A live working warehouse intelligent tool in-place management device
Patent Information
- Application Number
- CN202522428670.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-17
- Publication Date
- 2026-10-09
- Estimated Expiration
- 2035-11-17
AI Technical Summary
[0004]但是在实际应用中,由于智能工器具在位管理设备采用开放式货架,其支撑结构单一、缺乏防尘设计且未分区规划工具放置空间,进而当库房通风时,外部灰尘随气流直接沉积在工具或标签表面,不仅会影响标签的识别,且灰尘中的导电颗粒会直接影响工器具的性能,且工具混放于货架上,不便于人员找寻,进而当紧急抢修时,会延误抢修时机,不仅影响后期使用安全性,且大大降低工器具的质量和管理效率
[0015]本实用新型通过开设两个存放腔,可根据工具绝缘性能进行分区存放,且通过隔架将存放腔分为多个大小不同的独立腔体,进而可根据工具类型进行再次分类存放,大大提高工具找寻便捷性,且柜体配合柜门可形成闭合空间,防止外部灰尘直接进入,通过除尘组件中的离心风机、滤筒、三通管、连接斗以及ULPA滤网共同作用,能够有效去除存放腔内的灰尘,以此可防止灰尘沉积在工器具或标签表面,防止影响标签识别或工器具因灰尘中的导电颗粒而性能受损,保障了工器具的质量和后续使用的安全性。
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Figure CN224826509U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of in-situ management equipment for tools and equipment, specifically an intelligent in-situ management equipment for live-line operation warehouses. Background Technology
[0002] Live-line work is a core component of ensuring the safe and stable operation of the power grid in the power industry. It involves high-risk operations such as high-voltage equipment maintenance and line maintenance. The performance of tools such as insulating rods, voltage detectors, grounding wires, and personal protective equipment directly affects the safety of workers and the reliability of the power grid. Therefore, intelligent tool in-situ management equipment is used to store and manage tools.
[0003] Among the existing technologies, the intelligent tool in-situ management equipment for live-line operation warehouses consists of open shelves, tags, and readers. When in use, the shelves provide space for placing tools, and electronic tags are attached to the tools to store information such as tool ID, model, and calibration date. The reader is deployed on one side of the shelf, and when personnel take or put away tools, the tags on the tools can be identified and the data can be read, so as to facilitate understanding of the tool taking or putting away status.
[0004] However, in practical applications, because the intelligent tool and equipment in-situ management equipment adopts open shelves, its support structure is simple, lacks dustproof design, and does not have a zoned plan for tool placement space. As a result, when the warehouse is ventilated, external dust is directly deposited on the surface of tools or labels with the airflow. This not only affects the identification of labels, but the conductive particles in the dust will also directly affect the performance of tools and equipment. Furthermore, tools are mixed on the shelves, making it difficult for personnel to find them. Consequently, when emergency repairs are needed, the repair time will be delayed, which will not only affect the safety of later use, but also greatly reduce the quality of tools and equipment and management efficiency.
[0005] In summary, this utility model provides an intelligent in-situ management device for live-line working warehouse tools to solve the above-mentioned problems. Utility Model Content
[0006] To solve the above-mentioned technical problems, this utility model provides the following technical solution:
[0007] A smart tool and equipment in-situ management device for live-line working warehouses, comprising,
[0008] The storage component includes a cabinet, cabinet doors that are hinged to both sides of the front of the cabinet, an identifier located on the front of the right cabinet door, storage cavities located on both sides of the front of the cabinet, a partition fixedly connected to the inner cavity of the storage cavity, and an upper ventilation component located on the front of the cabinet door.
[0009] The dust removal assembly includes a centrifugal fan, a filter cartridge connected to the air inlet of the centrifugal fan, a three-way pipe connected to the top of the filter cartridge, two connecting hoppers fixedly connected to the back of the cabinet and connected to the storage cavity, and a ULPA filter screen fixedly connected to the inner cavity of the filter cartridge.
[0010] Furthermore, in this utility model, the centrifugal fan is fixedly connected to the back of the cabinet via a support plate, and the end of the three-way pipe away from the filter cartridge is connected to the connecting hopper.
