Battery cell module size detection equipment with transverse flow heat dissipation mechanism
By using a lateral flow heat dissipation mechanism, which incorporates an exhaust fan and airflow ducts, the problem of insufficient heat dissipation in the battery cell module testing equipment under high load operation is solved, achieving efficient heat removal and ensuring the accuracy and stability of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-03-27
AI Technical Summary
Existing battery cell module size testing equipment suffers from heat accumulation due to limited heat dissipation channels under long-term, high-intensity testing tasks, affecting the accuracy and stability of the equipment.
It adopts a horizontal flow heat dissipation mechanism, which uses an airflow duct composed of an exhaust fan, a filter shell, and a docking shell to achieve efficient heat dissipation and utilize airflow convection for heat dissipation.
It effectively improves the heat dissipation efficiency of the equipment, prevents excessive temperature, and maintains the measurement accuracy and operational stability of the equipment.
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Figure CN224051263U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of detection equipment, specifically relates to a kind of electric core module size detection equipment with transverse flow heat dissipation mechanism. BACKGROUND
[0002] In modern manufacturing industry, electric core module size detection equipment as the key equipment of guaranteeing product quality is widely applied in new energy, electronics and multiple fields.Equipment is measured to the size parameter of electric core module by laser scanning, image recognition and other precision technologies.However, in the process of equipment operation, internal optical element, image processor, servo motor and other core components continue to run, and inevitably produce a large amount of heat.
[0003] At present, the common electric core module size detection equipment on market is mostly provided with heat dissipation channel.Internal heat is forcedly discharged to external environment.But in actual production scene, especially in the case of long-time continuous operation, high-intensity detection task, the continuous high-load operation of equipment makes the heat produced sharply increase.Due to the limitation of heat dissipation channel, air flow is slow, so that the heat dissipation speed of equipment is difficult to match the heat production speed.When heat continuously accumulates, the overall temperature of equipment rapidly rises, exceeds normal working temperature range, not only causes optical element precision to drop, image processor to run to be jammed, seriously affects the measurement accuracy and operating stability of equipment. UTILITY MODEL CONTENTS
[0004] The utility model aims at providing a kind of electric core module size detection equipment with transverse flow heat dissipation mechanism, to solve the common electric core module size detection equipment on market, mostly provided with heat dissipation channel.Internal heat is forcedly discharged to external environment.But in actual production scene, especially in the case of long-time continuous operation, high-intensity detection task, the continuous high-load operation of equipment makes the heat produced sharply increase.Due to the limitation of heat dissipation channel, air flow is slow, so that the heat dissipation speed of equipment is difficult to match the heat production speed.When heat continuously accumulates, the overall temperature of equipment rapidly rises, exceeds normal working temperature range, not only causes optical element precision to drop, image processor to run to be jammed, seriously affects the measurement accuracy and operating stability of equipment.
[0005] To realize the above-mentioned purpose, the utility model provides the following technical scheme: a kind of electric core module size detection equipment with transverse flow heat dissipation mechanism, including rack, the top of the rack is equipped with machine cover, the rack surface on the inside of the machine cover is installed with detection machine, the detection station below the detection machine is also provided with electric core station, the electric core station is installed on the surface of rack;
[0006] The side outer wall of the machine cover is provided with a wind box, the top of the wind box is provided with an air extractor, the side outer wall of the wind box is provided with a fan blade, the top of the machine cover is fixedly embedded with two pipelines, and one end of the two pipelines is communicated into the inside of the wind box.
[0007] In order to remove some foreign matters in the shunt among the filter shell and the butt joint shell when entering the pipeline, as the battery cell module size detection equipment with the transverse flow heat dissipation mechanism, preferably, the interface end of the air extractor is connected with the filter shell, the other side of the filter shell is bonded with the butt joint shell, the filter shell and the butt joint shell are both semicircular structures, and the filter shell and the butt joint shell are installed in the inside of the wind box.
[0008] The side of the butt joint shell is communicated with one end of the fan blade.
