A removable windscreen structure for an aging test chamber and method of use

By designing an active condensate collection module and a wind speed verification module in the aging test chamber, the problems of condensate damage to test samples and inconsistent wind speeds were solved, thus achieving the accuracy and reliability of test data.

CN122385446APending Publication Date: 2026-07-14HANGZHOU LUNTEK TECH

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
HANGZHOU LUNTEK TECH
Filing Date
2026-04-14
Publication Date
2026-07-14

AI Technical Summary

Technical Problem

Existing aging test chamber devices cannot effectively handle condensate, causing condensate to be blown onto the test specimen by the wind, damaging the specimen. Furthermore, inconsistent wind speeds affect the accuracy of test data.

Method used

A detachable wind deflector structure for an aging test chamber was designed, comprising an active condensate collection module and a wind speed verification module, which are used to actively collect condensate and detect wind speed, respectively, to ensure that the wind speed meets the test requirements.

Benefits of technology

It effectively reduces the probability of condensation being blown onto the test items, ensuring the accuracy of test data. By actively collecting condensation and detecting wind speed, it reduces the possibility of damage to test items and inaccurate data.

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Abstract

This invention provides a detachable wind deflector structure and usage method for an aging test chamber, belonging to the technical field of environmental testing equipment. It includes a wind deflector, an active condensate collection module, a wind force verification module, a first base plate, and a first rotating rod. The active condensate collection module is located on one side of the wind deflector, and the wind force verification module is located on one side of the active condensate collection module. The first base plate is fixedly connected to the other side of the wind deflector, and the first rotating rod is fixedly connected to the front of the first base plate. This invention, through the active condensate collection module, can actively collect condensate, so that the wind blowing towards the test sample will not carry away condensate when passing through the wind deflector. This reduces the probability of condensate being blown onto the test sample, thereby reducing the possibility of damage caused by condensate.
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Description

Technical Field

[0001] This invention relates to the field of environmental testing equipment technology, and in particular to a detachable wind deflector structure and its usage method for an aging test chamber. Background Technology

[0002] The detachable baffle structure for aging test chambers refers to a plate-shaped airflow control component installed inside the aging test chamber to regulate airflow distribution and temperature field uniformity, which can be quickly disassembled and assembled.

[0003] A high-temperature aging test chamber for power batteries, disclosed in Chinese Invention Patent Application Publication No. CN215640792U, has the advantage of facilitating the quick removal of the power battery after the test. However, this device overlooks the fact that the wind blowing towards the baffle may be alternating between hot and cold, which easily leads to condensation. If the condensation is not removed from the baffle in time, it may be carried by the wind and blown onto the test sample, potentially damaging it. Furthermore, the device ignores the fact that the wind speed blowing towards the baffle may be higher than the required wind speed for the test, which could affect the accuracy of the test data. Therefore, this application provides a detachable baffle structure and usage method for an aging test chamber to meet these requirements. Summary of the Invention

[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a detachable wind deflector structure and usage method for an aging test chamber. This solves the problems of existing devices being unable to actively treat condensate, condensate being easily carried by the wind and blown towards the test sample, which can easily damage the test sample, and existing devices being unable to test the wind speed of the incoming wind, which can lead to inaccurate test data due to inconsistencies between the incoming wind speed and the test standard wind speed.

[0005] (II) Technical Solution To solve the above-mentioned technical problems, the present invention provides the following technical solution: A detachable wind deflector structure and usage method for an aging test chamber includes a wind deflector. One side of the wind deflector is provided with an active condensate collection module, and one side of the active condensate collection module is provided with a wind force verification module. A first base plate is fixedly connected to the other side of the wind deflector. A first rotating rod is fixedly connected to the front of the first base plate. L-shaped base plates are fixedly connected to both the front and back of the wind deflector. A threaded hole for a lead screw is opened at the top of the L-shaped base plate, and a lead screw assembly is threaded into the internal thread of the threaded hole.

[0006] Preferably, the active condensate collection module includes an inclined plate, a collection tank is fixedly connected to one side of the inclined plate, a water outlet is fixedly connected to the front of the collection tank, a threaded cap is threadedly connected to the surface of the water outlet, a U-shaped frame is fixedly connected to the top of the collection tank, a waterproof and breathable membrane is provided on the inner wall of the U-shaped frame, and a first connecting block is fixedly connected to both the front and back of the collection tank.

[0007] Preferably, a slide rail is fixedly connected to the back of the first connecting block, a second connecting block is fixedly connected to the back of the slide rail, a wind baffle is fixedly connected to the back of the second connecting block, and a left limiting plate and a right limiting plate are provided on the side of the slide rail from left to right. The left limiting plate and the right limiting plate are both connected to the slide rail by limiting plate bolts.

[0008] Preferably, an elliptical spring is fixedly connected to one side of the left limiting plate, a second base plate is provided on one side of the right limiting plate, the second base plate is threadedly connected to the right limiting plate by base plate bolts, a strong magnetic block is provided on the other side of the right limiting plate, and a heat-expanding block is provided on one side of the second base plate.

