A storage device for automotive parts environment adjustable
By designing a precision sensor storage device for automotive engines with temperature control components and an air duct system, the performance risks of traditional storage devices under temperature fluctuations have been solved, achieving stable storage and high-precision detection of the sensors.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI LONGMING TECHNOLOGY CO LTD
- Filing Date
- 2025-11-18
- Publication Date
- 2026-07-21
AI Technical Summary
Traditional storage devices for precision automotive engine sensors are difficult to change their internal environment when temperature conditions are poor. This causes the sensors to be affected by external temperature fluctuations, leading to potential performance issues and quality risks, and reducing the accuracy of their detection.
A storage device including a temperature control component, an air duct system, and sensors was designed. Temperature and humidity sensors monitor in real time, and a smart control panel is used to adjust the heating or dehumidification function to ensure a stable internal environment. Air distribution pipes are used to deliver air evenly and remove unpleasant gases, providing a suitable storage environment.
It effectively avoids the impact of external environmental fluctuations on sensors, prevents component aging and circuit short circuits, improves the quality of sensor storage and the accuracy of subsequent use, ensures that the sensor environment is consistent in each storage chamber, and improves stability and reliability.
Smart Images

Figure CN224529513U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of automotive parts storage technology, and in particular to an environmentally adjustable storage device for automotive parts. Background Technology
[0002] Automotive parts are the various components that make up a car and the products that serve the vehicle. As people's living standards improve, their car consumption is increasing, and the market for automotive parts is growing rapidly. In recent years, automotive parts manufacturers have also been developing rapidly.
[0003] As core electronic control components, precision sensors for automotive engines (such as crankshaft position sensors and oxygen sensors) are extremely sensitive to the storage environment, including their internal chips, metal contacts, and sealing structures. Temperature fluctuations can cause chip parameters to drift, excessive humidity can cause contact oxidation and corrosion, vibration and shock can damage internal leads, and dust accumulation can affect the accuracy of sensor signal acquisition.
[0004] Traditional storage devices typically employ sealed structures to protect precision sensors for automotive engines, minimizing the impact of external environmental factors. However, these devices are highly susceptible to external environmental influences. When external temperatures fluctuate significantly, traditional storage devices struggle to maintain a stable internal environment, causing the internal components to change with the external environment. This makes the stored precision sensors vulnerable to direct temperature fluctuations, potentially leading to performance issues, quality risks, and reduced accuracy in later testing.
[0005] Therefore, this application provides an environmentally adjustable storage device for automotive parts to meet the requirements. Utility Model Content
[0006] The purpose of this invention is to solve the problems existing in the background art mentioned above, and to propose an environmentally adjustable storage device for automotive parts.
[0007] The technical problem this invention aims to solve is to provide an environmentally adjustable storage device for automotive parts. This addresses the issue that traditional automotive engine precision sensor storage devices, while employing a sealed, individually stored structure to reduce the impact of the external environment and ensure protection, struggle to change the internal environment under harsh temperature conditions. This causes internal fluctuations with the external temperature, directly affecting the sensor, leading to performance risks, quality issues, and reduced detection accuracy in later use.
[0008] To solve the above-mentioned technical problems, this utility model provides the following technical solution:
[0009] An environmentally adjustable storage device for automotive parts includes a storage cabinet. The storage cabinet includes a cabinet body, an intelligent control panel, storage cavities, and storage boxes. The upper end of the inner cavity of the cabinet body has multiple storage cavities, and each storage cavity has a storage box slidably nested inside it. The intelligent control panel is fixedly nested at the upper end of the center position of the cabinet body surface. The bottom end of the cabinet body is provided with a temperature control component for controlling the internal environment of the storage cabinet as needed. The upper ends of both sides of the cabinet body are interconnected with exhaust pipes, and the inner cavity of the exhaust pipes is provided with a duct check valve.
[0010] Preferably, the temperature control component includes a wind box, a first air duct, a first solenoid valve, a second air duct, a second solenoid valve, a heating component, a connecting pipe, and an air inlet pipe. The wind box is fixedly connected to the center of the back of the storage cabinet. The bottom of the wind box is interconnected with the first air duct and the second air duct on both sides. The air outlets of the first air duct and the second air duct are interconnected with the first solenoid valve and the second solenoid valve, respectively. The air outlets of the first solenoid valve and the second solenoid valve are interconnected with the connecting pipes. The connecting pipe on the same side of the first solenoid valve is interconnected with the heating pipe. The bottom of the storage cabinet cavity is provided with an air inlet pipe horizontally, and the two ends of the air inlet pipe are interconnected with the air outlets of the corresponding connecting pipes on both sides.