[0009] In order to make the hot air in the rack and the machine cover enter the pipeline, as the battery cell module size detection equipment with the transverse flow heat dissipation mechanism, preferably, the bottom of the wind box is symmetrically welded with two mounting plates, the side of the mounting plate is abutted on the outer wall of the machine cover through bolt locking, a group of through holes are formed in the bottom of each pipeline at equal intervals, the side, on which the pipeline is provided with the through hole, is located in the inside of the machine cover, and the transverse length of the pipeline is greater than the transverse length of the machine cover.
[0010] Compared with the prior art, the battery cell module size detection equipment with the transverse flow heat dissipation mechanism has the beneficial effects that:
[0011] When in use, the air extractor is started through an external control switch, and when the air extractor works, external airflow is flowed into the filter shell and the butt joint shell through the fan blade. The airflow in the filter shell and the butt joint shell is further pushed into the two pipelines in the continuous working state of the fan, along with the circulation of the external airflow in the pipeline, the hot air in the rack and the machine cover is flowed into the pipeline through the through hole, and then is flowed to the outside along with the airflow in the pipeline, so that the heat in the rack and the machine cover can be effectively discharged in time, and the heat dissipation function of the inside of the rack and the machine cover is improved. BRIEF DESCRIPTION OF DRAWINGS
[0012] The accompanying drawings are used to provide a further understanding of the present application, and constitute a part of the specification, and are used to explain the present application together with embodiments of the present application, and do not constitute a limitation to the present application. In the drawings:
[0013] Figure 1 The overall assembly structure schematic view provided for the embodiments of the present application.
[0014] Figure 2 The mounting structure schematic view of the rack surface provided for the embodiments of the present application.
[0015] Figure 3The side view structure schematic diagram of the rack provided by the embodiment of the present application.
[0016] Figure 4 The side view structure schematic diagram of the rack provided by the embodiment of the present application.
[0017] Figure 5 The side view structure schematic diagram of the rack provided by the embodiment of the present application.
[0018] Figure 6 The side view structure schematic diagram of the rack provided by the embodiment of the present application.
[0019] In the figure: 1, rack; 2, machine cover; 3, detection machine; 4, battery cell work station; 5, air bellow; 51, mounting plate; 6, air extractor; 61, filter shell; 62, docking shell; 7, fan blade; 8, pipeline; 81, through hole. DETAILED DESCRIPTION
[0020] The technical scheme in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0021] Please refer to Figures 1-6 The present application provides the following technical scheme: a battery cell module size detection equipment with a transverse flow heat dissipation mechanism, comprising a rack 1, a machine cover 2 is installed on the top of the rack 1, a detection machine 3 is installed on the surface of the rack 1 inside the machine cover 2, a battery cell work station 4 is also arranged below the detection work station of the detection machine 3, and the battery cell work station 4 is installed on the surface of the rack 1.
[0022] When used, the battery cell module is placed on the battery cell work station 4, and then the detection machine 3 will detect the size of the battery cell module on the battery cell work station 4. Since the present technical scheme does not involve the technical protection content, the present application file will not make too much description.
[0023] An air bellow 5 is installed on one side outer wall of the machine cover 2, an air extractor 6 is installed on the top of the air bellow 5, a fan blade 7 is installed on one side outer wall of the air bellow 5, two pipelines 8 are fixedly embedded on the top of the machine cover 2, and one end of the two pipelines 8 communicates with the inside of the air bellow 5.
[0024] When used, the air extractor 6 will continuously transport the external airflow into the pipeline 8, so that the external airflow will circulate along the transverse track of the pipeline 8, and the heat generated between the rack 1 and the machine cover 2 can also be transported out during circulation.
[0025] Preferably, the interface end of the air extractor 6 is connected with a filter shell 61, and the other side of the filter shell 61 is bonded with a docking shell 62, both the filter shell 61 and the docking shell 62 are semicircular structures, and the filter shell 61 and the docking shell 62 are installed in the inside of the air bellow 5.
[0026] One side of the docking shell 62 is connected with one end of the fan blade 7.
[0027] In specific use, the filter shell 61 and the docking shell 62 are docked to form an air direction pipeline, and the top end of the air direction pipeline is docked with the interface end of the air extractor 6.
