A generator set with a wrap-around heat dissipation function

By designing a generator set with a surround-type heat dissipation function, and using telescopic components and air intake components to dynamically draw in air for heat dissipation, the problem of uneven heat dissipation of the generator set is solved, and the heat dissipation efficiency and stability are improved.

CN115949498BActive Publication Date: 2025-12-30SHANGYAN POWER TECH JIANGSU CO LTD
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Patent Information

Application Number
CN202310038183.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-10
Publication Date
2025-12-30
Estimated Expiration
2043-01-10

AI Technical Summary

Technical Problem

In existing generator cooling systems, when two sets of fans are installed, if one set of fans fails, the suction force of the other set of fans increases, resulting in uneven heat distribution, slower cooling speed, and increased ambient temperature, thus affecting the heat dissipation effect.

Method used

A generator set with a surround-type heat dissipation function was designed. By setting up telescopic components, rotating components and air intake components, dynamic surround air intake heat dissipation is achieved. Multiple support pipes and air holes are used to absorb heat. Combined with swing components and load-bearing components, the heat flow rate is improved.

Benefits of technology

This achieves uniform heat dissipation of the generator set, avoids rising ambient temperature, improves heat dissipation efficiency, and enhances the compatibility and stability of the heat dissipation system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application is suitable for the technical field of generator set, and provides a generator set with surrounding heat dissipation function, which comprises a shell, first through holes are uniformly arranged on the top of the shell, a sliding groove is arranged on the top of the shell, the sliding groove is located on one side of the first through hole, a generator set and a supporting assembly are arranged on the top of the shell, the generator set is located in the interior of the supporting assembly, an oscillating assembly is installed on the top of the generator set, and a rotating assembly is installed in communication with the top of the supporting assembly. The device solves the problem that when one fan of the two relatively arranged fans is damaged, the suction force between the two fans is affected, the heat air causes the cooling speed of the motor box to be slow or even the temperature of the motor box to rise, and the heat air continuously circulates around the motor box to slow down the cooling speed of the motor box, so that the effect of dynamically adjusting the suction position and collecting the surrounding heat air is achieved, and the heat dissipation uniformity is improved.
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Description

Technical Field

[0001] This invention relates to the field of generator set technology, and more specifically, to a generator set with a surround-type heat dissipation function. Background Technology

[0002] A generator set is a complete set of mechanical equipment that converts other forms of energy into electrical energy. It consists of a power system, a control system, a noise reduction system, a vibration damping system, and an exhaust system. It is driven by a water turbine, a steam turbine, a diesel engine, or other power machinery. It converts the energy generated by water flow, air flow, fuel combustion, or nuclear fission into mechanical energy, which is then transferred to the generator. The generator then converts the mechanical energy into electrical energy, which is then output to electrical equipment. In order to ensure the normal operation of the generator set, heat dissipation of the heat-generating unit is required.

[0003] Currently, existing heat-generating units are equipped with two sets of relatively movable fan cooling groups. The heat emitted by the motor box is dissipated by the relative airflow from the fan groups as they move.

[0004] However, the following problems still exist.

[0005] (1) Two sets of fans are set up opposite each other. When one set of fans is damaged, the suction of this set of fans decreases, while the suction of the other set of fans increases. As a result, the heat on the side near the damaged fan set will be affected by the suction of the other set of fans and flow through the motor box. This causes the hot air to cool down the motor box more slowly or even heat up.

[0006] (2) After the fan exhausts the hot air, it accumulates in the surrounding environment, causing the ambient temperature to rise. As the fan continues to rotate and exhaust air, the hot air in the environment is drawn back into the vicinity of the motor box, resulting in a slower cooling speed of the motor box. Summary of the Invention

[0007] In view of the shortcomings of the existing technology, the purpose of this invention is to provide a generator set with a surround-type heat dissipation function.

[0008] To achieve the above objectives, the present invention provides the following technical solution: a generator set with a surround-type heat dissipation function, comprising a housing, a first through hole uniformly opened on the top of the housing, a sliding groove opened on the top of the housing, the sliding groove being located on one side of the first through hole, a generator set and a support assembly disposed on the top of the housing, the generator set being located inside the support assembly, a swing assembly mounted on the top of the generator set, a rotating assembly connected to the top of the support assembly, a connecting assembly sleeved on the middle of the rotating assembly, two sets of telescopic assemblies mounted on both sides of the rotating assembly, and an air intake assembly mounted on one side of the support assembly, the air intake assembly being connected to the support assembly.