[0011] Preferably, a heat insulation plate is fixedly connected to the inner wall of the heating tube, a heating ring is provided in the inner cavity of the heating tube, and the heating tube is electrically connected to the intelligent control panel through a wire.
[0012] Preferably, air distribution pipes are vertically nested at equal intervals at the bottom of the cabinet above the air inlet pipe, and the bottom ends of the air distribution pipes are interconnected with the upper surface of the air inlet pipe. An assembly cavity is opened inside the cabinet above the air distribution pipe, and the bottom end of the assembly cavity is interconnected with the top end of the air distribution pipe. A desiccant storage mesh frame is slidably fitted inside the assembly cavity, and the desiccant storage mesh frame is filled with color-changing water-absorbing silica gel desiccant.
[0013] Preferably, the upper surface of the air box is provided with an air inlet, and a blower is detachably fixed inside the air inlet cavity. A dust filter is detachably connected to the air inlet surface at the outer end of the blower.
[0014] Preferably, the top of the storage cabinet is detachably nested with a temperature sensor and a humidity sensor to monitor the internal temperature and humidity of the storage cabinet in real time, and the temperature sensor and humidity sensor are electrically connected to the intelligent control panel via wires.
[0015] Preferably, the storage cavity is filled with a rubber protective pad, and the upper surface of the rubber protective pad has a nested groove adapted to the precision sensor of the car engine stored therein, and the inner wall of the cabinet is provided with a heat insulation pad.
[0016] Compared with the prior art, this utility model has at least the following beneficial effects:
[0017] In the above solution, temperature and humidity sensors monitor the internal temperature and humidity of the cabinet in real time. When the temperature is lower than the set value, the intelligent control panel automatically controls the first solenoid valve to open and the second solenoid valve to close, and connects the heating element to heat the air introduced by the fan. The heated air is then delivered to the cabinet through the air inlet pipe, quickly raising the internal temperature and maintaining its stability. When the temperature is too high or the humidity is too high, the system switches to opening the second solenoid valve and closing the first solenoid valve. After entering through the second air duct, the outside air first passes through the storage mesh frame filled with color-changing absorbent silica gel desiccant for dehumidification, and then is delivered to the cabinet through the air inlet pipe. At the same time, the exhaust pipes on both sides of the cabinet can expel the humid or high-temperature gas inside. This effectively avoids the impact of external environmental fluctuations on the cabinet when storing automotive precision sensors, preventing problems such as component aging, contact deformation, and short circuits caused by unsuitable temperature and humidity. This effectively improves the quality of sensor storage and ensures the accuracy of detection during later use.
[0018] In the above solution, multiple sets of air distribution pipes are vertically nested at equal intervals above the air inlet pipe at the bottom of the cabinet. The bottom of the air distribution pipes is connected to the air inlet pipe, and the top of the air distribution pipes is connected to the assembly cavity. When heated air or dehumidified air enters the air inlet pipe, it will be evenly distributed to various areas inside the cabinet through the multiple sets of air distribution pipes. This avoids the uneven local temperature or humidity that may occur with traditional air supply methods. Whether heating the cabinet or introducing dehumidified air, the environmental parameters of each storage cavity and each sensor inside the cabinet can be kept consistent, preventing damage to some sensors due to local environmental differences, and further improving the stability and reliability of sensor storage. Attached Figure Description
[0019] The accompanying drawings, which are incorporated herein and form part of the specification, illustrate embodiments of the present disclosure and, together with the specification, further serve to explain the principles of the present disclosure and enable those skilled in the art to implement and use the present disclosure.
[0020] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0021] Figure 2 This is a schematic diagram of the overall back structure of this utility model;
[0022] Figure 3 This is a schematic diagram of the temperature control component in this utility model;
[0023] Figure 4 This is a schematic diagram of the heating component structure in this utility model.
[0024] [Figure Labels]
[0025] 1. Storage cabinet; 101. Cabinet body; 102. Assembly cavity; 103. Desiccant storage frame; 104. Intelligent control panel; 105. Storage cavity; 106. Storage box; 2. Temperature control components; 201. Air box; 202. Connecting pipe; 203. Air inlet pipe; 204. First air guide pipe; 205. First solenoid valve; 206. Second air guide pipe; 207. Second solenoid valve; 208. Heating element; 209. Air blower; 210. Dust filter; 211. Heat insulation plate; 212. Heating ring; 213. Air distribution pipe; 3. Exhaust pipe; 4. Air duct check valve; 5. Temperature sensor; 6. Humidity sensor.
