Protective shell of new energy transformer
By introducing dehumidification and heat dissipation mechanisms into the protective casing of the new energy transformer, the condensation problem caused by humid air is solved, effective moisture filtration and heat dissipation are achieved, the reliability of the device is improved, maintenance is facilitated, and short circuits and corrosion are prevented.
Patent Information
- Application Number
- CN202511107716.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2025-09-19
AI Technical Summary
The existing new energy transformer protective casing lacks effective dehumidification measures, which causes condensation of moisture in the humid air, which may lead to circuit short circuits, component corrosion and degradation of insulation performance, affecting the reliability and service life of the device.
A protective shell including a dehumidification mechanism, a heat dissipation mechanism and a convenient mechanism is designed. The dehumidification mechanism drives the rotating shaft and water-absorbing sponge to filter moisture through a temperature-controlled intelligent drive motor. The heat dissipation mechanism achieves heat dissipation and pressure release through fan blades and limit springs. The convenient mechanism facilitates the quick installation and maintenance of the transformer through a slider and a return spring.
It effectively filters moisture in the air, prevents condensation, achieves efficient heat dissipation and pressure relief, avoids short-circuit faults, facilitates rapid maintenance of the transformer, and improves the reliability and service life of the device.
Smart Images

Figure CN120674186A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy transformer equipment, and in particular to a protective casing of a new energy transformer. Background Art
[0002] As electronic equipment or precision devices generate a large amount of heat during operation, heat dissipation becomes a key link to ensure their stable operation. To achieve effective heat dissipation, many devices use ventilation heat dissipation, that is, introducing outside air through heat dissipation holes or heat dissipation channels for convective heat exchange. However, the outside air usually contains a certain amount of water vapor or moisture, especially in humid environments or rainy seasons, the moisture content in the air is relatively high.
[0003] In the existing technology, although some protective casings have ventilation structures, they lack effective dehumidification or moisture-proof measures. When humid air enters the interior of the device, moisture may condense on the surface of internal components, causing circuit short circuits, component corrosion or degradation of insulation performance, seriously affecting the reliability and service life of the device. Summary of the Invention
[0004] The purpose of the present invention is to provide a protective casing for a new energy transformer to solve the problems raised in the above background technology.
[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:
[0006] The present invention provides a protective housing for a new energy transformer, comprising a protective housing and further comprising:
[0007] A dehumidification mechanism is disposed within the protective housing and includes a circular box disposed on the protective housing, a rotating shaft being provided through the circular box, a temperature-controlled intelligent drive motor being provided on the front of the circular box, an output shaft of the temperature-controlled intelligent drive motor being fixedly connected to the rotating shaft, a rectangular slot being provided on the rotating shaft, and the dehumidification mechanism being used to filter and remove moisture that enters the protective housing;
[0008] a heat dissipation mechanism, the heat dissipation mechanism being disposed on the dehumidification mechanism and comprising a cleaning plate disposed on a rotating shaft, the cleaning plate being in contact with a circular box, the back of the circular box extending outside the protective housing, the heat dissipation mechanism being used to dissipate heat when the temperature inside the protective housing is high;
[0009] A convenient mechanism is provided on the protective shell, comprising a closed door provided on the front of the protective shell, two track plates provided in the protective shell, T-shaped sliders being slidably installed in the two track plates, a return spring being fixedly installed on the inner wall of the back side of the protective shell, and a connecting plate being fixedly installed on the front end of the return spring, and the convenient mechanism is used for quickly removing and installing the transformer.
[0010] Furthermore, the dehumidification mechanism includes a circular box fixedly installed inside the protective housing. A rotating shaft is rotatably installed inside the circular box. A temperature-controlled intelligent driving motor is fixedly installed on the front surface of the circular box. A connecting block is slidably sleeved on the rectangular groove.
[0011] Furthermore, threaded plates are respectively fixedly installed at the top end and the bottom end of the connecting block. Both of the threaded plates are threadedly connected to the circular box. Two U-shaped plates are fixedly installed on the back surface of the connecting block. Rotating rollers are respectively rotatably installed inside the two U-shaped plates.
[0012] Furthermore, a filter plate is fixedly installed inside the circular box. A water-absorbing sponge is fixedly installed on the front surface of the filter plate. The rotating shaft rotatably penetrates through the filter plate and the water-absorbing sponge. Two air outlets are opened on the circular box. A drain pipe is fixedly installed on the circular box. The left end and the right end of the drain pipe both extend outside the protective housing.