[0009] The present invention is further configured such that: the support component includes slide rails, the slide rails are symmetrically arranged, two slide rails are respectively installed on the top of the housing, two sliders are slidably connected to the top of the two slide rails, a support tube is installed on the top of the sliders, and a first connecting tube is connected between the two support tubes.

[0010] The present invention is further configured such that: the rotating assembly includes a second connecting pipe and a third connecting pipe, the second connecting pipe is connected to one of the first connecting pipes, the third connecting pipe is connected to another of the first connecting pipes, and the opposite ends of the second connecting pipe and the third connecting pipe are connected together.

[0011] The present invention is further configured such that: the connecting assembly includes a driving gear, the driving gear is installed on the outer side wall of the second connecting pipe, an inner gear is sleeved on the outer side wall of the driving gear, two driven gears are meshed between the inner wall of the inner gear and the outer side wall of the driving gear, limit blocks are evenly installed on the outer side wall of the inner gear and the outer side wall of the driving gear, and a limit rod is inserted into the inside of the limit block.

[0012] The present invention is further configured such that: both of the telescopic components include a first square tube, one of the first square tubes is connected to the outer wall of the third connecting tube, the other of the first square tubes is connected to the outer wall of the second connecting tube, a second square tube is inserted inside the first square tube, and an air intake pipe is connected to the side of the second square tube near the generator set. The outer wall of the air intake pipe is uniformly provided with first air holes, and the outer wall of the support tube is uniformly provided with second air holes.

[0013] The present invention is further configured such that: the air intake assembly includes a support frame, the support frame is installed on one side of a first connecting pipe, a suction pump is installed on one side of the support frame, the top air pipe of the suction pump is connected to the first connecting pipe, and the bottom air pipe of the suction pump is connected to the housing.

[0014] The invention is further configured such that: the swing assembly includes a through groove, the through grooves are evenly arranged, and a plurality of the through grooves are opened on the top of the generator set; a baffle is rotatably connected inside the through groove; a connecting rod is connected between the plurality of baffles; a connecting plate is connected to the middle of the connecting rod; a connecting block is connected to one side of the connecting plate; the connecting block is slidably connected to the top of the generator set; and a first spring is connected to both sides of the connecting block; the end of the first spring away from the connecting block is connected to the top of the generator set.

[0015] The present invention is further configured such that: a bearing assembly is installed on the top of the housing, the bearing assembly includes a first base plate, the first base plate is located between the housing and the generator set, a sliding column is installed on the bottom of the first base plate, the sliding column passes through the interior of the sliding groove and is connected to a first push plate, the first push plate is slidably connected to the interior of the housing, and the first push plate is sleeved on the outer wall of the bottom air pipe of the suction pump, a second spring is connected between the first push plate and the inner wall of the housing, a second through hole is uniformly opened on the top of the first base plate, the second through hole is corresponding to the first through hole, and a first bearing plate is hinged to one side of the first base plate.

[0016] The present invention is further configured such that: a second bearing component is installed on the top of the housing, the second bearing component includes a second base plate, the second base plate is located between the housing and the generator set, a sliding column is installed at the bottom of the second base plate, the sliding column passes through the interior of the sliding groove and is connected to a second push plate, the second push plate is slidably connected to the interior of the housing, and the second push plate is sleeved on the outer side wall of the bottom air pipe of the suction pump, a third spring is connected between the second push plate and the inner wall of the housing, a third through hole is uniformly opened on the top of the second base plate, the third through hole is corresponding to the first through hole, a frame is hinged to one side of the second base plate, and a second bearing plate is slidably connected inside the frame.

[0017] The advantages of this invention are,

[0018] (1) By setting up telescopic components, rotating components drive connecting components to rotate, and the two parts of rotating components rotate in opposite directions, causing the two sets of telescopic components to rotate in opposite directions. The two sets of telescopic components rotate around the generator set, thereby dynamically circling the generator set to absorb and dissipate heat. In conjunction with the second air holes opened on multiple support pipes, the heat at the four side wall corners of the generator set is absorbed, thereby ensuring the uniformity of heat dissipation of the generator set.

[0019] (2) Since the first air hole is evenly arranged on the air intake pipe, the air intake pipe can not only absorb the heat around the generator set when it is displaced, but also absorb the air in the surrounding environment, so as to avoid the high ambient temperature affecting the cooling effect of the heat-generating unit.

