving the cooling effect.
[0026] When the mechanical parts pass through the cooling pipe 12 and complete the cooling process, they continue to be transported along the transmission frame 2 until they are finally smoothly unloaded from the discharge plate 6. At this time, the operator can prepare the next mechanical part for cooling treatment. Throughout the process, the design of the fan 8 and the atomizer 10 ensures that the atomized cooling liquid is uniformly distributed on the mechanical parts, ensuring the uniformity of the cooling of the mechanical parts. At the same time, the synergy of the cooling box 11 and the cooling pipe 12 further enhances the cooling effect.
[0027] When the mechanical part cooling rack is not needed, the operator should first turn off the motor 3, the fan 8 and the atomizer 10 to ensure that all equipment stops running. Finally, the power is turned off to ensure safety.
[0028] Although the present application has been described with reference to the example embodiments, it is to be understood that the application is not limited to the disclosed example embodiments. The scope of the following claims is to be given the broadest interpretation to encompass all variations and equivalents.
Claims
1. A cooling frame for machining mechanical parts, comprising a support frame (1), a transmission frame (2), a motor (3), a controller (4), a material guide plate (5) and a material discharge plate (6), the transmission frame (2) is installed on the top of the support frame (1), the motor (3) is installed on the upper left front side of the support frame (1), the output shaft of the motor (3) is connected with the left front end of the transmission frame (2), the controller (4) is installed on the inner top left front side of the support frame (1), the controller (4) is electrically connected with the motor (3), the material guide plate (5) is arranged on the top right side of the transmission frame (2), and the material discharge plate (6) is arranged on the top left side of the transmission frame (2), characterized in that, Cooling assembly is arranged between the front and back sides of the support frame (1).
2. The cooling rack for machining of mechanical parts according to claim 1, characterized in that, The cooling assembly comprises a connecting frame (7), a fan (8), a connecting pipe (9) and an atomizer (10), the connecting frame (7) is arranged between the front and back sides of the support frame (1), the left side of the connecting frame (7) is provided with the fan (8), a circular opening is formed in the middle of the connecting frame (7), the atomizer (10) is embeddedly arranged on the upper part of the connecting frame (7), and the connecting pipe (9) is connected to the inlet of the atomizer (10).
3. The cooling rack for machining of mechanical parts as claimed in claim 2, wherein, The cooling box (11) and the cooling pipe (12) are further arranged, the cooling box (11) is arranged on the right side of the support frame (1), the cooling pipe (12) is connected between the left side inlet and the outlet of the cooling box (11), and the cooling pipe (12) is located below the transmission frame (2).
4. The cooling rack for machining of mechanical parts as claimed in claim 3, wherein, The intercepting net (13) is further arranged, and the intercepting net (13) is arranged on the right side of the circular opening.
5. The cooling rack for machining of mechanical parts as claimed in claim 2, wherein, The upper part of the connecting frame (7) is designed to be inclined to the upper right side.
6. The cooling rack for machining of mechanical parts as claimed in claim 3, wherein, The cooling pipe (12) is designed to be in a serpentine shape.