[0011] Furthermore, in this utility model, the filter cartridge is fixedly connected to the back of the cabinet, and a cover is movably connected to the surface of the filter cartridge via a hinge. A sealing strip is fixedly connected to the surface of the cover, and the sealing strip is in contact with the filter cartridge.
[0012] Furthermore, in this utility model, the ventilation assembly includes a connecting frame, a composite filter screen movably connected to the inner cavity of the connecting frame, a second magnet fixedly connected to the inner cavity of the connecting frame, and a first magnet fixedly connected to the back of the composite filter screen.
[0013] Furthermore, in this utility model, the connecting frame is fixedly connected to the front of the cabinet door and communicates with the inner cavity of the storage compartment. The side of the first magnet away from the composite filter is in contact with the second magnet, and the two are magnetically connected.
[0014] Beneficial effects: This utility model has the following beneficial effects:
[0015] This invention features two storage chambers, allowing for partitioned storage based on tool insulation performance. The chambers are further divided into multiple independent compartments of varying sizes using shelves, enabling further categorization by tool type and significantly improving ease of retrieval. The cabinet, along with its door, forms a closed space, preventing direct entry of external dust. The dust removal system, comprising a centrifugal fan, filter cartridge, T-junction, connecting hopper, and ULPA filter, effectively removes dust from the storage chambers. This prevents dust accumulation on tools or labels, ensuring label readability and preventing performance degradation due to conductive particles in the dust. Ultimately, this safeguards tool quality and subsequent safety. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model;
[0017] Figure 2 This is a schematic diagram of the cabinet structure of this utility model;
[0018] Figure 3 This is a schematic diagram of the cabinet's rear view structure according to this utility model;
[0019] Figure 4This is a cross-sectional structural diagram of the filter cartridge of this utility model;
[0020] Figure 5 This is a schematic diagram of the ventilation component of this utility model in an exploded state.
[0021] In the picture:
[0022] 100. Storage component; 110. Cabinet; 120. Cabinet door; 130. Identifier; 140. Storage cavity; 150. Ventilation component; 151. Connecting frame; 152. Composite filter; 153. First magnet; 154. Second magnet; 160. Partition; 200. Dust removal component; 210. Centrifugal fan; 220. Filter cartridge; 230. T-pipe; 240. Connecting hopper; 250. ULPA filter. Detailed Implementation
[0023] To better understand the technical content of this utility model, specific embodiments are described below in conjunction with the accompanying drawings. Various aspects of this utility model are described in this disclosure with reference to the accompanying drawings, which illustrate numerous illustrative embodiments. The embodiments of this disclosure are not necessarily defined to include all aspects of this utility model. It should be understood that the various concepts and embodiments described above, as well as those described in more detail below, can be implemented in any of many ways, because the concepts and embodiments disclosed in this utility model are not limited to any particular implementation. Furthermore, some aspects of this utility model can be used alone or in any suitable combination with other aspects disclosed in this utility model.
[0024] Example 1
[0025] like Figure 1-5 The image shown is the first embodiment of this utility model. This embodiment provides an intelligent in-situ management device for live-line working warehouse tools, including:
[0026] The storage component 100 includes a cabinet 110, cabinet doors 120 that are hinged to both sides of the front of the cabinet 110, an identifier 130 located on the front of the right cabinet door 120, storage cavities 140 located on both sides of the front of the cabinet 110, a partition 160 fixedly connected to the inner cavity of the storage cavity 140, and an upper ventilation component 150 located on the front of the cabinet door 120.
[0027] The dust removal assembly 200 includes a centrifugal fan 210, a filter cartridge 220 connected to the air inlet of the centrifugal fan 210, a three-way pipe 230 connected to the top of the filter cartridge 220, a connecting hopper 240 fixedly connected to both sides of the back of the cabinet 110 and connected to the storage cavity 140, and a ULPA filter screen 250 fixedly connected to the inner cavity of the filter cartridge 220.