[0020] (3) While the two intake pipes are rotating, there is always an overlap length between the two intake pipes. The overlap length between the two intake pipes can be adjusted according to different generator sets, which greatly improves the compatibility of the intake pipes. Moreover, the lengths of the two second square pipes are not the same, so there will be no collision when the two intake pipes overlap.

[0021] (4) By setting up a swing component and a bearing component, the third connecting pipe rotates continuously, causing the corresponding limit blocks to alternately squeeze the connecting block, causing the baffle to swing in the through slot, and the air pressure in the housing pushes the push plate to slide the bearing plate, causing the first through hole and the through hole on the bearing plate to connect. After the air in the housing is cooled, it enters the generator set through the through hole. The heat in the generator set can be provided with the power of flow through the swing baffle, thereby accelerating the speed of heat flow and improving the heat dissipation effect of the generator set. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a partial three-dimensional structural diagram of the present invention;

[0024] Figure 3 This is a schematic diagram of the connection structure between the generator set and the swing assembly of the present invention;

[0025] Figure 4 This is a schematic diagram of the connection structure of the swing assembly of the present invention;

[0026] Figure 5 This is a schematic diagram of the shell structure of the present invention;

[0027] Figure 6 This is a schematic diagram of the air intake component structure of the present invention;

[0028] Figure 7 This is a schematic diagram of the connection component structure of the present invention;

[0029] Figure 8 This is a schematic diagram of the front structure of the present invention;

[0030] Figure 9 This is a schematic diagram of the structure of the support component of the present invention in one embodiment;

[0031] Figure 10 This is a schematic diagram of the first bearing plate in an inclined state according to the present invention;

[0032] Figure 11 This is an exploded structural diagram of the load-bearing component of the present invention;

[0033] Figure 12 This is a schematic diagram of the structure of the second support component of the present invention in one embodiment;

[0034] Figure 13 This is a schematic diagram of the second bearing plate in an inclined state according to the present invention;

[0035] Figure 14 This is a schematic diagram of the second load-bearing component of the present invention;

[0036] In the diagram: 1. Housing; 11. First through hole; 12. Slide groove; 2. Support assembly; 21. Slide rail; 22. Slider; 23. Support tube; 24. First connecting tube; 3. Generator set; 4. Swing assembly; 41. Through groove; 42. Baffle; 43. Connecting rod; 44. Connecting plate; 45. Connecting block; 46. First spring; 5. Connecting assembly; 51. Internal gear; 52. Driving gear; 53. Limiting block; 54. Limiting rod; 55. Driven gear; 6. Rotating assembly; 61. Second connecting tube; 62. Third connecting tube 7. Telescopic assembly; 71. First square tube; 72. Second square tube; 73. Suction tube; 74. First air hole; 75. Second air hole; 8. Suction assembly; 81. Support frame; 82. Suction pump; 9. Bearing assembly one; 91. First base plate; 92. Second through hole; 93. First bearing plate; 94. First push plate; 95. Second spring; 10. Bearing assembly two; 101. Second base plate; 102. Third through hole; 103. Frame; 104. Second bearing plate; 105. Third spring; 106. Second push plate. Detailed Implementation

[0037] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.

[0038] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.

[0039] In this invention, unless otherwise stated, the directional terms such as "up" and "down" generally refer to the directions shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" generally refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not intended to limit this invention.

[0040] Example 1

[0041] Please see Figure 1-11 The present invention provides the following technical solutions:

[0042] A generator set with a surround-type heat dissipation function includes a housing 1. The top of the housing 1 has uniformly distributed first through holes 11 for venting gas from the housing 1. A sliding groove 12 is provided on one side of the first through holes 11. A generator set 3 and a support assembly 2 are disposed on the top of the housing 1. The generator set 3 is located inside the support assembly 2 and is used for power generation. The support assembly 2 protects and encloses the generator set 3. A swing assembly 4 is installed on the top of the generator set 3. A rotating assembly 6 is connected to the top of the support assembly 2. A mounting bracket is sleeved in the middle of the rotating assembly 6. The unit is equipped with a connecting component 5 and two sets of telescopic components 7 installed on both sides of the rotating component 6. An air intake component 8 is installed on one side of the support component 2. The air intake component 8 is connected to the support component 2. The rotating component 6 is connected to an external drive device, which can be a motor, but is not specifically limited here. The rotating component 6 drives the connecting component 5 to rotate. The two ends of the rotating component 6 rotate in opposite directions, causing the two sets of telescopic components 7 to rotate in opposite directions. The two sets of telescopic components 7 rotate around the generator set 3. At the same time, the air intake component 8 draws air. The hot air emitted by the generator set 3 enters the rotating component 6 through the telescopic components 7 and is discharged into the interior of the housing 1 for cooling through the air intake component 8.