[0013] Furthermore, the heat dissipation mechanism includes a cleaning plate fixedly sleeved on the rotating shaft. A plurality of air inlet holes are opened on the back surface of the circular box. A fan blade is fixedly installed on the rotating shaft. A rectangular box is fixedly installed through the protective housing. A plurality of round holes are opened on the front inner wall of the rectangular box.
[0014] Furthermore, a limiting spring is fixedly installed on the front inner wall of the rectangular box. A T-shaped hollow plate is slidably installed inside the rectangular box. The back surface of the T-shaped hollow plate slidably extends outside the rectangular box. The end of the limiting spring is fixedly connected to the T-shaped hollow plate. Strip-shaped grooves are respectively opened on the left side and the right side of the T-shaped hollow plate.
[0015] Furthermore, the convenient mechanism includes a closing door hingedly installed on the front surface of the protective housing. Two track plates are fixedly installed inside the protective housing. A U-shaped mounting plate is fixedly installed on the top of the two T-shaped sliders. The front surface of the connecting plate is in contact with the U-shaped mounting plate. A handle is fixedly installed on the front surface of the U-shaped mounting plate.
[0016] Furthermore, rectangular hollow blocks are respectively fixedly installed through the left side and the right side of the protective housing. Closing springs are respectively fixedly installed on the inner walls of the mutually remote sides of the two rectangular hollow blocks. Trapezoidal blocks are respectively fixedly installed at the mutually approaching ends of the two closing springs. The mutually approaching ends of the two trapezoidal blocks both slidably extend inside the U-shaped mounting plate.
[0017] Furthermore, rectangular plates are fixedly installed on the sides of the two trapezoidal blocks away from each other respectively. The two ends of the two rectangular plates away from each other slide and extend outside the two rectangular hollow blocks respectively. Special-shaped plates are fixedly installed at the ends of the two rectangular plates away from each other respectively. The ends of the two track plates close to each other slide and extend into the protective housing respectively. Rectangular connecting plates are hingedly installed on the two special-shaped plates respectively. A cross plate is hingedly installed on the two rectangular connecting plates.
[0018] Furthermore, a sliding plate is fixedly installed on the front of the cross plate. A T-shaped round rod is fixedly installed in the protective housing. The T-shaped round rod slidably penetrates through the sliding plate. Two hollow sliding plates are hingedly installed on the top of the C-shaped mounting plate. A T-shaped connecting plate is hingedly installed on the inner wall of the top of the protective housing. The two T-shaped connecting plates slide and extend into the two hollow sliding plates respectively.
[0019] The present invention has the following beneficial effects:
[0020] (1) For the protective housing of a new energy transformer of the present invention, when dissipating heat, the outside air will enter the device. When the air passes through the water-absorbing sponge, the moisture in the air will be filtered out. When the rotating shaft rotates, it will drive the connecting block to rotate under the action of the rectangular groove. The connecting block will drive the threaded plate to rotate. The threaded plate will drive the C-shaped plate to approach the water-absorbing sponge under the action of the reciprocating thread in the circular box. The C-shaped plate will drive the rotating roller to rotate and move synchronously. When the rotating roller touches the water-absorbing sponge, it will rotate and squeeze the water-absorbing sponge to drain the water in the water-absorbing sponge. The drained water will gather into droplets and drain out of the protective housing through the drain pipe. During the continuous rotation of the rotating shaft, it will drive the rotating roller to move back and forth, intermittently draining the water-absorbing sponge, so as to ensure that the water-absorbing sponge will not lose the performance of filtering moisture due to water saturation. This structure can prevent moisture and air from entering the protective housing together for heat dissipation, avoiding the occurrence of short-circuit faults in the device due to excessive moisture.
