Automatic dehumidification type air bus duct
By introducing pneumatic conveying and opening/closing components into the air busbar trunking, an automatic dehumidification function is achieved, solving the corrosion and leakage problems caused by humidity and improving conduction efficiency and lifespan.
Patent Information
- Application Number
- CN202423306083.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Air busbars are prone to corrosion in high humidity environments, leading to potential electrical leakage hazards, reduced conduction efficiency, and shortened service life.
An automatic dehumidification air busbar trunking is designed. Airflow is generated by a pneumatic conveying component to dehumidify the core component. An opening and closing component is used to adjust the airflow channel to achieve automatic dehumidification and keep the inside of the busbar trunking dry.
It eliminates the safety hazard of leakage, improves power conduction efficiency, extends service life, and has a simple structure that is easy to assemble and disassemble.
Smart Images

Figure CN223744328U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to air bus duct technical field, concretely is a kind of automatic dehumidification type air bus duct. BACKGROUND
[0002] Air bus duct is a kind of electrical equipment, for distributing power in building or industrial facility. Air type bus duct is a kind of bus system consisting of metal plate as protective shell, conducting row, insulating material and related accessories.
[0003] At present, air bus duct is generally prone to the case of excessive humidity inside bus duct when being used in high humidity environment for a long time, which leads to the inside of air bus duct being easily corroded, so that the bus duct has the security risk of electric leakage, and the conduction efficiency of bus duct is also seriously affected, and the service life of bus duct is also seriously shortened. Therefore, an automatic dehumidification type air bus duct needs to be designed. SUMMARY
[0004] In view of the above situation, in order to solve the problem that the inside of air bus duct is easily corroded due to the case of excessive humidity inside bus duct when being used in high humidity environment for a long time, so that the bus duct has the security risk of electric leakage, and the conduction efficiency of bus duct is also seriously affected, and the service life of bus duct is also seriously shortened, the utility model provides an automatic dehumidification type air bus duct, which effectively realizes the function of convenient disassembly and assembly, and the assembled air bus duct has high stability, and also realizes the function of automatic dehumidification of the air bus duct, and the range of automatic dehumidification can be adjusted by the moving range of plug-in board to freely adjust as needed, so that the inside of air bus duct can be kept in a relatively dry state in real time, which is extremely suitable for the case that the use environment of air bus duct is relatively wet, eliminates the security risk of electric leakage, improves the power conduction efficiency of air bus duct, and prolongs the service life of air bus duct.
[0005] To achieve the above purpose, the utility model provides the following technical scheme: an automatic dehumidification type air bus duct, comprising a protection assembly, the protection assembly is used for bearing core body assembly, the outer side wall of protection assembly is provided with flow-through assembly, the inner side wall of flow-through assembly is installed with pneumatic conveying assembly, and the outer side wall of flow-through assembly is provided with opening and closing assembly.
[0006] The core body assembly is used for power transmission operation, the pneumatic conveying assembly is used for generating airflow input into the inside of flow-through assembly and input into the inside of core body assembly through flow-through assembly to dehumidify core body assembly, and the opening and closing assembly is used for breaking and connecting the pneumatic transmission channel between flow-through assembly and core body assembly.
[0007] The automatic dehumidification type air bus duct of the preceding has the protection assembly including the shell, and the shell outer side wall is provided with the support groove.
[0008] The automatic dehumidification type air bus duct of the preceding has the core body assembly including the end plate, and the end plate outer side wall is inserted with the copper bar.
[0009] The automatic dehumidification type air bus duct of the preceding has the flow assembly including the side plate, and the side plate upper surface is provided with the groove.
[0010] The automatic dehumidification type air bus duct of the preceding has the side plate upper surface being further provided with the insertion slot, and the insertion slot can longitudinally cut off the flow hole.
[0011] The automatic dehumidification type air bus duct of the preceding has the pneumatic conveying assembly including the fan, and the fan outer surface is provided with the air inlet hole.
[0012] The automatic dehumidification type air bus duct of the preceding has the opening and closing assembly including the electric cylinder, and the electric cylinder inner side wall is slidably connected with one end of the pneumatic telescopic rod.
[0013] The automatic dehumidification type air bus duct of the preceding has the vertical hole and the thread groove being the same in diameter, and the vertical hole and the thread groove are detachably connected through the external screw.