[0043] The support assembly 2 includes slide rails 21, which are symmetrically arranged. Two slide rails 21 are respectively installed on the top of the housing 1. Two sliders 22 are slidably connected to the top of the two slide rails 21. Support tubes 23 are installed on the top of the sliders 22. A first connecting tube 24 is connected between the two support tubes 23. By pulling the sliders 22 to slide on the top of the slide rails 21, the position of the support tubes 23 and the first connecting tube 24 can be adjusted according to the size of the generator set 3.

[0044] The rotating assembly 6 includes a second connecting pipe 61 and a third connecting pipe 62. The second connecting pipe 61 is connected to a first connecting pipe 24, and the third connecting pipe 62 is connected to another first connecting pipe 24. The opposite ends of the second connecting pipe 61 and the third connecting pipe 62 are connected. When the first connecting pipe 24 is adjusted, the two first connecting pipes 24 pull the second connecting pipe 61 and the third connecting pipe 62 to adjust their positions, causing the second connecting pipe 61 to slide inside the third connecting pipe 62, and the second connecting pipe 61 will not detach from the third connecting pipe 62.

[0045] The connecting assembly 5 includes a drive gear 52, which is mounted on the outer wall of the second connecting pipe 61. An inner gear 51 is sleeved on the outer wall of the drive gear 52. Two driven gears 55 mesh between the inner wall of the inner gear 51 and the outer wall of the drive gear 52. Limiting blocks 53 are evenly installed on the outer walls of the inner gear 51 and the drive gear 52. Limiting rods 54 are inserted into the interior of the limiting blocks 53. When the second connecting pipe 61 rotates, it drives the drive gear 52 to rotate. The two driven gears 55 rotate in opposite directions. Since the two driven gears 55 mesh with the internal gear 51, the internal gear 51 rotates synchronously with the rotation direction of the two driven gears 55. The internal gear 51 is connected to the third connecting pipe 62 through the cooperation of the limiting rod 54 and the limiting block 53. When the internal gear 51 rotates, the third connecting pipe 62 rotates synchronously. At this time, the second connecting pipe 61 and the third connecting pipe 62 are in the opposite rotation state. Conversely, when the second connecting pipe 61 adjusts its rotation direction, the third connecting pipe 62 adjusts its rotation direction synchronously.

[0046] Both telescopic components 7 include a first square tube 71. One first square tube 71 is connected to the outer wall of the third connecting tube 62, and the other first square tube 71 is connected to the outer wall of the second connecting tube 61. A second square tube 72 is inserted inside the first square tube 71. The side of the second square tube 72 closest to the generator set 3 is connected to an air intake pipe 73. The outer wall of the air intake pipe 73 is evenly provided with first air holes 74, and the outer wall of the support tube 23 is evenly provided with second air holes 75. When the second connecting tube 61 and the third connecting tube 62 rotate, they respectively drive the corresponding first square tube 71 and air intake pipe 73 to rotate. The two air intake pipes 73 are displaced around the outside of the generator set 3, thereby absorbing the heat emitted by the generator set 3.

[0047] When the intake pipe 73 is moved above the generator set 3, the intake pipe 73 is affected by gravity and causes the second square pipe 72 to slide into the interior of the first square pipe 71, so that the intake pipe 73 is close to the generator set 3. The lengths of the two second square pipes 72 are not the same. Therefore, when the two intake pipes 73 overlap above the generator set 3, no collision will occur.

[0048] Since the first air holes 74 are evenly distributed on the intake pipe 73, the intake pipe 73 can not only absorb the heat around the generator set 3 when it is displaced, but also absorb the air in the surrounding environment.

[0049] When the generator set 3 is placed inside the support assembly 2, the second air hole 75 opened on the outer side wall of the support tube 23 absorbs the heat at the four side wall corners of the generator set 3, thereby ensuring the uniformity of heat dissipation of the generator set 3.

[0050] The suction assembly 8 includes a support frame 81, which is mounted on one side of a first connecting pipe 24. A suction pump 82 is mounted on one side of the support frame 81. The top air pipe of the suction pump 82 is connected to the first connecting pipe 24, and the bottom air pipe of the suction pump 82 is connected to the housing 1. The suction pump 82 is used to extract heat from the support pipe 23, the second connecting pipe 61, the third connecting pipe 62 and the suction pipe 73.