[0009] Preferably, one end of the elliptical spring is fixedly connected to a vertical plate, the inner wall of the vertical plate is fixedly connected to a horizontal cavity box, a strip groove is provided on one side of the horizontal cavity box, an oblique nozzle is provided at the bottom of the horizontal cavity box, and a slider is fixedly connected to the bottom of the vertical plate.

[0010] Preferably, the slider has grooves on both the front and back sides, and motion wheel holes are formed at the top and bottom of the grooves. A motion wheel is provided inside the motion wheel hole, and the motion wheel and the groove are adapted to each other.

[0011] Preferably, the wind power verification module includes a third base plate, a vertical base plate is fixedly connected to the top of the third base plate, a roller hole is opened on the front of the vertical base plate, a roller is installed inside the roller hole, a wide-spacing connecting plate is provided on the surface of the roller, and a rectangular frame is fixedly connected to the bottom of the wide-spacing connecting plate.

[0012] Preferably, the inner wall of the rectangular frame is provided with a rotating rod hole, a second rotating rod is installed inside the rotating rod hole, a torsion spring is fixedly connected to one end of the second rotating rod, an adjusting bolt is fixedly connected to one end of the torsion spring, a threaded sleeve is threadedly connected to the surface of the adjusting bolt, and a square block is fixedly connected to one end of the threaded sleeve.

[0013] Preferably, a rectangular frame is fixedly connected to the back of the square block, a flared end is fixedly connected to one side of the rectangular frame, a narrow end is fixedly connected to one side of the flared end, a narrow groove is provided on one side of the narrow end, and a flip door is fixedly connected to one end of the second rotating rod.

[0014] A method of using a detachable baffle structure for an aging test chamber includes the following steps: Step 1: By adjusting the height of the baffle plate on the screw assembly, one side of the baffle plate can be raised or lowered. The baffle plate is rotated and flipped by the first rotating rod. At this time, the height of the other side of the baffle plate is constant, thereby adjusting the tilt of the baffle plate. The fan is generally set above the side of the baffle plate. The air blown by the fan blows the upper part of the baffle plate with the adjusted angle onto the test object. The condensate collection module is responsible for actively cleaning and collecting the condensate after the cold air blows and after the hot air blows for a while, so as to prevent the wind from blowing condensate onto the test object. The wind speed verification module is responsible for verifying the speed of the wind blown by the fan and judging whether the wind speed is consistent with the wind speed required for the test. If the wind blown by the fan is too strong, it will make a sharp sound to remind the surrounding test personnel to readjust the wind speed of the fan. Step 2: Under normal conditions, the vertical plate is pressed against the heat expansion block on the right limit plate by the elliptical spring. The heat expansion block will not expand at low or normal temperatures. When the heat expansion block does not expand, the strong magnetic block will firmly attract the vertical plate to the right limit plate. When the cold air finishes blowing and the hot air begins, after the hot air blows for a period of time, the heat expansion block absorbs enough heat and expands, pushing the vertical plate away from the right limit plate. The hot air will then blow the vertical plate towards the left limit plate. At this time, the elliptical spring will be compressed. Because the airflow is continuous, the vertical plate will eventually be pressed against the left limit plate. Part of the airflow will enter the horizontal cavity box and be blown obliquely towards the condensate on the baffle plate through the angled nozzle. In this way, the airflow can be blown obliquely while moving, thereby blowing the condensate into the collection tank. The vertical plate moves within the slide rail via a slider, while the motion wheel makes the slider move more smoothly within the slide rail. After the wind passes through the wind deflector, the wind will pass through the waterproof and breathable membrane, but the condensate will not pass through the waterproof and breathable membrane, thereby reducing the possibility of damage to the test item due to condensate being blown onto it to a certain extent. Step 3: After the wind blows through the wind force verification module, the module can test whether the wind speed exceeds the required wind speed. When the wind blows, the rectangular frame will be carried by the wind and push the rotating roller to rotate. Because the stiffness coefficient of the torsion spring has been adjusted in advance by adjusting the bolts, the difficulty of rotating the torsion spring has also been adjusted. Therefore, the rotation difficulty of the second rotating rod is proportional to the required wind speed. At this time, the flip door will not be flipped. When the wind blows greater than the required wind speed, the wind blows towards the flip door, and the second rotating rod will rotate, which will flip the flip door. The airflow passes through the rectangular frame into the flared end, and then into the narrow end to compress the airflow movement space. Finally, it is released from the narrow slot of the narrow end. When the airflow passes out, it will make a sharp sound, thus reminding the tester that the current test wind speed exceeds the predetermined wind speed and needs to be adjusted immediately.

[0015] Compared with the prior art, the present invention has at least the following beneficial effects: In the above solution, the active condensate collection module can actively collect condensate, so that the wind blowing towards the test sample will not carry condensate when it passes the wind deflector. This can reduce the probability of condensate being carried by the wind onto the test sample, thereby reducing the possibility of damage to the test sample caused by condensate being blown onto it.