[0014] Compared with the prior art, the automatic dehumidification type air bus duct has the beneficial effects that:
[0015] (1), first, the copper bar after the insulation sheath is moved into the end plate, then the outer fastener is rotated to detachably connect the end plate and the inner wall of the support groove, and then the core assembly and the shell are detachably connected, then the connecting hole is matched with the external connecting piece to detachably connect the plurality of copper bars, then the cover plate is moved and the outer wall of the cover plate is engaged with the inner wall of the groove, then the outer screw is rotated along the vertical hole and extended into the threaded groove to detachably connect the cover plate and the side plate, and the flow channel is sealed, so that the air bus duct has the functions of convenient disassembly and assembly, the air bus duct after assembly has high stability, the air bus duct has simple structure and good use effect.
[0016] (2), the airflow is transmitted from the exhaust hole to the flow channel through the air inlet hole by the operation of the fan, and the linear upward movement of the pressing plate is driven by the operation of the electric cylinder to drive the pneumatic telescopic rod to slide, so that the plug-in plate is driven to slide upward along the insertion slot, so that the flow hole is opened to make the flow channel and the support groove communicate, and the dry airflow in the flow channel is transmitted to the support groove to dry the core assembly, so that the air bus duct has the function of automatic dehumidification, and the dehumidification range can be adjusted by adjusting the movement range of the plug-in plate, so that the air bus duct can be freely adjusted as needed, so that the air bus duct can be kept dry at all times, which is extremely suitable for the case that the use environment of the air bus duct is wet, eliminates the safety hazard of electric leakage, improves the power transmission efficiency of the air bus duct, prolongs the service life of the air bus duct, and the air bus duct has simple structure and high practicality. BRIEF DESCRIPTION OF DRAWINGS
[0017] The accompanying drawings are used to provide a further understanding of the present application, and constitute a part of the specification, together with the embodiments of the present application, to explain the present application, and do not constitute a limitation on the present application. In the drawings:
[0018] Fig. 1 It is the overall structure schematic diagram of the present application;
[0019] Fig. 2 It is the protection assembly and core assembly structure schematic diagram of the present application;
[0020] Fig. 3 It is the flow assembly and pneumatic conveying assembly structure schematic diagram of the present application;
[0021] Fig. 4 It is the opening and closing assembly structure schematic diagram of the present application;
[0022] In the figure: 1, protection assembly; 101, shell; 102, support groove; 2, core assembly; 201, end plate; 202, insulating sheath; 203, copper bar; 204, connecting hole; 3, flow assembly; 301, side plate; 302, groove; 303, threaded groove; 304, flow groove; 305, flow hole; 306, insertion slot; 307, cover plate; 308, vertical hole; 4, pneumatic conveying assembly; 401, fan; 402, air inlet hole; 403, air outlet hole; 5, opening and closing assembly; 501, electric cylinder; 502, pneumatic telescopic rod; 503, pressing plate; 504, insertion plate. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model. EMBODIMENT
[0024] By Figs. 1-4 The utility model discloses an automatic dehumidification type air bus duct, including protection assembly 1, protection assembly 1 is used for bearing core assembly 2, the outer side wall of protection assembly 1 is provided with flow assembly 3, the inner side wall of flow assembly 3 is installed with pneumatic conveying assembly 4, and the outer side wall of flow assembly 3 is provided with opening and closing assembly 5, core assembly 2 is used for carrying out power transmission operation, pneumatic conveying assembly 4 is used for generating airflow input flow assembly 3 inside and is input core assembly 2 inside through flow assembly 3 to carry out dehumidification operation to core assembly 2, opening and closing assembly 5 is used for breaking through the pneumatic transmission channel between flow assembly 3 and core assembly 2, the utility model realizes that the air bus duct has the function of automatic dehumidification, and the amplitude of automatic dehumidification can be adjusted the moving amplitude of insertion plate 504 to adjust freely as needed, which makes the inside of air bus duct can keep the state of dryness in real time, which is extremely suitable in the case that the use environment of air bus duct is relatively wet, eliminates the security risk of electric leakage, improves the power transmission efficiency of air bus duct, and prolongs the service life of air bus duct.
[0025] Specifically, the protection assembly 1 includes a shell 101, the shell 101 is provided with a support groove 102 on the outer side wall, and the plurality of copper bars 203 are detachably connected by cooperating with the external connecting piece along the connecting hole 204.