[0051] When the air inside the support tube 23 is extracted, a negative pressure is generated inside the support tube 23. External hot air enters the support tube 23 and the corresponding first connecting tube 24 through the second air hole 75. Some of the hot air will enter the second connecting tube 61 and the third connecting tube 62. The suction pump 82 can then extract the heat from the second connecting tube 61 and the third connecting tube 62.

[0052] When the air in the suction tube 73 is drawn out, a negative pressure is generated in the suction tube 73. The external air first enters the suction tube 73, the second square tube 72 and the first square tube 71 through the first air hole 74. The two first square tubes 71 are respectively connected to the second connecting tube 61 and the third connecting tube 62. Therefore, the air enters the second connecting tube 61 and the third connecting tube 62 through the two first square tubes 71 and is drawn out through the suction assembly 8.

[0053] The swing assembly 4 includes through slots 41, which are evenly arranged, and several through slots 41 are formed on the top of the generator set 3. Baffles 42 are rotatably connected inside the through slots 41, and connecting rods 43 are connected between the baffles 42. A connecting plate 44 is connected to the middle of the connecting rod 43, and a connecting block 45 is connected to one side of the connecting plate 44. The connecting block 45 is slidably connected to the top of the generator set 3, and first springs 46 are connected to both sides of the connecting block 45. The end of the first spring 46 away from the connecting block 45 is connected to the top of the generator set 3. When the internal gear 51 rotates, the limiting block 53 and the limiting rod 54 rotate synchronously, and the top of the connecting block 45 extends between the two limiting blocks 53. As the limiting block 53 rotates and moves, the connecting block 45 slides and moves on top of the generator set 3. The connecting block 45 drives the connecting plate 44 and the connecting rod 43 to move. The connecting rod 43 pulls several baffles 42 to swing in the corresponding through slots 41. This not only forms a ventilation opening on the top of the generator set 3, but also allows the heat inside the generator set 3 to be discharged through the through slots 41. The heat inside the generator set 3 can be provided with the power of flow by the swinging baffles 42, thereby accelerating the speed of heat flow. The connecting block 45 pulls or squeezes the two first springs 46 respectively. When a limiting block 53 slides past the connecting block 45, the connecting block 45 can be reset by the elastic force of the two first springs 46.

[0054] A bearing assembly 9 is installed on the top of the housing 1. The bearing assembly 9 includes a first base plate 91. The first base plate 91 is located between the housing 1 and the generator set 3. A sliding column is installed at the bottom of the first base plate 91. The sliding column passes through the interior of the sliding groove 12 and is connected to a first push plate 94. The first push plate 94 is slidably connected to the interior of the housing 1 and is sleeved on the outer wall of the bottom air pipe of the suction pump 82. A second spring 95 is connected between the first push plate 94 and the inner wall of the housing 1. Second through holes 92 are evenly opened on the top of the first base plate 91. The second through holes 92 are corresponding to the first through holes 11. A first bearing plate 93 is hinged to one side of the first base plate 91. The first base plate 91 is used to support the generator set 3.

[0055] Initial state as Figure 10 As shown, the second through hole 92 on the first substrate 91 is misaligned with the first through hole 11, which causes the housing 1 to be in a closed state, preventing dust and impurities from entering the housing 1 when it is idle, and isolating the inner cavity of the housing 1 from the external environment. The first support plate 93 is tilted downward.

[0056] When placing the generator set 3, simply lift one side and place it on the first support plate 93. By pushing the generator set 3, push it to the top of the housing 1 and lift the first support plate 93. When the first support plate 93 is tilted upward, it not only adjusts the position of the generator set 3, but also blocks the generator set 3.

[0057] At this time, the generator set 3 covers the second through hole 92. As air continuously enters the interior of the housing 1, the air inside the housing 1 continues to accumulate, and the air pressure increases. When the air inside the housing 1 reaches a certain amount, the first push plate 94 is displaced by the air pressure and squeezes the second spring 95. When the first push plate 94 is displaced, it drives the sliding column to slide inside the sliding groove 12. The sliding column drives the first base plate 91 to move, causing the first through hole 11 and the second through hole 92 to connect. The housing 1 is in an open state, and coolant is filled inside the housing 1. After the air entering the housing 1 exchanges heat with the coolant, it flows through the first through hole 11 and the second through hole 92 and comes into contact with the generator set 3. The cold air enters the interior from the opening at the bottom of the generator set 3 and is discharged from the through groove 41.