[0028] like Figure 1-5As shown, by opening two storage chambers 140, tools can be stored in separate areas according to their insulation performance. The storage chamber 140 is further divided into multiple independent chambers of different sizes by the partition 160, allowing for further classification and storage according to tool type, greatly improving the convenience of tool retrieval. The cabinet 110 and cabinet door 120 form a closed space to prevent external dust from entering directly. When the centrifugal fan 210 in the dust removal component 200 is activated and works with the connecting bucket 240, the dust inside the storage chamber 140 is drawn into the filter cartridge 220 by the airflow. The ULPA filter 250 efficiently filters and intercepts dust and other fine particles in the air, effectively removing dust from the storage chamber 140 and preventing dust from accumulating on the surface of tools or labels. This prevents the label recognition from being affected or the performance of tools from being damaged by conductive particles in the dust, ensuring the quality of tools and the safety of subsequent use.
[0029] Example 2
[0030] Reference Figure 3 and 4 This is the second embodiment of the present invention, which is based on the previous embodiment.
[0031] In this embodiment, the centrifugal fan 210 is fixedly connected to the back of the cabinet 110 via a support plate, and the end of the three-way pipe 230 away from the filter cartridge 220 is connected to the connecting hopper 240.
[0032] The filter cartridge 220 is fixedly connected to the back of the cabinet 110. The surface of the filter cartridge 220 is movably connected to a cover via a hinge, and a sealing strip is fixedly connected to the surface of the cover. The sealing strip is in contact with the filter cartridge 220.
[0033] like Figure 3 and 5 As shown, the centrifugal fan 210 is fixedly connected to the back of the cabinet 110 via a support plate. This fixing method allows the centrifugal fan 210 to be stably installed on the cabinet 110, ensuring its operational stability. The end of the three-way pipe 230 away from the filter cartridge 220 is connected to the connecting hopper 240, thus providing a transport channel for the dust-laden air inside the storage chamber 140. A cover is hinged to the surface of the filter cartridge 220, and a sealing strip is fixedly connected to the surface of the cover. The sealing strip contacts the filter cartridge 220. This design allows for easy opening of the cover to clean the filter cartridge 220 when dust needs to be removed. The sealing strip ensures the seal when the cover is closed, preventing air leakage and maintaining the normal operating pressure of the dust removal assembly 200, thus ensuring the filtration effect.
[0034] Example 3
[0035] Reference Figure 5This is the third embodiment of the present invention, which is based on the first two embodiments.
[0036] In this embodiment, the ventilation assembly 150 includes a connecting frame 151, a composite filter 152 movably connected to the inner cavity of the connecting frame 151, a second magnet 154 fixedly connected to the inner cavity of the connecting frame 151, and a first magnet 153 fixedly connected to the back of the composite filter 152.
[0037] The composite filter 152 is a silicone particle composite HEPA filter. The silicone particles are embedded in the HEPA filter to form a dry layer + filter layer structure. The connecting frame 151 is fixedly connected to the front of the cabinet door 120 and communicates with the inner cavity of the storage cavity 140. The side of the first magnet 153 away from the composite filter 152 is in contact with the second magnet 154, and the two are magnetically connected.
[0038] like Figure 5 As shown, when air enters the storage chamber 140 through the ventilation assembly 150, it first passes through the composite filter 152. The HEPA filter portion of the composite filter 152 filters out fine particles such as dust in the air, trapping them on the filter surface. At the same time, the silica gel particles embedded in the HEPA filter layer absorb moisture from the air, making the air dry. The filtered and dried air then enters the storage chamber 140, providing a clean and dry storage environment for the tools and equipment. This prevents the tools and equipment from rusting or corroding due to dust or moisture, further ensuring the performance and service life of the tools and equipment. It also avoids damage to the electronic tags due to moisture or dust, which would affect the recognition effect. The composite filter 152 and the connecting frame 151 are magnetically connected and fixed by the first magnet 153 and the second magnet 154, making the installation and removal of the composite filter 152 very convenient. When the composite filter 152 needs to be replaced after a period of use, simply overcome the magnetic force to remove the composite filter 152 from the connecting frame 151 and replace it with a new composite filter 152, saving maintenance time.