[0026] Specifically, the core assembly 2 includes an end plate 201, which is detachably connected to the inner wall of the support groove 102. A copper busbar 203 is inserted into the outer wall of the end plate 201. The outer wall of the copper busbar 203 is covered with an insulating sleeve 202. A connection hole 204 is provided on the outer wall of the copper busbar 203. By moving the copper busbar 203 covered with the insulating sleeve 202 into the end plate 201 and rotating the external fastener, the end plate 201 and the inner wall of the support groove 102 can be detachably connected, thereby enabling the core assembly 2 and the housing 101 to be detachably connected.
[0027] Specifically, the flow assembly 3 includes a side plate 301, which is disposed on the outer wall of the housing 101. A groove 302 is formed on the upper surface of the side plate 301, and a flow groove 304 is formed on the inner wall of the bottom surface of the groove 302. A threaded groove 303 is also formed on the inner wall of the bottom surface of the groove 302. One end of a flow hole 305 is formed on the inner wall of the flow groove 304, and the other end of the flow hole 305 extends to the inner wall of the support groove 102. A cover plate 307 is wedge-connected to the inner wall of the groove 302, and a vertical hole 308 is formed on the upper surface of the cover plate 307. By moving the cover plate 307 and wedge the outer wall of the cover plate 307 with the inner wall of the groove 302, and then rotating the external screw along the vertical hole 308 and extending it into the threaded groove 303, a detachable connection can be made between the cover plate 307 and the side plate 301, thereby sealing the flow groove 304.
[0028] Specifically, the upper surface of the side plate 301 is provided with a slot 306, and the slot 306 can longitudinally cut off the flow hole 305. By allowing the flow hole 305 to be opened, the flow groove 304 and the support groove 102 can be connected, so that the drying airflow inside the flow groove 304 can be transmitted to the support groove 102 through the flow hole 305 to dry the core assembly 2.
[0029] Specifically, the pneumatic conveying assembly 4 includes a fan 401, which is detachably connected to the inner wall of the flow channel 304, and the outer surface of the fan 401 is provided with an air inlet 402. The fan 401 and the flow channel 304 are connected by an exhaust port 403. The fan 401 can transmit airflow through the air inlet 402 to the interior of the flow channel 304 through the exhaust port 403.
[0030] Specifically, the opening and closing assembly 5 includes an electric cylinder 501, which is detachably connected to the outer wall of the side plate 301. One end of a pneumatic telescopic rod 502 is slidably connected to the inner wall of the electric cylinder 501, and the other end of the pneumatic telescopic rod 502 is detachably connected to a pressure plate 503. An insert plate 504 is provided on the outer wall of the bottom surface of the pressure plate 503. The outer wall of the insert plate 504 is wedge-connected to the inner wall of the slot 306. The operation of the electric cylinder 501 drives the pneumatic telescopic rod 502 to extend and slide, thereby driving the pressure plate 503 to move linearly upward, which in turn drives the insert plate 504 to slide upward along the slot 306.
[0031] Specifically, the vertical hole 308 and the threaded groove 303 have the same diameter, and the vertical hole 308 and the threaded groove 303 are detachably connected by an external screw. By rotating the external screw along the vertical hole 308 and extending it into the threaded groove 303, the cover plate 307 and the side plate 301 can be detachably connected, thereby sealing the flow groove 304.
[0032] In use, firstly, the copper busbar 203, covered with the insulating sheath 202, is inserted into the end plate 201. Then, the external fastener is rotated to detachably connect the end plate 201 to the inner wall of the support groove 102, thereby detachably connecting the core assembly 2 to the housing 101. Next, the external connector is used along the connection hole 204 to detachably connect multiple copper busbars 203. Then, the cover plate 307 is moved and its outer wall is wedged into the inner wall of the groove 302. Then, the external screw is rotated along the vertical hole 308 and extended into the threaded groove 303 to detachably connect the cover plate 307 to the side plate 301, thereby sealing the flow groove 304. This effectively achieves the function of easy disassembly and assembly of the air busbar, and the assembled air busbar has high stability. Then, the airflow is transmitted to the flow groove 304 through the exhaust hole 403 by the fan 401 through the air inlet 402. Inside the through slot 304, the pneumatic telescopic rod 502 is extended and slid by the electric cylinder 501, which in turn drives the pressure plate 503 to move linearly upward. This causes the insertion plate 504 to slide upward along the slot 306, thus opening the flow hole 305 and connecting the flow slot 304 with the support slot 102. This allows the dry airflow inside the flow slot 304 to be transmitted through the flow hole 305 to the support slot 102 to dry the core assembly 2. This effectively enables the air busbar to have an automatic dehumidification function, and the degree of automatic dehumidification can be freely adjusted as needed by adjusting the movement of the insertion plate 504. This ensures that the inside of the air busbar can maintain a relatively dry state in real time, which is extremely suitable for use in humid environments. It eliminates the safety hazard of electric leakage, improves the power conduction efficiency of the air busbar, and extends the service life of the air busbar.