[0058] Specifically, in the initial state of the device, such as Figure 10 As shown, the second through hole 92 on the first substrate 91 is misaligned with the first through hole 11, causing the housing 1 to be in a closed state, the inner cavity of the housing 1 is isolated from the external environment, and the first support plate 93 is tilted downward.

[0059] The staff lifted one side of the generator set 3 and placed it on the first support plate 93. By pushing the generator set 3, they pushed it to the top of the housing 1 and lifted the first support plate 93. When the first support plate 93 tilted upward, it not only adjusted the position of the generator set 3, but also blocked the generator set 3. At this time, the generator set 3 covered the second through hole 92.

[0060] After the generator set 3 is placed, the slider 22 is pulled to slide on the top of the slide rail 21, so that the support tube 23 and the first connecting tube 24 can be adjusted according to the size of the generator set 3.

[0061] When adjusting the position of the first connecting pipe 24, the two first connecting pipes 24 respectively pull the second connecting pipe 61 and the third connecting pipe 62 to adjust their positions, causing the second connecting pipe 61 to slide inside the third connecting pipe 62, and the second connecting pipe 61 will not detach from the third connecting pipe 62;

[0062] The second connecting pipe 61 and the third connecting pipe 62 are respectively connected to an external driving device, which can be a motor, without specific limitation. The second connecting pipe 61 and the third connecting pipe 62 rotate in opposite directions. When the second connecting pipe 61 rotates, it drives the driving gear 52 to rotate. The driving gear 52 drives the two driven gears 55 to rotate in opposite directions. Since the two driven gears 55 mesh with the internal gear 51, the internal gear 51 rotates synchronously with the rotation direction of the two driven gears 55. The internal gear 51 is connected to the third connecting pipe 62 through the cooperation of the limiting rod 54 and the limiting block 53. The third connecting pipe 62 drives the internal gear 51 to rotate. At this time, the second connecting pipe 61 and the third connecting pipe 62 are in a state of opposite rotation.

[0063] When the third connecting pipe 62 rotates, the corresponding limiting block 53 rotates synchronously. The top of the connecting block 45 extends between the two limiting blocks 53. As the limiting blocks 53 rotate and move continuously, the connecting block 45 slides and moves on the top of the generator set 3. The connecting block 45 drives the connecting plate 44 and the connecting rod 43 to move. The connecting rod 43 pulls several baffles 42 to swing in the corresponding through slots 41. This not only forms a ventilation opening on the top of the generator set 3, but also allows the heat inside the generator set 3 to be discharged through the through slots 41. The heat inside the generator set 3 can be provided with the power of flow by the swinging baffles 42, thereby accelerating the speed of heat flow. The connecting block 45 pulls or squeezes the two first springs 46 respectively. When a limiting block 53 slides past the connecting block 45, the connecting block 45 can be reset by the elastic force of the two first springs 46.

[0064] When the second connecting pipe 61 and the third connecting pipe 62 rotate, they respectively drive the corresponding first square pipe 71 and the intake pipe 73 to rotate, and the two intake pipes 73 are displaced around the outside of the generator set 3.

[0065] When the intake pipe 73 moves above the generator set 3, the intake pipe 73 is affected by gravity and drives the second square pipe 72 to slide into the interior of the first square pipe 71, so that the intake pipe 73 is close to the generator set 3. The lengths of the two second square pipes 72 are not the same. Therefore, when the two intake pipes 73 overlap above the generator set 3, no collision will occur. The two intake pipes 73 surround the top and front and back of the generator set 3 and continuously switch.

[0066] The staff presses the switch to start the suction pump 82, and the suction pump 82 extracts heat from the support pipe 23, the second connecting pipe 61, the third connecting pipe 62 and the suction pipe 73;

[0067] When the air inside the support pipe 23 is extracted, a negative pressure is generated inside the support pipe 23. The second air hole 75 opened on the outer wall of the support pipe 23 absorbs the heat at the four corners of the side wall of the generator set 3, thereby ensuring the uniformity of heat dissipation of the generator set 3. External hot air enters the support pipe 23 and the corresponding first connecting pipe 24 through the second air hole 75. The hot air will enter the second connecting pipe 61 and the third connecting pipe 62. The suction pump 82 can suck out the heat in the second connecting pipe 61 and the third connecting pipe 62.

[0068] When the air in the suction tube 73 is drawn out, a negative pressure is generated in the suction tube 73. The external air first enters the suction tube 73, the second square tube 72 and the first square tube 71 through the first air hole 74. The two first square tubes 71 are respectively connected to the second connecting tube 61 and the third connecting tube 62. Therefore, the air enters the second connecting tube 61 and the third connecting tube 62 through the two first square tubes 71 and is drawn out through the suction assembly 8.