[0016] By setting up a wind force verification module, this module can verify whether the wind force exceeds the wind speed required for the test. When the wind speed exceeds the wind speed required for the test, it can emit a sharp sound to inform the test personnel that the current test wind speed exceeds the predetermined wind speed and needs to be adjusted immediately. This can reduce the possibility of the wind speed being too high and not meeting the test wind speed, thereby reducing the possibility of inaccurate test data due to excessive test wind speed.

[0017] In summary, the present invention has the advantages of actively collecting condensate to reduce the amount of condensate carried by the wind onto the test sample and actively verifying the wind speed to ensure the accuracy of the test data. Attached Figure Description

[0018] Figure 1 A schematic diagram illustrating the structure and usage of a detachable wind baffle for an aging test chamber; Figure 2 for Figure 1 Schematic diagram of the windshield assembly; Figure 3 for Figure 1 Schematic diagram of the active condensate collection module; Figure 4 for Figure 3 Schematic diagram of the collection pool assembly; Figure 5 for Figure 3 Schematic diagram of the slide rail assembly; Figure 6 for Figure 3 Schematic diagram of the limit plate assembly; Figure 7 for Figure 6 Enlarged schematic diagram of a local part of the structure; Figure 8 for Figure 3 Schematic diagram of the oblique blow assembly; Figure 9 for Figure 8 Enlarged schematic diagram of a local part of the structure; Figure 10 for Figure 1 A schematic diagram of the wind power verification module; Figure 11 for Figure 10 Schematic diagram of the roller assembly; Figure 12 for Figure 10 Schematic diagram of the T-shaped plate assembly; Figure 13 for Figure 12 Enlarged schematic diagram of a local part of the structure.

[0019] [Figure Labels] 1. Windshield; 2. Condensate active collection module; 201. Inclined plate; 202. Collection tank; 203. Water outlet; 204. Threaded cap; 205. U-shaped frame; 206. Waterproof and breathable membrane; 207. First connecting block; 208. Slide rail; 209. Second connecting block; 210. Left limiting plate; 211. Right limiting plate; 212. Elliptical spring; 213. Second base plate; 214. Strong magnetic block; 215. Heat expansion block; 216. Vertical plate; 217. Horizontal cavity box; 21 8. Angled nozzle; 219. Slider; 220. Moving wheel; 3. Wind power verification module; 301. Third base plate; 302. Vertical base plate; 303. Rotating roller; 304. Wide-spacing connecting plate; 305. Rectangular frame; 306. Second rotating rod; 307. Torsion spring; 308. Adjusting bolt; 309. Threaded sleeve; 310. Square block; 311. Flared end; 312. Narrow end; 313. Flip-up door; 4. First base plate; 5. First rotating rod; 6. L-shaped base plate; 7. Screw assembly.

[0020] As shown in the figure, specific structures and devices are marked in the figure to clearly illustrate the structure of the embodiments of the present invention. However, this is only for illustrative purposes and is not intended to limit the present invention to this specific structure, device and environment. Those skilled in the art can adjust or modify these devices and environments according to specific needs. Detailed Implementation

[0021] The following describes in detail, with reference to the accompanying drawings and specific embodiments, a detachable baffle structure for an aging test chamber and its usage method provided by the present invention. It should also be noted that, to make the embodiments more detailed, the following embodiments are the best and preferred embodiments; those skilled in the art can also use other alternative methods to implement some known technologies; and the accompanying drawings are only for more specific description of the embodiments and are not intended to specifically limit the present invention.

[0022] It should be noted that the use of terms such as "an embodiment," "an embodiment," "an exemplary embodiment," and "some embodiments" in the specification indicates that the described embodiment may include a specific feature, structure, or characteristic, but not every embodiment necessarily includes that specific feature, structure, or characteristic. Furthermore, when a specific feature, structure, or characteristic is described in connection with an embodiment, implementing such a feature, structure, or characteristic in conjunction with other embodiments (whether explicitly described or not) should be within the knowledge of those skilled in the art.

[0023] Generally, terms can be understood at least partly from their use in context. For example, depending at least partly on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in a singular sense, or a combination of features, structures, or characteristics in a plural sense. Additionally, the term "based on" can be understood not necessarily to convey an exclusive set of factors, but rather, alternatively, depending at least partly on the context, to allow for the presence of other factors that are not necessarily explicitly described.

[0024] It is understood that the meanings of “on”, “above”, and “above” in this invention should be interpreted in the broadest manner, such that “on” means not only “directly on” something, but also includes the meaning of being “on” something with an intervening feature or layer, and that “above” or “above” means not only “on” something, but also includes the meaning of being “on” something without an intervening feature or layer.

[0025] Furthermore, spatially related terms such as “below,” “under,” “lower,” “above,” and “upper” are used herein for convenience to describe the relationship of one element or feature to one or more other elements or features, as illustrated in the accompanying drawings. Spatially related terms are intended to cover different orientations in the use or operation of the device other than those depicted in the accompanying drawings. The device may be oriented in other ways, and the spatially related descriptive terms used herein can be interpreted similarly.