[0026] As shown in the figure, specific structures and devices are marked in the figure to clearly illustrate the structure of the embodiment of this utility model. However, this is only for illustrative purposes and is not intended to limit this utility model 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
[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0028] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0029] Please see Figure 1-4An environmentally adjustable storage device for automotive parts includes a storage cabinet 1. The storage cabinet 1 comprises a cabinet body 101, an intelligent control panel 104, storage cavities 105, and storage boxes 106. Multiple storage cavities 105 are provided at the upper end of the inner cavity of the cabinet body 101. Each storage cavity 105 has a storage box 106 slidably nested inside it. The intelligent control panel 104 is fixedly nested at the upper end of the center position of the surface of the cabinet body 101. A temperature control component 2 is provided at the bottom of the cabinet body 101 for controlling the internal environment of the storage cabinet 1 as needed. Exhaust pipes 3 are interconnected at the upper ends of both sides of the cabinet body 101, and a duct check valve 4 is provided inside the exhaust pipe 3. The storage cabinet 1 facilitates the classified storage and retrieval of sensors through multiple storage cavities 105 with storage boxes 106, and works in conjunction with the intelligent control panel 104 (model TP1200). The Comfort Smart Panel allows for intuitive operation. The temperature control component 2 at the bottom of the cabinet 101 can adjust the internal environment as needed. The exhaust pipes 3 on both sides and the air duct check valve 4 can help to expel unpleasant gases and prevent backflow of outside air, ensuring the stability of the internal environment of the cabinet 101 during storage.
[0030] Furthermore, the temperature control component 2 includes a blower box 201, a first air duct 204, a first solenoid valve 205, a second air duct 206, a second solenoid valve 207, a heating component, a connecting pipe 202, and an air inlet pipe 203. The blower box 201 is fixedly connected to the center of the back of the storage cabinet 1. The first air duct 204 and the second air duct are interconnected on both sides of the bottom of the blower box 201. The outlets of the first air duct 204 and the second air duct 206 are interconnected with the first solenoid valve 205 and the second solenoid valve 207, respectively. The outlets of both the first solenoid valve 205 and the second solenoid valve 207 are interconnected with the connecting pipe 202. The connecting pipe 202 on the same side of the first solenoid valve 205 is interconnected with a heating pipe 208. An air inlet pipe 203 is horizontally provided at the bottom of the inner cavity of the storage cabinet 1, and both ends of the air inlet pipe 203 are connected to the two sides. The corresponding connecting pipes 202 are interconnected at their outlet ends. A heat insulation plate 211 is fixedly connected to the inner wall of the heating pipe 208. A heating ring 212 is provided inside the heating pipe 208. The heating pipe 208 is electrically connected to the intelligent control panel 104 via wires. Through the temperature control component 2, which consists of a wind box 201, dual air ducts, dual solenoid valves, heating pipe 208, and air inlet pipe 203, the heating or room temperature air supply can be precisely switched by switching the solenoid valves under the control of the intelligent control panel 104. The heat insulation plate 211 inside the heating pipe 208 can also prevent heat loss and external conduction. Together with the air inlet pipe 203, the airflow is evenly delivered to the cabinet 101, which can efficiently achieve the temperature rise and stable control inside the cabinet, providing a suitable storage temperature environment for the precision sensors of the automotive engine and ensuring their protection during storage.
[0031] Furthermore, at the bottom of the cabinet 101 above the air inlet duct 203, vertically nested air distribution pipes 213 are arranged at equal intervals, and the bottom ends of the air distribution pipes 213 are interconnected with the upper surface of the air inlet duct 203. An assembly cavity 102 is opened inside the cabinet 101 above the air distribution pipes 213, and the bottom end of the assembly cavity 102 is interconnected with the top end of the air distribution pipes 213. A desiccant storage mesh frame 103 is slidably fitted inside the assembly cavity 102, and the desiccant storage mesh frame 103 is filled with color-changing water-absorbing silica gel desiccant. The vertically nested air distribution pipes 213 above the air inlet duct 203 at equal intervals can evenly deliver airflow to all areas inside the cabinet 101, avoiding local temperature and humidity differences. At the same time, the storage mesh frame slidably fitted inside the assembly cavity 102 and filled with color-changing water-absorbing silica gel desiccant can effectively dehumidify the air entering the cabinet 101, ensuring both a stable and uniform environment inside the cabinet and a dry storage space, further improving the safety of storing precision sensors.