[0033] The fan 401 and electric cylinder 501 are finished products manufactured using existing technology and are available for purchase on the market; the components are all general standard parts or parts known to those skilled in the art, and their structure and principle can be known to those skilled in the art through technical manuals or conventional experimental methods.
[0034] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0035] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An automatic dehumidification type air bus duct comprising a protection assembly (1), characterized in that: The protective assembly (1) is used for bearing the core assembly (2), the outer side wall of the protective assembly (1) is provided with a flow assembly (3), the inner side wall of the flow assembly (3) is provided with a pneumatic conveying assembly (4), and the outer side wall of the flow assembly (3) is provided with an opening and closing assembly (5). The core assembly (2) is used for power transmission operation, the pneumatic conveying assembly (4) is used for generating airflow input into the flow assembly (3) and input into the core assembly (2) through the flow assembly (3), so that the core assembly (2) is dehumidified, and the opening and closing assembly (5) is used for cutting off the pneumatic transmission channel between the flow assembly (3) and the core assembly (2).
2. The automatic dehumidification type air bus duct of claim 1, wherein: The protective assembly (1) comprises a shell (101), and the outer side wall of the shell (101) is provided with a support groove (102).
3. The automatic dehumidification type air bus duct of claim 2, wherein: The core assembly (2) comprises an end plate (201), the end plate (201) is detachably connected to the inner side wall of the support groove (102), the outer side wall of the end plate (201) is provided with a copper bar (203), the outer side wall of the copper bar (203) is covered with an insulating sheath (202), and the outer side wall of the copper bar (203) is provided with a connecting hole (204).
4. The automatic dehumidification type air bus duct of claim 3, wherein: The flow assembly (3) comprises a side plate (301), the side plate (301) is arranged on the outer side wall of the shell (101), the upper surface of the side plate (301) is provided with a recess (302), the bottom surface of the recess (302) is provided with a flow groove (304), the bottom surface of the recess (302) is further provided with a threaded groove (303), and the inner side wall of the flow groove (304) is provided with one end of a flow hole (305), and the other end of the flow hole (305) extends to the inner side wall of the support groove (102). The inner side wall of the recess (302) is connected with a cover plate (307) in a wedge manner, and the upper surface of the cover plate (307) is provided with a vertical hole (308).
5. The automatic dehumidification type air bus duct of claim 4, wherein: The upper surface of the side plate (301) is further provided with a slot (306), and the slot (306) can longitudinally cut off the flow hole (305).
6. The automatic dehumidification type air bus duct of claim 5, wherein: The pneumatic conveying assembly (4) comprises a fan (401), the fan (401) is detachably connected to the inner side wall of the flow groove (304), the outer surface of the fan (401) is provided with an air inlet hole (402), and the fan (401) and the flow groove (304) are communicated through an air outlet hole (403).
7. The automatic dehumidification type air bus duct of claim 5, wherein: The opening and closing assembly (5) comprises an electric cylinder (501), the electric cylinder (501) is detachably connected to the outer side wall of the side plate (301), one end of a pneumatic telescopic rod (502) is slidably connected to the inner side wall of the electric cylinder (501), the other end of the pneumatic telescopic rod (502) is detachably connected with a pressing plate (503), the bottom surface of the pressing plate (503) is provided with an insertion plate (504), and the outer side wall of the insertion plate (504) is connected with the inner side wall of the slot (306) in a wedge manner.
8. The automatic dehumidification type air bus duct of claim 4, wherein: The vertical hole (308) and the threaded groove (303) have the same hole diameter, and the vertical hole (308) and the threaded groove (303) are detachably connected through an external screw.