[0026] like Figures 1 to 2As shown, an embodiment of the present invention provides a detachable wind deflector structure and usage method for an aging test chamber, including a wind deflector 1. A condensate active collection module 2 is provided on one side of the wind deflector 1, and a wind force verification module 3 is provided on one side of the condensate active collection module 2. A first base plate 4 is fixedly connected to the other side of the wind deflector 1. A first rotating rod 5 is fixedly connected to the front of the first base plate 4. An L-shaped base plate 6 is fixedly connected to both the front and back of the wind deflector 1. A screw thread hole is opened at the top of the L-shaped base plate 6, and a screw assembly 7 is threadedly connected inside the screw thread hole.

[0027] The condensate collection module 2 is welded to the side of the wind deflector 1. The wind power verification module 3 is welded to the side of the condensate collection module 2. The first base plate 4 is welded to the other side of the wind deflector 1. The first rotating rod 5 is welded to the first base plate 4. The L-shaped base plate 6 is welded to the front and back of the wind deflector 1. The lead screw assembly 7 is screwed into the lead screw thread hole of the L-shaped base plate 6.

[0028] By adjusting the height of the baffle plate 1 on the screw assembly 7, one side of the baffle plate 1 can be raised or lowered. The baffle plate 1 is rotated and flipped by the first rotating rod 5. At this time, the height of the other side of the baffle plate 1 is constant, thereby adjusting the tilt of the baffle plate 1. The fan is generally set above the side of the baffle plate 1. The air blown by the fan blows the test sample through the upper part of the baffle plate 1 with the angle adjusted. The condensate collection module 2 is responsible for actively cleaning and collecting the condensate after the cold air blows and after the hot air blows for a while, thereby preventing the wind from carrying condensate to blow the test sample. The wind speed verification module 3 is responsible for verifying the speed of the wind blown by the fan and judging whether the wind speed is consistent with the wind speed required for the test. If the wind blown by the fan is too strong, it will make a sharp sound to remind the surrounding test personnel to readjust the wind speed of the fan.

[0029] like Figures 3 to 9 As shown, in this embodiment, the condensate active collection module 2 includes an inclined plate 201, a collection tank 202 is fixedly connected to one side of the inclined plate 201, a water outlet 203 is fixedly connected to the front of the collection tank 202, a threaded cap 204 is threadedly connected to the surface of the water outlet 203, a U-shaped frame 205 is fixedly connected to the top of the collection tank 202, a waterproof and breathable membrane 206 is provided on the inner wall of the U-shaped frame 205, and a first connecting block 207 is fixedly connected to both the front and back of the collection tank 202.

[0030] The back of the first connecting block 207 is fixedly connected to the slide rail 208, the back of the slide rail 208 is fixedly connected to the second connecting block 209, the back of the second connecting block 209 is fixedly connected to the wind baffle 1, and the side of the slide rail 208 is provided with a left limiting plate 210 and a right limiting plate 211 from left to right. The left limiting plate 210 and the right limiting plate 211 are both connected to the slide rail 208 by limiting plate bolts.

[0031] An elliptical spring 212 is fixedly connected to one side of the left limiting plate 210. A second base plate 213 is provided on one side of the right limiting plate 211. The second base plate 213 is threadedly connected to the right limiting plate 211 via base plate bolts. A strong magnetic block 214 is provided on the other side of the right limiting plate 211. A heat-expanding block 215 is provided on one side of the second base plate 213.

[0032] One end of the elliptical spring 212 is fixedly connected to a vertical plate 216. A horizontal cavity box 217 is fixedly connected to the inner wall of the vertical plate 216. A strip groove is provided on one side of the horizontal cavity box 217. An oblique nozzle 218 is provided at the bottom of the horizontal cavity box 217. A slider 219 is fixedly connected to the bottom of the vertical plate 216.

[0033] The slider 219 has grooves on both the front and back sides, and motion wheel holes are provided at the top and bottom of the grooves. A motion wheel 220 is provided inside the motion wheel hole, and the motion wheel 220 and the groove are adapted to each other.

[0034] An inclined plate 201 is welded between the windbreak plate 1 and the collection tank 202. The water outlet 203 is welded to the front of the collection tank 202. A threaded cap 204 is screwed onto the surface of the water outlet 203. A U-shaped frame 205 is welded to the top of the collection tank 202. A waterproof and breathable membrane 206 is integrally connected to the U-shaped frame 205. A first connecting block 207 is welded between the collection tank 202 and the slide rail 208. A second connecting block 209 is welded between the slide rail 208 and the windbreak plate 1. The left limiting plate 210 and the right limiting plate 211 are both fixed to the left side of the slide rail 208 using limiting plate bolts. On the right side, an elliptical spring 212 is welded between the left limiting plate 210 and the vertical plate 216. The second base plate 213 is fixed to the right limiting plate 211 by base plate bolts. The heat expansion block 215 is integrally connected to the second base plate 213. The strong magnetic block 214 is attracted to the right limiting plate 211. The transverse cavity box 217 is welded to the inner wall of the vertical plate 216. The strip groove and the transverse cavity box 217 are integrally formed. The angled nozzle 218 and the transverse cavity box 217 are integrally formed. The slider 219 is placed in the slide rail 208, and the motion wheel 220 is installed into the groove with the motion wheel hole.