[0032] Furthermore, an air inlet is provided on the upper surface of the air box 201, and a blower 209 is detachably fixed inside the air inlet cavity. A dust filter 210 is detachably connected to the air inlet surface at the outer end of the blower 209. The blower can quickly introduce outside air, and the dust filter 210 can effectively filter dust and impurities in the air during the introduction process, preventing external pollutants from entering the cabinet 101 and contaminating the precision sensor, improving the stability of temperature control, and effectively improving the protection effect of the precision sensor during storage.
[0033] Furthermore, a temperature sensor 5 and a humidity sensor 6 are detachably nested at the top of the storage cabinet 1 to monitor the internal temperature and humidity of the storage cabinet 1 in real time. The temperature sensor 5 and the humidity sensor 6 are electrically connected to the intelligent control panel 104 via wires. Through the detachable nested temperature sensor 5 and humidity sensor 6 at the top of the storage cabinet 1, the internal temperature and humidity data of the cabinet 101 can be captured in real time and synchronized to the intelligent control panel 104 via wires. This provides data support for accurately activating temperature control, dehumidification and other adjustment functions based on environmental parameters when storing automotive parts, ensuring that the cabinet 101 always maintains a stable environment suitable for storing precision sensors.
[0034] Furthermore, the storage cavity 105 is filled with a rubber protective pad, and the upper surface of the rubber protective pad has a nested groove adapted to the precision automotive engine sensor being stored. The inner wall of the cabinet 101 is provided with a thermal insulation pad. The rubber protective pad filled inside the storage cavity 105 and the nested groove adapted to the sensor can provide precise positioning and buffer protection for the sensor, avoiding collision and friction damage during storage or retrieval. At the same time, the thermal insulation pad on the inner wall of the cabinet 101 can enhance the heat insulation performance of the cabinet 101, reduce the impact of external temperature fluctuations on the internal environment, and further ensure the safety and environmental stability of sensor storage.
[0035] Working principle: First, the intelligent control panel 104 of the storage cabinet 1 is activated. At this time, the temperature sensor 5 and humidity sensor 6 at the top of the cabinet 101 begin to monitor the environmental parameters inside the cabinet in real time and transmit the data synchronously to the intelligent control panel 104. The intelligent control panel 104 analyzes the monitoring data according to the preset suitable storage temperature and humidity range. When the temperature inside the cabinet is detected to be lower than the set value, it will automatically control the first solenoid valve 205 in the temperature control component 2 to open and the second solenoid valve 207 to close. At the same time, the heating ring 212 in the heating tube 208 is turned on. The blower 209 on the air box 201 is activated and introduces outside air through the air inlet. After the air is filtered by the dust filter 210, the outside air is introduced. The air is heated after entering the heating tube 208 and then transported to the air inlet pipe 203 at the bottom of the cabinet 101 through the connecting pipe 202. Then, it is evenly distributed to each storage cavity 105 inside the cabinet 101 through the air distribution pipe 213 set at equal intervals above the air inlet pipe 203, which quickly increases the temperature inside the cabinet and maintains stability.
[0036] When the temperature or humidity inside the cabinet 102 is detected to be too high, the intelligent control panel 104 switches to another control mode, controls the second solenoid valve 207 to open and the first solenoid valve 205 to close. The outside air introduced by the blower 209 enters the air inlet pipe 203 through the second air guide pipe 206 and the connecting pipe 202. During the entry process, it first passes through the color-changing water-absorbing silica gel desiccant in the desiccant storage mesh frame 103 in the assembly cavity 102 for dehumidification. The dehumidified air is also evenly delivered to the cabinet through the air distribution pipe 213. At the same time, the air duct check valve 4 in the exhaust pipes 3 on both sides of the cabinet 101 opens to discharge the humid or high-temperature gas inside the cabinet.
[0037] When outside air is introduced into the cabinet 101, the air distribution pipe 213 always ensures that the air is evenly distributed inside the cabinet to avoid local temperature and humidity differences. The staff can view the environmental parameters inside the cabinet in real time through the intelligent control panel 104. When the color-changing water-absorbing silica gel desiccant in the desiccant storage frame 103 changes color due to moisture absorption, the frame can be pulled out for replacement. This achieves stable storage of the precision sensors of the car engine and ensures the accuracy of detection during its later use.