[0021] (2) For the protective housing of a new energy transformer in the present invention, when the temperature inside the protective housing is relatively high, the temperature-controlled intelligent drive motor will start. The temperature-controlled intelligent drive motor drives the rotation shaft to rotate, and the rotation shaft drives the fan blade to rotate. The fan blade generates a suction force to suck air from the outside through the air inlet holes. The gas passes through the filter plate and the water-absorbing sponge and is discharged into the protective housing through the air outlet. As more and more gas enters the protective housing, the air pressure inside the protective housing will increase. The gas will enter the rectangular box through the round holes, and the gas will push the T-shaped hollow plate to slide out of the rectangular box. At this time, the limit spring undergoes a tensile deformation. When the strip-shaped groove on the T-shaped hollow plate leaves the rectangular box, the gas inside the rectangular box will be discharged from the strip-shaped groove. At this time, the heat dissipation and pressure relief of the protective housing are completed. When the temperature-controlled intelligent drive motor detects that the temperature inside the protective housing is normal, it will stop running. At this time, the limit spring will pull the T-shaped hollow plate back into the rectangular box under the action of elastic force, so that the strip-shaped groove enters the rectangular box. At this time, the protective housing maintains a sealed state, thus preventing dust from entering the protective housing and affecting the normal use of the device, and preventing the occurrence of short circuits;
[0022] (3) For the protective housing of a new energy transformer in the present invention, when it is necessary to maintain the transformer inside the protective housing, open the closing door, push the sliding plate down. The sliding plate带动 the cross plate down, the cross plate带动 the two rectangular connecting plates down, the rectangular connecting plates带动 the special-shaped plates move away from each other, the special-shaped plates带动 the rectangular plate move, the rectangular plate带动 the trapezoidal block离开 the C-shaped mounting plate, and the corresponding closing spring undergoes a compressive deformation. At this time, the connecting plate will push the C-shaped mounting plate to slide out of the protective housing under the compressive elastic potential energy of the return spring. At this time, manually hold the handle, and the T-shaped slider will带动 the transformer installed on the top of the C-shaped mounting plate to pop out together, thus facilitating the maintenance and repair of the transformer. After the C-shaped mounting plate moves out of the protective housing, the corresponding hollow sliding plate and the T-shaped connecting plate will slide and support and pull the C-shaped mounting plate, and fix and support the position where the bottom of the C-shaped mounting plate is suspended, avoiding deformation and wear of the T-shaped slider and the track plate during long-term use.
[0023] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0025] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0026] Figure 2 It is a schematic diagram of the rear cross-sectional structure of the present invention;
[0027] Figure 3 For the present invention Figure 2 Schematic enlarged structure diagram of A in the present invention;
[0028] Figure 4 Schematic front sectional structure diagram of the present invention;
[0029] Figure 5 For the present invention Figure 4 Schematic enlarged structure diagram of B in the present invention;
[0030] Figure 6 For the present invention Figure 2 Schematic enlarged structure diagram of C in the present invention;
[0031] Figure 7 Schematic internal partial sectional structure diagram of the present invention;
[0032] Figure 8 For the present invention Figure 7 Schematic enlarged structure diagram of D in the present invention.
[0033] In the attached drawings, the list of components represented by each reference numeral is as follows:
[0034] In the figure: 1. Protective housing; 101. Circular box; 102. Rotating shaft; 103. Temperature-controlled intelligent drive motor; 104. Rectangular groove; 105. Connecting block; 106. Threaded plate; 107. C-shaped plate; 108. Rotating roller; 109. Filter plate; 110. Absorbent sponge; 111. Air outlet; 112. Drain pipe; 2. Cleaning plate; 201. Air inlet hole; 202. Fan blade; 203. Rectangular box; 204. Round hole; 205. T-shaped hollow plate; 206. Limiting spring; 207. Strip-shaped groove; 3. Closing door; 301. Track plate; 302. T-shaped slider; 3021. C-shaped mounting plate; 303. Return spring; 304. Connecting plate; 305. Handle; 306. Rectangular hollow block; 307. Closing spring; 308. Trapezoidal block; 309. Rectangular plate; 310. Special-shaped plate; 311. Rectangular connecting plate; 312. Cross plate; 313. T-shaped round rod; 314. Sliding plate; 315. Hollow sliding plate; 316. T-shaped connecting plate. Detailed implementation manners
[0035] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0036] Please refer to Figures 1-8As shown in the figure, the present invention is a protective housing for a new energy transformer, including a protective housing 1, and further including:
[0037] A dehumidification mechanism, which is arranged inside the protective housing 1. The dehumidification mechanism includes a circular box 101 arranged on the protective housing 1. A rotating shaft 102 penetrates through the circular box 101. A temperature-controlled intelligent driving motor 103 is arranged on the front of the circular box 101. The output shaft of the temperature-controlled intelligent driving motor 103 is fixedly connected to the rotating shaft 102. A rectangular groove 104 is formed on the rotating shaft 102. The dehumidification mechanism is used for filtering and removing the moisture entering the protective housing 1.