[0035] Normally, the vertical plate 216 is pressed against the heat-expanding block 215 on the right limiting plate 211 by the elliptical spring 212. The heat-expanding block 215 will not expand at low or normal temperatures. When the heat-expanding block 215 is not expanding, the strong magnet 214 will firmly hold the vertical plate 216 to the right limiting plate 211. When the cold air finishes blowing and the hot air begins, after a period of time, the heat-expanding block 215 absorbs enough heat and expands, holding the vertical plate 216 firmly against the right limiting plate 211. Pushing the vertical plate 216 away from the right limiting plate 211, the hot air will blow the vertical plate 216 towards the left limiting plate 210. At this time, the elliptical spring 212 will be compressed. Because the airflow is continuous, the vertical plate 216 will eventually be pressed against the left limiting plate 210. Part of the airflow will enter the transverse cavity box 217 and blow the airflow obliquely towards the condensate on the baffle plate 1 through the oblique nozzle 218. In this way, the airflow can be blown obliquely while moving, thereby blowing the condensate into the collection tank 202. The vertical plate 216 moves within the slide rail 208 via the slider 219, while the motion wheel 220 makes the slider 219 move more smoothly within the slide rail 208. After the wind passes through the wind deflector 1, the wind will pass through the waterproof and breathable membrane 206, but the condensate will not pass through the waterproof and breathable membrane 206, thereby reducing the possibility of damage to the test item due to the condensate being blown onto it to a certain extent.

[0036] like Figures 10 to 13 As shown, in this embodiment, the wind power verification module 3 includes a third base plate 301, a vertical base plate 302 is fixedly connected to the top of the third base plate 301, a roller hole is opened on the front of the vertical base plate 302, a roller 303 is installed inside the roller hole, a wide-spacing connecting plate 304 is provided on the surface of the roller 303, and a rectangular frame 305 is fixedly connected to the bottom of the wide-spacing connecting plate 304.

[0037] The inner wall of the rectangular frame 305 has a rotating rod hole, and a second rotating rod 306 is installed inside the rotating rod hole. A torsion spring 307 is fixedly connected to one end of the second rotating rod 306, and an adjusting bolt 308 is fixedly connected to one end of the torsion spring 307. A threaded sleeve 309 is threadedly connected to the surface of the adjusting bolt 308, and a square block 310 is fixedly connected to one end of the threaded sleeve 309.

[0038] A rectangular frame 305 is fixedly connected to the back of the square block 310. A flared end 311 is fixedly connected to one side of the rectangular frame 305. A narrow end 312 is fixedly connected to one side of the flared end 311. A narrow groove is provided on one side of the narrow end 312. A flip door 313 is fixedly connected to one end of the second rotating rod 306.

[0039] The third base plate 301 is welded to the side of the U-shaped frame 205 of the condensate active collection module 2. The vertical base plate 302 is welded to the top of the third base plate 301. The rotating roller 303 is installed into the rotating roller hole of the vertical base plate 302. The wide-spacing connecting plate 304 is welded to the surface of the rotating roller 303. The rectangular frame 305 is welded to the wide-spacing connecting plate 304. The second rotating rod 306 is welded between the torsion spring 307 and the flip door 313. 06 is located in the rotating rod hole on the rectangular frame 305. The adjusting bolt 308 is welded to the end of the torsion spring 307. The adjusting bolt 308 is pre-screwed into the threaded sleeve 309 before welding. The threaded sleeve 309 is welded to the square block 310. The square block 310 is welded to the rectangular frame 305. The flared end 311 is welded to the rectangular frame 305. The narrow end 312 is welded to the flared end 311. The narrow groove and the narrow end 312 are integrally formed.

[0040] After the wind blows through the wind force verification module 3, the module can test whether the wind speed exceeds the required test speed. When the wind blows, the rectangular frame 305 is carried by the wind, pushing the rotating roller 303 to rotate. Because the stiffness coefficient of the torsion spring 307 has been adjusted in advance by adjusting bolt 308, the difficulty of rotating the torsion spring 307 has also been adjusted. Therefore, the rotation difficulty of the second rotating rod 306, which is together with it, is proportional to the required test wind speed. At this time, the flipping... The rotating door 313 will not be flipped. When the wind blowing is greater than the wind speed required for the test, the wind blows towards the rotating door 313. At this time, the second rotating rod 306 will rotate, which will flip the rotating door 313. The airflow passes through the rectangular frame 305 and enters the flared end 311, and then enters the narrow end 312 to compress the airflow movement space. Finally, it is released from the narrow slot of the narrow end 312. When the airflow passes out, it will make a sharp sound, thus reminding the tester that the current test wind speed exceeds the predetermined wind speed and needs to be adjusted immediately.