[0038] This utility model encompasses any substitutions, modifications, equivalent methods, and solutions made within the spirit and scope of this utility model. To provide the public with a thorough understanding of this utility model, specific details are described in detail in the following preferred embodiments; however, those skilled in the art will fully understand this utility model even without these detailed descriptions. Furthermore, to avoid unnecessary confusion regarding the essence of this utility model, well-known methods, processes, procedures, components, and circuits are not described in detail.
[0039] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. An environmentally adjustable storage device for automotive parts, characterized in that: The system includes a storage cabinet (1), which includes a cabinet body (101), an intelligent control panel (104), a storage cavity (105), and a storage box (106). The upper end of the inner cavity of the cabinet body (101) is provided with a storage cavity (105), and there are multiple sets of storage cavities (105). Each storage cavity (105) is slidably nested with a storage box (106). The upper end of the center position of the surface of the cabinet body (101) is fixedly nested with an intelligent control panel (104). The bottom end of the cabinet body (101) is provided with a temperature control component (2) for controlling the change of the internal environment of the storage cabinet (1) according to the needs. The upper ends of both sides of the cabinet body (101) are interconnected with an exhaust pipe (3), and the inner cavity of the exhaust pipe (3) is provided with an exhaust pipe check valve (4).
2. The environmentally adjustable storage device for automotive parts according to claim 1, characterized in that: The temperature control component (2) includes a blower (201), a first air duct (204), a first solenoid valve (205), a second air duct (206), a second solenoid valve (207), a heating component, a connecting pipe (202), and an air inlet pipe (203). The blower (201) is fixedly connected to the center of the back of the storage cabinet (1). The first air duct (204) and the second air duct are respectively interconnected on both sides of the bottom end of the blower (201). The first air duct (204) and the second air duct (206) are connected to each other. The first solenoid valve (205) and the second solenoid valve (207) are interconnected at their respective air outlets. The air outlets of the first solenoid valve (205) and the second solenoid valve (207) are interconnected by a connecting pipe (202). The connecting pipe (202) on the same side of the first solenoid valve (205) is interconnected by a heating pipe (208). The bottom of the inner cavity of the storage cabinet (1) is provided with an air inlet pipe (203) in the horizontal direction. Both ends of the air inlet pipe (203) are interconnected with the air outlets of the corresponding connecting pipes (202) on both sides.
3. The environmentally adjustable storage device for automotive parts according to claim 2, characterized in that: A heat insulation plate (211) is fixedly connected to the inner wall of the heating tube (208), and a heating ring (212) is provided in the inner cavity of the heating tube (208). The heating tube (208) is electrically connected to the intelligent control panel (104) through a wire.
4. The environmentally adjustable storage device for automotive parts according to claim 2, characterized in that: The cabinet (101) above the air inlet pipe (203) has vertically nested air distribution pipes (213) at equal intervals at the bottom end, and the bottom ends of the air distribution pipes (213) are connected to the upper surface of the air inlet pipe (203). The cabinet (101) above the air distribution pipes (213) has an assembly cavity (102) inside, and the bottom end of the assembly cavity (102) is connected to the top end of the air distribution pipes (213). The inner cavity of the assembly cavity (102) is fitted with a desiccant storage mesh frame (103), and the desiccant storage mesh frame (103) is filled with color-changing water-absorbing silica gel desiccant.
5. A storage device for automotive parts with adjustable environment according to claim 2, characterized in that: The upper surface of the air box (201) is provided with an air inlet, and a blower (209) is detachably fixed inside the air inlet cavity. A dust filter (210) is detachably connected to the air inlet surface at the outer end of the blower (209).
6. The environmentally adjustable storage device for automotive parts according to claim 1, characterized in that: The top of the storage cabinet (1) is detachably fitted with a temperature sensor (5) and a humidity sensor (6) for real-time monitoring of the internal temperature and humidity of the storage cabinet (1), and the temperature sensor (5) and humidity sensor (6) are electrically connected to the intelligent control panel (104) via wires.
7. The environmentally adjustable storage device for automotive parts according to claim 1, characterized in that: The storage cavity (105) is filled with a rubber protective pad, and the upper surface of the rubber protective pad is provided with a nested groove that is compatible with the precision sensor of the car engine stored therein. The inner wall of the cabinet (101) is provided with a heat insulation pad.