[0028] Preferably, the bottom of the air bellow 5 is symmetrically welded with two mounting plates 51, one side of the mounting plate 51 is docked on the outer wall of the machine cover 2 through bolt locking, a group of through holes 81 are arranged at the bottom of each pipeline 8 at equal intervals, the side of the pipeline 8 provided with the through holes 81 is located in the inside of the machine cover 2, and the transverse length of the pipeline 8 is greater than the transverse length of the machine cover 2.
[0029] In specific use, the operator sends a start instruction to the air extractor 6 through an external control switch. After receiving the signal, the internal motor of the air extractor 6 starts to operate at high speed, driving the external airflow to flow into the air bellow 5. These airflows enter the filter shell 61, and the large dust particles, hairs and other impurities in the air are filtered out by the primary filter screen, so as to avoid affecting the heat dissipation effect and equipment operation.
[0030] The purified airflows continue to move forward and are continuously driven by the air extractor 6 to flow into the two symmetrically distributed pipelines 8 along the specific air ducts. The pipeline 8 is made of high-strength corrosion-resistant material, and the inner wall is treated to be smooth, which can effectively reduce the resistance loss of the airflow in the transmission process. With the rapid flow of the external fresh air in the pipeline 8, a negative pressure environment is formed at the through holes 81 uniformly distributed on the rack 1 and the machine cover 2.
[0031] At this time, the high-temperature hot air in the rack 1 and the machine cover 2 generated by the equipment operation is rapidly sucked into the pipeline 8 through the through holes 81 under the action of the air pressure difference. The hot air and the fresh air are fully mixed in the pipeline 8, and are quickly discharged to the outside of the equipment through the air outlet at the end of the pipeline 8. This forced convection cooling method can carry away a large amount of heat in a short time, and the efficiency is greatly improved compared with natural cooling.
[0032] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and is not intended to limit the present application, although the foregoing embodiments of the present application has been described in detail, for the skilled in the art, it still can be modified, or for the equivalent replacement of part of the technical features of the technical solutions recorded in the foregoing embodiments. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application, shall be included within the scope of the present application.
Claims
1. An electric cell module size detection device with a transverse flow heat dissipation mechanism, comprising a rack (1), a machine cover (2) is installed on the top of the rack (1), characterized in that, The detection machine (3) is installed on the surface of the rack (1) inside the cover (2), and an electric core station (4) is arranged below the detection station of the detection machine (3) and is installed on the surface of the rack (1); The wind box (5) is installed on one side of the outer wall of the cover (2), the top of the wind box (5) is provided with an air extractor (6), one side of the outer wall of the wind box (5) is provided with a fan blade (7), and the top of the cover (2) is fixedly embedded with two pipelines (8), one end of the two pipelines (8) is communicated into the inside of the wind box (5).
2. The battery cell module size detection apparatus having a cross-flow heat dissipation mechanism according to claim 1, characterized by: The interface end of the air extractor (6) is connected with a filter shell (61), and the other side of the filter shell (61) is bonded with a docking shell (62).
3. The battery cell module size detection apparatus having a cross-flow heat dissipation mechanism according to claim 2, characterized by: The filter shell (61) and the docking shell (62) are both semicircular structures, and the filter shell (61) and the docking shell (62) are installed in the inside of the wind box (5).
4. The battery cell module size detection apparatus having a cross-flow heat dissipation mechanism according to claim 2, characterized by: One side of the docking shell (62) is communicated with one end of the fan blade (7).
5. The battery cell module size detection apparatus having a cross-flow heat dissipation mechanism according to claim 1, characterized by: The bottom of the wind box (5) is symmetrically welded with two mounting plates (51), one side of the mounting plate (51) is butt-jointed on the outer wall of the cover (2) through bolts.
6. The battery cell module size detection apparatus having a cross-flow heat dissipation mechanism according to claim 1, characterized by: A group of through holes (81) are evenly arranged at the bottom of each pipeline (8), one side of the pipeline (8) provided with the through holes (81) is located in the inside of the cover (2), and the transverse length of the pipeline (8) is greater than the transverse length of the cover (2).