[0038] A heat dissipation mechanism, which is arranged on the dehumidification mechanism. The heat dissipation mechanism includes a cleaning plate 2 arranged on the rotating shaft 102. The cleaning plate 2 is in contact with the circular box 101. The back of the circular box 101 extends outside the protective housing 1. The heat dissipation mechanism is used for dissipating heat when the temperature inside the protective housing 1 is high.
[0039] A convenient mechanism, which is arranged on the protective housing 1. The convenient mechanism includes a closing door 3 arranged on the front of the protective housing 1. Two track plates 301 are arranged inside the protective housing 1. T-shaped sliders 302 are respectively slidably installed in the two track plates 301. A return spring 303 is fixedly installed on the back inner wall of the protective housing 1. The front end of the return spring 303 is fixedly installed with a connecting plate 304. The convenient mechanism is used for quickly taking out and installing the transformer.
[0040] As Figure 4 and <During heat dissipation, outside air will enter the device, and the air will filter out moisture in the air when passing through the water-absorbing sponge 110. When the rotating shaft 102 rotates, it will drive the connecting block 105 to rotate under the action of the rectangular groove 104, and the connecting block 105 will drive the threaded plate 106 to rotate. The threaded plate 106 will drive the round plate 107 toward the direction of the water-absorbing sponge 110 under the action of the reciprocating thread in the circular box 101.
[0044] like Figure 5 As shown, a filter plate 109 is fixedly installed in the circular box 101, a water-absorbing sponge 110 is fixedly installed on the front of the filter plate 109, the rotating shaft 102 rotates through the filter plate 109 and the water-absorbing sponge 110, two air outlets 111 are provided on the circular box 101, and a drain pipe 112 is fixedly installed on the circular box 101, and the left end and the right end of the drain pipe 112 both extend to the outside of the protective shell 1.
[0045] The moisture in the water-absorbing sponge 110 is drained, and the drained water will gather into droplets and be discharged from the drain pipe 112 outside the protective shell 1. During the continuous rotation of the rotating shaft 102, the rotating roller 108 will be driven to move back and forth, intermittently draining the water-absorbing sponge 110, thereby ensuring that the water-absorbing sponge 110 does not lose its ability to filter moisture due to water saturation. This structure can prevent moisture and air from entering the protective shell 1 for heat dissipation, thereby avoiding short-circuit failure of the device due to excessive moisture.
[0046] like Figure 2 and Figure 6 As shown, the heat dissipation mechanism includes a cleaning plate 2 fixedly mounted on the rotating shaft 102, a plurality of air inlet holes 201 are provided on the back of the circular box 101, a fan blade 202 is fixedly mounted on the rotating shaft 102, a rectangular box 203 is fixedly mounted through the protective shell 1, and a plurality of circular holes 204 are provided on the front inner wall of the rectangular box 203.
[0047] The fan blades 202 generate suction force to draw air from the outside through the air inlet 201, and the gas is discharged into the protective shell 1 from the air outlet 111 through the filter plate 109 and the water-absorbing sponge 110. As more and more gas enters the protective shell 1, the air pressure inside the protective shell 1 will increase.
[0048] like Figure 6 As shown, a limit spring 206 is fixedly installed on the front inner wall of the rectangular box 203, and a T-shaped hollow plate 205 is slidably installed in the rectangular box 203. The back side of the T-shaped hollow plate 205 slides and extends outside the rectangular box 203. The end of the limit spring 206 is fixedly connected to the T-shaped hollow plate 205, and strip grooves 207 are respectively provided on the left and right sides of the T-shaped hollow plate 205.
[0049] Gas will enter the rectangular box 203 through the round hole 204. The gas will push the T-shaped hollow plate 205 to slide out of the rectangular box 203. At this time, the limit spring 206 will undergo tensile deformation. When the strip groove 207 on the T-shaped hollow plate 205 leaves the rectangular box 203, the gas in the rectangular box 203 will be discharged from the strip groove 207. At this time, the heat dissipation and pressure relief of the protective shell 1 are completed. When the temperature control intelligent drive motor 103 detects that the temperature inside the protective shell 1 is normal, it will stop running. At this time, the limit spring 206 will pull the T-shaped hollow plate 205 back into the rectangular box 203 under the action of elastic force, so that the strip groove 207 enters the rectangular box 203. At this time, the protective shell 1 maintains a sealed state, thus preventing dust from entering the protective shell 1 and affecting the normal use of the device, and preventing the occurrence of short circuits.