[0041] A method of using a detachable baffle structure for an aging test chamber includes the following steps: Step 1: By adjusting the height of the baffle plate 1 on the lead screw assembly 7, one side of the baffle plate 1 can be raised or lowered. The baffle plate 1 is rotated and flipped by the first rotating rod 5. At this time, the height of the other side of the baffle plate 1 is constant, thereby adjusting the tilt of the baffle plate 1. The fan is generally set above the side of the baffle plate 1. The air blown by the fan blows through the upper part of the baffle plate 1 with the adjusted angle towards the test object. The condensate collection module 2 is responsible for actively cleaning and collecting the condensate after the cold air blows and after the hot air blows for a while, thereby preventing the wind from carrying condensate towards the test object. The wind speed verification module 3 is responsible for verifying the speed of the wind blown by the fan and judging whether the wind speed is consistent with the wind speed required for the test. If the wind blown by the fan is too strong, it will make a sharp sound to remind the surrounding test personnel to readjust the wind speed of the fan. Step 2: Under normal conditions, the vertical plate 216 is pressed against the heat-expanding block 215 on the right limiting plate 211 by the elliptical spring 212. The heat-expanding block 215 will not expand at low or normal temperatures. When the heat-expanding block 215 is not expanding, the strong magnet 214 will firmly attach the vertical plate 216 to the right limiting plate 211. When the cold air finishes blowing and the hot air begins, after a period of time, the heat-expanding block 215 absorbs enough heat and will expand. Push the vertical plate 216 away from the right limit plate 211. At this time, the hot air will blow the vertical plate 216 towards the left limit plate 210. At this time, the elliptical spring 212 will be compressed. Because the airflow is continuous, the vertical plate 216 will eventually be pressed against the left limit plate 210. Part of the airflow will enter the transverse cavity box 217 and blow the airflow obliquely towards the condensate on the baffle plate 1 through the oblique nozzle 218. In this way, the airflow can be blown obliquely while moving, thereby blowing the condensate into the collection tank 202. The vertical plate 216 moves within the slide rail 208 via the slider 219, while the motion wheel 220 makes the slider 219 move more smoothly within the slide rail 208. After the wind passes through the wind deflector 1, the wind will pass through the waterproof and breathable membrane 206, but the condensate will not pass through the waterproof and breathable membrane 206, thereby reducing the possibility of damage to the test item due to the condensate being blown onto it to a certain extent. Step 3: After the wind blows through the wind force verification module 3, this module can test whether the wind speed exceeds the required test speed. When the wind blows, the rectangular frame 305 will be carried by the wind, pushing the rotating roller 303 to rotate. Because the stiffness coefficient of the torsion spring 307 has been adjusted in advance through the adjusting bolt 308, the difficulty of rotating the torsion spring 307 has also been adjusted. Therefore, the rotation difficulty of the second rotating rod 306, which is together with it, is proportional to the required test wind speed. When the wind is stronger than the wind speed required for the test, the second rotating rod 306 will rotate, which will flip the door 313. The airflow passes through the rectangular frame 305 and enters the flared end 311, and then enters the narrow end 312 to compress the airflow space. Finally, it is released from the narrow slot of the narrow end 312. When the airflow passes out, it will make a sharp sound, thus reminding the tester that the current test wind speed exceeds the predetermined wind speed and needs to be adjusted immediately.