[0069] Since the first air holes 74 are evenly distributed on the intake pipe 73, the intake pipe 73 can not only absorb the heat around the generator set 3 when it is displaced, but also absorb the air in the surrounding environment.

[0070] The hot air absorbed by the intake component 8 is discharged into the interior of the housing 1. The air inside the housing 1 accumulates continuously, and the air pressure increases. When the air inside the housing 1 reaches a certain amount, the first push plate 94 is displaced by the air pressure and squeezes the second spring 95. When the first push plate 94 is displaced, it drives the sliding column to slide inside the sliding groove 12. The sliding column drives the first base plate 91 to move, causing the first through hole 11 and the second through hole 92 to connect. Coolant is filled into the interior of the housing 1. After the air entering the housing 1 exchanges heat with the coolant, it flows through the first through hole 11 and the second through hole 92 and comes into contact with the generator set 3. Cold air enters the interior from the opening at the bottom of the generator set 3 and is discharged through the through groove 41, which causes the cold air to cool the interior of the generator set 3, greatly improving the cooling effect of the generator set 3.

[0071] Example 2

[0072] Please see Figure 12-14 This embodiment is an improvement upon Embodiment 1, as follows:

[0073] A second support component 10 is installed on the top of the housing 1. The second support component 10 includes a second base plate 101. The second base plate 101 is located between the housing 1 and the generator set 3. A sliding column is installed at the bottom of the second base plate 101. The sliding column passes through the interior of the sliding groove 12 and is connected to a second push plate 106. The second push plate 106 is slidably connected to the interior of the housing 1 and is sleeved on the outer wall of the bottom air pipe of the suction pump 82. A third spring 105 is connected between the second push plate 106 and the inner wall of the housing 1. A third through hole 102 is evenly opened on the top of the second base plate 101. The third through hole 102 is corresponding to the first through hole 11. A frame 103 is hinged to one side of the second base plate 101. A second support plate 104 is slidably connected inside the frame 103.

[0074] Specifically, in the initial state of the device, such as Figure 13 As shown, the third through hole 102 on the second substrate 101 is misaligned with the first through hole 11, causing the housing 1 to be in a closed state, the frame 103 to tilt downward, and the second support plate 104 to be pulled out from the frame 103 and to be in a horizontal state in contact with the ground.

[0075] The staff simply places one side of the generator set 3 on the second support plate 104 without lifting it. By pushing the generator set 3, it is pushed to the top of the housing 1, and the second support plate 104 is retracted into the frame 103, thus covering the third through hole 102.

[0076] As air accumulates inside the housing 1, the air pressure increases. When the air inside the housing 1 reaches a certain amount, the second push plate 106 is displaced by the air pressure and squeezes the third spring 105. When the second push plate 106 is displaced, it drives the sliding column to slide inside the sliding groove 12. The sliding column drives the second base plate 101 to move, causing the first through hole 11 and the third through hole 102 to connect. Coolant is then filled into the housing 1. After the air entering the housing 1 exchanges heat with the coolant, it flows through the first through hole 11 and the third through hole 102 and comes into contact with the generator set 3. The cold air enters the interior from the opening at the bottom of the generator set 3 and is discharged through the through groove 41.

[0077] Obviously, the embodiments described above are merely some, not all, embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention.

[0078] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0079] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in sequences other than those illustrated or described herein.