[0050] As Figure 4 and Figure 7 shown, the convenient mechanism includes a closing door 3 hinged and installed on the front of the protective shell 1. Two track plates 301 are fixedly installed inside the protective shell 1. The tops of two T-shaped sliders 302 are fixedly installed with a C-shaped mounting plate 3021. The front of the connecting plate 304 contacts the C-shaped mounting plate 3021. A handle 305 is fixedly installed on the front of the C-shaped mounting plate 3021.
[0051] The T-shaped slider 302 will drive the transformer installed on the top of the T-shaped slider 302 to pop out together, so as to facilitate the maintenance and repair of the transformer. After the T-shaped slider 302 moves out of the protective shell 1.
[0052] As Figure 8 shown, rectangular hollow blocks 306 are respectively fixedly installed through the left and right sides of the protective shell 1. Closing springs 307 are respectively fixedly installed on the inner walls of the two rectangular hollow blocks 306 away from each other. Trapezoidal blocks 308 are respectively fixedly installed at one ends of the two closing springs 307 close to each other. One ends of the two trapezoidal blocks 308 close to each other both slide and extend into the C-shaped mounting plate 3021.
[0053] The rectangular plate 309 drives the trapezoidal block 308 to leave the T-shaped slider 302. Accordingly, the closing spring 307 undergoes compressive deformation. At this time, the connecting plate 304 will push the T-shaped slider 302 to slide out of the protective shell 1 under the compressive elastic potential energy of the return spring 303.
[0054] As Figure 7 and Figure 8As shown, on the sides of the two trapezoidal blocks 308 away from each other, rectangular plates 309 are respectively and fixedly installed. The ends of the two rectangular plates 309 away from each other respectively slide and extend outside the two rectangular hollow blocks 306.异形板310 are respectively fixedly installed at the ends of the two rectangular plates 309 away from each other. The ends of the two track plates 301 close to each other respectively slide and extend into the protective housing 1. Rectangular connecting plates 311 are respectively hinged and installed on the two异形板310, and a cross plate 312 is hinged and installed on the two rectangular connecting plates 311.
[0055] The cross plate 312 drives the two rectangular connecting plates 311 to descend. The rectangular connecting plates 311 drive the异形板310 to move away from each other. The异形板310 drive the rectangular plates 309 to move.
[0056] As Figure 7 shown, a sliding plate 314 is fixedly installed on the front of the cross plate 312. A T-shaped round bar 313 is fixedly installed in the protective housing 1. The T-shaped round bar 313 slidably penetrates through the sliding plate 314. Two hollow sliding plates 315 are hinged and installed on the top of the C-shaped mounting plate 3021. A T-shaped connecting plate 316 is hinged and installed on the inner wall of the top of the protective housing 1. The two T-shaped connecting plates 316 respectively slide and extend into the two hollow sliding plates 315.
[0057] When the transformer inside the protective housing 1 needs to be maintained, the closing door 3 is opened, and the sliding plate 314 is pushed to descend. The sliding plate 314 drives the cross plate 312 to descend. Under the limiting effect of the T-shaped connecting plate 316 and the hollow sliding plate 315, a pulling force will be generated on the C-shaped mounting plate 3021, thereby ensuring the stability after the C-shaped mounting plate 3021 is pulled out.