[0042] The technical solution provided by this invention is as follows: By adjusting the height of the baffle plate 1 on the lead screw assembly 7, one side of the baffle plate 1 can be raised or lowered. The baffle plate 1 is rotated and flipped by the first rotating rod 5. At this time, the height of the other side of the baffle plate 1 is constant, thereby achieving the adjustment of the tilt angle of the baffle plate 1. The fan is generally set above the side of the baffle plate 1. The air blown by the fan blows through the upper part of the baffle plate 1 with the angle adjusted to blow towards the test object. The condensate active collection module 2 is responsible for actively cleaning and collecting the condensate after the cold air blows and after the hot air blows for a period of time, thereby preventing the wind from carrying condensate towards the test object. The wind speed verification module 3 is responsible for verifying the speed of the wind blown by the fan and judging whether its wind speed is consistent with the wind speed required for the test. If the fan blows too much air, it will emit a sharp sound, prompting nearby testers to readjust the fan speed. Normally, the vertical plate 216 is held against the heat-expanding block 215 on the right limiting plate 211 by the elliptical spring 212. The heat-expanding block 215 will not expand at low or normal temperatures. When the heat-expanding block 215 is not expanding, the strong magnet 214 will firmly hold the vertical plate 216 to the right limiting plate 211. When the cold air finishes blowing and the hot air begins, after a period of time, the heat-expanding block 215 absorbs enough heat and expands, pushing the vertical plate 216 away from the right limiting plate 211. The hot air will then blow the vertical plate 216 towards the left limiting plate 210. At this point, the elliptical spring 212 will be compressed because the airflow is continuous and uninterrupted. Finally, the vertical plate 216 will continue to press against the left limiting plate 210. Part of the airflow will enter the horizontal cavity box 217 and be blown obliquely towards the condensate on the wind deflector 1 through the oblique nozzle 218. This allows for oblique airflow while moving, thus blowing the condensate into the collection pool 202. The vertical plate 216 moves within the slide rail 208 via the slider 219, and the moving wheel 220 makes the slider 219 move more smoothly within the slide rail 208. After the wind passes through the wind deflector 1, the wind will pass through the waterproof and breathable membrane 206, but the condensate will not pass through the waterproof and breathable membrane 206, thereby reducing the amount of condensate blown onto the test item to a certain extent. This reduces the possibility of damage to items. After the wind blows through the wind force verification module 3, the module can test whether the wind speed exceeds the required test speed. When the wind blows, the rectangular frame 305 is carried by the wind, pushing the rotating roller 303 to rotate. Because the stiffness coefficient of the torsion spring 307 has been adjusted in advance by adjusting bolt 308, the difficulty of rotating the torsion spring 307 has also been adjusted. Therefore, the rotation difficulty of the second rotating rod 306 is proportional to the required test wind speed. At this time, the flip door 313 will not be flipped. When the wind blows greater than the required test wind speed, the wind blows towards the flip door 313, at which time the second rotating rod 306 will rotate, thereby flipping the flip door 313.The airflow passes through the rectangular frame 305 into the flared end 311, then enters the narrow end 312 where its movement is compressed. Finally, it is released from the narrow slot of the narrow end 312, producing a sharp sound as it exits, thus alerting the test personnel that the current wind speed exceeds the predetermined speed and requires immediate adjustment.

[0043] This invention encompasses any substitutions, modifications, equivalent methods, and solutions made within the spirit and scope of this invention. To provide the public with a thorough understanding of this invention, specific details are described in detail in the following preferred embodiments; however, those skilled in the art will fully understand the invention even without these details. Furthermore, to avoid unnecessary misunderstanding of the essence of this invention, well-known methods, processes, procedures, components, and circuits are not described in detail.

[0044] The above are merely preferred embodiments of the present invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A detachable baffle structure for an aging test chamber, characterized in that, The wind deflector includes a wind deflector (1), a condensate collection module (2) is provided on one side of the wind deflector (1), a wind power verification module (3) is provided on one side of the condensate collection module (2), a first base plate (4) is fixedly connected to the other side of the wind deflector (1), a first rotating rod (5) is fixedly connected to the front of the first base plate (4), and an L-shaped base plate (6) is fixedly connected to both the front and back of the wind deflector (1). A screw thread hole is opened at the top of the L-shaped base plate (6), and a screw assembly (7) is threaded inside the screw thread hole.

2. The detachable baffle structure for the aging test chamber according to claim 1, characterized in that, The active condensate collection module (2) includes an inclined plate (201), a collection tank (202) is fixedly connected to one side of the inclined plate (201), a water outlet (203) is fixedly connected to the front of the collection tank (202), a threaded cap (204) is threadedly connected to the surface of the water outlet (203), a U-shaped frame (205) is fixedly connected to the top of the collection tank (202), a waterproof and breathable membrane (206) is provided on the inner wall of the U-shaped frame (205), and a first connecting block (207) is fixedly connected to both the front and back of the collection tank (202).

3. The detachable baffle structure for the aging test chamber according to claim 2, characterized in that, The back of the first connecting block (207) is fixedly connected to a slide rail (208), the back of the slide rail (208) is fixedly connected to a second connecting block (209), the back of the second connecting block (209) is fixedly connected to a wind baffle (1), and the side of the slide rail (208) is provided with a left limiting plate (210) and a right limiting plate (211) from left to right. The left limiting plate (210) and the right limiting plate (211) are both connected to the slide rail (208) by limiting plate bolts.

4. The detachable baffle structure for the aging test chamber according to claim 3, characterized in that, An elliptical spring (212) is fixedly connected to one side of the left limiting plate (210). A second base plate (213) is provided on one side of the right limiting plate (211). The second base plate (213) is threadedly connected to the right limiting plate (211) by base plate bolts. A strong magnetic block (214) is provided on the other side of the right limiting plate (211). A heat-expanding block (215) is provided on one side of the second base plate (213).

5. The detachable baffle structure for the aging test chamber according to claim 4, characterized in that, One end of the elliptical spring (212) is fixedly connected to a vertical plate (216), and a transverse cavity box (217) is fixedly connected to the inner wall of the vertical plate (216). A strip groove is provided on one side of the transverse cavity box (217), and an oblique nozzle (218) is provided at the bottom of the transverse cavity box (217). A slider (219) is fixedly connected to the bottom of the vertical plate (216).

6. The detachable baffle structure for the aging test chamber according to claim 5, characterized in that, The slider (219) has grooves on both the front and back sides, and motion wheel holes are provided at the top and bottom of the grooves. A motion wheel (220) is provided inside the motion wheel hole, and the motion wheel (220) and the groove are mutually adapted to each other.