[0039] In use, the two storage chambers 140 allow for partitioned storage based on tool insulation performance. A partition 160 further divides the storage chambers 140 into multiple independent chambers of varying sizes, enabling further categorization by tool type and significantly improving retrieval convenience. When personnel retrieve or place tools, the identifier 130 identifies the tags on the tools and records the retrieval information for easier management later. Once the centrifugal fan 210 is activated, air is drawn into the storage chambers 140 through the three-way pipe 230 and connecting bucket 240. This air, carrying dust, enters the filter cartridge 220, where it passes through the ULPA filter 250. The system efficiently filters and intercepts fine particles such as dust, and the filtered air is discharged to the outside through a centrifugal fan 210. Simultaneously, due to the negative pressure, outside air enters the storage chamber 140 through the ventilation component 150. The outside air passes through the composite filter 152 for dust and moisture removal, thereby ensuring the cleanliness and dryness of the air entering the storage chamber 140. This achieves air circulation within the storage chamber 140, effectively removing dust from inside the storage chamber 140. This prevents dust from accumulating on the surface of tools or labels, thus preventing interference with label recognition or damage to the performance of tools due to conductive particles in the dust, ensuring the quality of tools and the safety of subsequent use.
[0040] All standard parts used in this application can be purchased from the market, and can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art. The control method is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art and is common knowledge in the field. Since this application is mainly used to protect mechanical devices, the control method and circuit connection will not be explained in detail in this application.
[0041] Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Those skilled in the art to which this invention pertains can make various modifications and refinements without departing from the spirit and scope of the present invention. Therefore, the scope of protection of this invention shall be determined by the claims.
Claims
1. A smart tool and equipment location management device for live-line working warehouses, characterized in that: include, The storage assembly (100) includes a cabinet (110), cabinet doors (120) that are hinged to both sides of the front of the cabinet (110), an identifier (130) disposed on the front of the right cabinet door (120), storage cavities (140) opened on both sides of the front of the cabinet (110), a partition (160) fixedly connected to the inner cavity of the storage cavity (140), and an upper ventilation assembly (150) disposed on the front of the cabinet door (120). The dust removal assembly (200) includes a centrifugal fan (210), a filter cartridge (220) connected to the air inlet of the centrifugal fan (210), a three-way pipe (230) connected to the top of the filter cartridge (220), a connecting bucket (240) fixedly connected to both sides of the back of the cabinet (110) and connected to the storage cavity (140), and a ULPA filter screen (250) fixedly connected to the inner cavity of the filter cartridge (220).
2. The intelligent tool and equipment in-situ management device for live-line operation warehouses as described in claim 1, characterized in that: The centrifugal fan (210) is fixedly connected to the back of the cabinet (110) via a support plate, and the end of the three-way pipe (230) away from the filter cartridge (220) is connected to the connecting bucket (240).
3. The intelligent tool and equipment in-situ management device for live-line operation warehouses as described in claim 1, characterized in that: The filter cartridge (220) is fixedly connected to the back of the cabinet (110). The surface of the filter cartridge (220) is movably connected to a cover by a hinge, and a sealing strip is fixedly connected to the surface of the cover. The sealing strip is in contact with the filter cartridge (220).
4. The intelligent tool and equipment in-situ management device for live-line operation warehouses as described in claim 1, characterized in that: The ventilation assembly (150) includes a connecting frame (151), a composite filter (152) movably connected to the inner cavity of the connecting frame (151), a second magnet (154) fixedly connected to the inner cavity of the connecting frame (151), and a first magnet (153) fixedly connected to the back of the composite filter (152).
5. The intelligent tool and equipment in-situ management device for live-line operation warehouses as described in claim 4, characterized in that: The connecting frame (151) is fixedly connected to the front of the cabinet door (120) and communicates with the inner cavity of the storage cavity (140). The side of the first magnet (153) away from the composite filter (152) is in contact with the second magnet (154), and the two are magnetically connected.