[0058] During use, when the temperature inside the protective housing 1 is relatively high, the temperature-controlled intelligent drive motor 103 will start. The temperature-controlled intelligent drive motor 103 drives the rotating shaft 102 to rotate. The rotating shaft 102 drives the fan blade 202 to rotate. The fan blade 202 generates a suction force to suck air from the outside through the air inlet hole 201. The gas passes through the filter plate 109 and the water-absorbing sponge 110 and is discharged into the protective housing 1 from the air outlet 111. As more and more gas enters the protective housing 1, the air pressure inside the protective housing 1 will increase. The gas will enter the rectangular box 203 from the round hole 204. The gas will push the T-shaped hollow plate 205 to slide out of the rectangular box 203. At this time, the limiting spring 206 undergoes a tensile deformation. When the strip-shaped groove 207 on the T-shaped hollow plate 205 leaves the rectangular box 203, the gas inside the rectangular box 203 will be discharged from the strip-shaped groove 207. At this time, the heat dissipation and pressure relief of the protective housing 1 are completed. When the temperature-controlled intelligent drive motor 103 detects that the temperature inside the protective housing 1 is normal, it will stop running. At this time, the limiting spring 206 will pull the T-shaped hollow plate 205 back into the rectangular box 203 under the action of the elastic force, so that the strip-shaped groove 207 enters the rectangular box 203. At this time, the protective housing 1 maintains a sealed state;
[0059] When the device dissipates heat, external air will enter the device. When the air passes through the water-absorbing sponge 110, the moisture in the air will be filtered out. When the rotating shaft 102 rotates, it will drive the connecting block 105 to rotate under the action of the rectangular groove 104. The connecting block 105 will drive the threaded plate 106 to rotate. The threaded plate 106 will drive the U-shaped plate 107 to approach the water-absorbing sponge 110 under the action of the reciprocating thread in the circular box 101. The U-shaped plate 107 will drive the rotating roller 108 to rotate and move synchronously. When the rotating roller 108 touches the water-absorbing sponge 110, it will rotate and squeeze the water-absorbing sponge 110 to drain the water in the water-absorbing sponge 110. The drained water will gather into droplets and be discharged from the drain pipe 112 outside the protective shell 1. During the continuous rotation of the rotating shaft 102, it will drive the rotating roller 108 to move back and forth, intermittently draining the water-absorbing sponge 110;
[0060] When the transformer inside the protective shell 1 needs to be maintained, open the closing door 3, push the sliding plate 314 down. The sliding plate 314 drives the cross plate 312 down. The cross plate 312 drives the two rectangular connecting plates 311 down. The rectangular connecting plates 311 drive the special-shaped plates 310 to move away from each other. The special-shaped plates 310 drive the rectangular plate 309 to move. The rectangular plate 309 drives the trapezoidal block 308 to leave the U-shaped mounting plate 3021. Correspondingly, the closing spring 307 undergoes a compressive deformation. At this time, the connecting plate 304 will push the U-shaped mounting plate 3021 to slide out of the protective shell 1 under the elastic potential energy of the compressed reset spring 303. At this time, manually hold the handle 305, and the T-shaped slider 302 will drive the transformer installed on the top of the U-shaped mounting plate 3021 to pop out together, so as to facilitate the maintenance and repair of the transformer. After the U-shaped mounting plate 3021 moves out of the protective shell 1, the corresponding hollow sliding plate 315 and T-shaped connecting plate 316 will slide and support and pull the U-shaped mounting plate 3021 to fixedly support the position where the bottom of the U-shaped mounting plate 3021 is suspended.
[0061] The above-disclosed preferred embodiments of the present invention are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor limit the invention to the specific embodiments described. Obviously, according to the content of this specification, many modifications and changes can be made. This specification selects and specifically describes these embodiments to better explain the principle and practical application of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A protective housing for a new energy transformer, comprising a protective housing (1), characterized in that: Further included are: A dehumidification mechanism, which is arranged inside the protective housing (1). The dehumidification mechanism includes a circular box (101) arranged on the protective housing (1). A rotating shaft (102) is arranged through the circular box (101). A temperature-controlled intelligent driving motor (103) is arranged on the front surface of the circular box (101). The output shaft of the temperature-controlled intelligent driving motor (103) is fixedly connected to the rotating shaft (102). A rectangular groove (104) is formed on the rotating shaft (102). The dehumidification mechanism is used for filtering and removing the moisture entering the protective housing (1). A heat dissipation mechanism, which is arranged on the dehumidification mechanism. The heat dissipation mechanism includes a cleaning plate (2) arranged on the rotating shaft (102). The cleaning plate (2) is in contact with the circular box (101). The back surface of the circular box (101) extends outside the protective housing (1). The heat dissipation mechanism is used for dissipating heat when the temperature inside the protective housing (1) is high. A convenient mechanism, which is arranged on the protective housing (1). The convenient mechanism includes a closing door (3) arranged on the front surface of the protective housing (1). Two track plates (301) are arranged inside the protective housing (1). T-shaped sliders (302) are respectively slidably installed in the two track plates (301). A reset spring (303) is fixedly installed on the back inner wall of the protective housing (1). The front end of the reset spring (303) is fixedly installed with a connecting plate (304). The convenient mechanism is used for quickly taking out and installing the transformer.