7. The detachable baffle structure for the aging test chamber according to claim 1, characterized in that, The wind power verification module (3) includes a third base plate (301), a vertical base plate (302) is fixedly connected to the top of the third base plate (301), a roller hole is opened on the front of the vertical base plate (302), a roller (303) is installed inside the roller hole, a wide-spacing connecting plate (304) is provided on the surface of the roller (303), and a rectangular frame (305) is fixedly connected to the bottom of the wide-spacing connecting plate (304).

8. The detachable baffle structure for the aging test chamber according to claim 7, characterized in that, The inner wall of the rectangular frame (305) is provided with a rotating rod hole, and a second rotating rod (306) is installed inside the rotating rod hole. A torsion spring (307) is fixedly connected to one end of the second rotating rod (306), and an adjusting bolt (308) is fixedly connected to one end of the torsion spring (307). A threaded sleeve (309) is threadedly connected to the surface of the adjusting bolt (308), and a square block (310) is fixedly connected to one end of the threaded sleeve (309).

9. The detachable baffle structure for the aging test chamber according to claim 8, characterized in that, A rectangular frame (305) is fixedly connected to the back of the square block (310). A flared end (311) is fixedly connected to one side of the rectangular frame (305). A narrow end (312) is fixedly connected to one side of the flared end (311). A narrow groove is provided on one side of the narrow end (312). A flip door (313) is fixedly connected to one end of the second rotating rod (306).

10. The method of using the detachable baffle structure for the aging test chamber according to any one of claims 1-9, characterized in that, Includes the following steps: Step 1: By adjusting the height of the baffle plate (1) on the screw assembly (7), one side of the baffle plate (1) can be raised or lowered. The baffle plate (1) is rotated and flipped by the first rotating rod (5). At this time, the height of the other side of the baffle plate (1) is constant, thereby adjusting the tilt of the baffle plate (1). The fan is generally set above the side of the baffle plate (1). The wind blown by the fan blows the test sample through the upper part of the baffle plate (1) with the angle adjusted. The condensate collection module (2) is responsible for actively cleaning and collecting the condensate after the cold air blows and the hot air blows for a while, so as to prevent the wind from blowing the condensate towards the test sample. The wind speed verification module (3) is responsible for verifying the speed of the wind blown by the fan and judging whether its wind speed is consistent with the wind speed required for the test. When the wind blown by the fan is too strong, it will make a sharp sound to remind the surrounding test personnel to readjust the wind speed of the fan. Step 2: Under normal conditions, the vertical plate (216) is pressed against the heat-expanding block (215) on the right limiting plate (211) by the elliptical spring (212). The heat-expanding block (215) will not expand at low or normal temperatures. When the heat-expanding block (215) does not expand, the strong magnetic block (214) will firmly attract the vertical plate (216) to the right limiting plate (211). When the cold air finishes blowing and the hot air begins, after the hot air has blown for a period of time, the heat-expanding block (215) will absorb enough heat and expand. Push the vertical plate (216) away from the right limit plate (211). At this time, the hot air will blow the vertical plate (216) towards the left limit plate (210). At this time, the elliptical spring (212) will be compressed. Because the airflow is blowing continuously, the vertical plate (216) will eventually be pressed against the left limit plate (210). Part of the airflow will enter the transverse cavity box (217) and blow the airflow obliquely towards the condensate on the baffle plate (1) through the oblique nozzle (218). In this way, the airflow can be blown obliquely while moving, thereby blowing the condensate into the collection tank (202). The vertical plate (216) moves within the slide rail (208) via the slider (219), while the motion wheel (220) makes the slider (219) move more smoothly within the slide rail (208). After the wind passes through the wind deflector (1), the wind will pass through the waterproof and breathable membrane (206), but the condensate will not pass through the waterproof and breathable membrane (206), thereby reducing the possibility of damage to the test item due to the condensate being blown onto it to a certain extent. Step 3: After the wind blows through the wind force verification module (3), the wind speed can be tested to see if it exceeds the required wind speed. When the wind blows, the rectangular frame (305) will be carried by the wind and push the rotating roller (303) to rotate. Because the stiffness coefficient of the torsion spring (307) has been adjusted in advance by adjusting the bolt (308), the difficulty of rotating the torsion spring (307) has also been adjusted. Therefore, the difficulty of rotating the second rotating rod (306) together with it is proportional to the required wind speed. When the door (313) is turned over, it will not be turned over. When the wind blows over the door (313) and the wind speed required for the test is greater than the wind speed required for the test, the wind blows towards the door (313). At this time, the second rotating rod (306) will rotate and turn the door (313) over. The airflow passes through the rectangular frame (305) and enters the flared end (311), and enters the narrow end (312) to compress the airflow movement space. Finally, it is released from the narrow slot of the narrow end (312). When the airflow passes out, it will make a sharp sound, thus reminding the tester that the current test wind speed exceeds the predetermined wind speed and needs to be adjusted immediately.