[0080] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A generator set having a wrap-around heat dissipation function, comprising a housing (1), characterized in that: The top of the shell (1) is uniformly provided with a first through hole (11), the top of the shell (1) is provided with a chute (12), the chute (12) is located on one side of the first through hole (11), the top of the shell (1) is provided with a generator set (3) and a supporting assembly (2), the generator set (3) is located in the inside of the supporting assembly (2), the top of the generator set (3) is installed with a swing assembly (4), the top of the supporting assembly (2) is communicated and installed with a rotating assembly (6), the middle part of the rotating assembly (6) is sleeved and installed with a connecting assembly (5), both sides of the rotating assembly (6) are installed with two groups of telescopic assemblies (7), one side of the supporting assembly (2) is installed with an air suction assembly (8), and the air suction assembly (8) is communicated with the supporting assembly (2); The supporting assembly (2) comprises slide rails (21), the slide rails (21) are symmetrically arranged, two slide rails (21) are respectively installed on the top of the shell (1), and the top of each slide rail (21) is slidably connected with a sliding block (22); the top of the sliding block (22) is installed with a supporting pipe (23), and the two supporting pipes (23) are communicated with a first connecting pipe (24); The rotating assembly (6) comprises a second connecting pipe (61) and a third connecting pipe (62), the second connecting pipe (61) is communicated with one first connecting pipe (24), the third connecting pipe (62) is communicated with another first connecting pipe (24), and the second connecting pipe (61) and the third connecting pipe (62) are communicated at opposite ends; The connecting assembly (5) comprises a driving gear (52), the driving gear (52) is installed on the outer side wall of the second connecting pipe (61), the outer side wall of the driving gear (52) is sleeved with an internal gear (51), two driven gears (55) are engagedly connected between the inner wall of the internal gear (51) and the outer side wall of the driving gear (52), and the outer side wall of the internal gear (51) and the outer side wall of the driving gear (52) are uniformly installed with a limiting block (53); the inside of the limiting block (53) is inserted and connected with a limiting rod (54); Two telescopic assemblies (7) each comprise a first square pipe (71), one first square pipe (71) is communicated with the outer side wall of the third connecting pipe (62), and the other first square pipe (71) is communicated with the outer side wall of the second connecting pipe (61); the inside of the first square pipe (71) is inserted with a second square pipe (72), one side of the second square pipe (72) close to the generator set (3) is communicated with an air suction pipe (73), the outer side wall of the air suction pipe (73) is uniformly provided with a first air hole (74), and the outer side wall of the supporting pipe (23) is uniformly provided with a second air hole (75). The air suction assembly (8) comprises a support frame (81) mounted on one side of a first connecting pipe (24), one side of the support frame (81) is provided with a suction pump (82), the top air pipe of the suction pump (82) is communicated with a first connecting pipe (24), and the bottom air pipe of the suction pump (82) is communicated with the shell (1).

2. The generator set with the surrounding heat dissipation function according to claim 1, characterized in that: The swing assembly (4) comprises a through groove (41), the through grooves (41) are uniformly arranged, and a plurality of through grooves (41) are arranged on the top of the generator set (3), the inside of the through groove (41) is rotationally connected with a baffle (42), a connecting rod (43) is connected between a plurality of baffles (42), the middle of the connecting rod (43) is connected with a connecting plate (44), one side of the connecting plate (44) is connected with a connecting block (45), the connecting block (45) is slidingly connected to the top of the generator set (3), the two sides of the connecting block (45) are both connected with a first spring (46), and one end of the first spring (46) away from the connecting block (45) is connected to the top of the generator set (3).

3. The generator set with the surrounding heat dissipation function according to claim 2, characterized in that: The top of the shell (1) is provided with a bearing assembly one (9), the bearing assembly one (9) comprises a first base plate (91), the first base plate (91) is located between the shell (1) and the generator set (3), the bottom of the first base plate (91) is provided with a sliding column, the sliding column penetrates the inside of the sliding groove (12) and is connected with a first push plate (94), the first push plate (94) is slidingly connected to the inside of the shell (1), the first push plate (94) is sleeved on the outer side wall of the bottom air pipe of the suction pump (82), a second spring (95) is connected between the first push plate (94) and the inner wall of the shell (1), a second through hole (92) is uniformly arranged on the top of the first base plate (91), the second through hole (92) is arranged in correspondence with the first through hole (11), and a first bearing plate (93) is hinged to one side of the first base plate (91).

4. The generator set with the surrounding heat dissipation function according to claim 3, characterized in that: The top of the shell (1) is provided with a bearing assembly two (10), the bearing assembly two (10) comprises a second base plate (101), the second base plate (101) is located between the shell (1) and the generator set (3), the bottom of the second base plate (101) is provided with a sliding column, the sliding column penetrates the inside of the sliding groove (12) and is connected with a second push plate (106), the second push plate (106) is slidingly connected to the inside of the shell (1), the second push plate (106) is sleeved on the outer side wall of the bottom air pipe of the suction pump (82), a third spring (105) is connected between the second push plate (106) and the inner wall of the shell (1), a third through hole (102) is uniformly arranged on the top of the second base plate (101), the third through hole (102) is arranged in correspondence with the first through hole (11), and a frame body (103) is hinged to one side of the second base plate (101), the second bearing plate (104) is slidingly connected in the inside of the frame body (103).

Citation Information

Patent Citations

  • Explosion-proof diesel generating set

    CN217873014U