2. The protective housing of a new energy transformer according to claim 1, characterized in that: The dehumidification mechanism includes a circular box (101) fixedly installed inside the protective housing (1). A rotating shaft (102) is rotatably installed inside the circular box (101). A temperature-controlled intelligent driving motor (103) is fixedly installed on the front surface of the circular box (101). A connecting block (105) is slidably sleeved on the rectangular groove (104).
3. The protective housing of a new energy transformer according to claim 2, characterized in that: The top end and the bottom end of the connecting block (105) are respectively fixedly installed with threaded plates (106). Both of the two threaded plates (106) are threadedly connected to the circular box (101). Two U-shaped plates (107) are fixedly installed on the back surface of the connecting block (105). Rotating rollers (108) are respectively rotatably installed in the two U-shaped plates (107).
4. The protective housing of a new energy transformer according to claim 1, characterized in that: A filter plate (109) is fixedly installed inside the circular box (101). A water-absorbing sponge (110) is fixedly installed on the front surface of the filter plate (109). The rotating shaft (102) rotatably penetrates through the filter plate (109) and the water-absorbing sponge (110). Two air outlets (111) are formed on the circular box (101). A drain pipe (112) is fixedly installed on the circular box (101). The left end and the right end of the drain pipe (112) both extend outside the protective housing (1).
5. The protective housing of a new energy transformer according to claim 1, characterized in that: The heat dissipation mechanism includes a cleaning plate (2) fixedly sleeved on the rotating shaft (102). A plurality of air inlet holes (201) are formed in the back surface of the circular box (101). A fan blade (202) is fixedly installed on the rotating shaft (102). A rectangular box (203) is fixedly installed through the protective housing (1). A plurality of circular holes (204) are formed in the front inner wall of the rectangular box (203).
6. The protective housing of a new energy transformer according to claim 5, characterized in that: A limiting spring (206) is fixedly installed on the front inner wall of the rectangular box (203). A T-shaped hollow plate (205) is slidably installed in the rectangular box (203). The back surface of the T-shaped hollow plate (205) slidably extends outside the rectangular box (203). The end of the limiting spring (206) is fixedly connected to the T-shaped hollow plate (205). Strip-shaped grooves (207) are respectively formed on the left and right sides of the T-shaped hollow plate (205).
7. The protective housing of a new energy transformer according to claim 1, characterized in that: The convenient mechanism includes a closing door (3) hingedly installed on the front of the protective housing (1). Two track plates (301) are fixedly installed in the protective housing (1). The tops of the two T-shaped sliders (302) are fixedly installed with a C-shaped mounting plate (3021). The front surface of the connecting plate (304) contacts the C-shaped mounting plate (3021). A handle (305) is fixedly installed on the front surface of the C-shaped mounting plate (3021).
8. The protective housing of a new energy transformer according to claim 7, characterized in that: Rectangular hollow blocks (306) are respectively fixedly installed through the left and right sides of the protective housing (1). Closing springs (307) are respectively fixedly installed on the inner walls of the two rectangular hollow blocks (306) away from each other. The ends of the two closing springs (307) close to each other are respectively fixedly installed with trapezoidal blocks (308). The ends of the two trapezoidal blocks (308) close to each other both slidably extend into the C-shaped mounting plate (3021).
9. The protective housing of a new energy transformer according to claim 8, characterized in that: Rectangular plates (309) are respectively fixedly installed on the sides of the two trapezoidal blocks (308) away from each other. The ends of the two rectangular plates (309) away from each other respectively slidably extend outside the two rectangular hollow blocks (306). Special-shaped plates (310) are respectively fixedly installed at the ends of the two rectangular plates (309) away from each other. The ends of the two track plates (301) close to each other respectively slidably extend into the protective housing (1). Rectangular connecting plates (311) are respectively hingedly installed on the two special-shaped plates (310). A cross plate (312) is hingedly installed on the two rectangular connecting plates (311).
10. The protective housing of a new energy transformer according to claim 9, characterized in that: A sliding plate (314) is fixedly installed on the front surface of the cross plate (312). A T-shaped round bar (313) is fixedly installed in the protective housing (1). The T-shaped round bar (313) slidably penetrates through the sliding plate (314). Two hollow sliding plates (315) are hingedly installed on the top of the C-shaped mounting plate (3021). A T-shaped connecting plate (316) is hingedly installed on the top inner wall of the protective housing (1). The two T-shaped connecting plates (316) respectively slidably extend into the two hollow sliding plates (315).