An efficient and energy-saving prefabricated energy station
By introducing fixed components and heat recovery components into prefabricated energy stations, the problems of cumbersome fixation and inconvenient heat recovery are solved, rapid assembly and efficient thermal energy utilization are achieved, and the convenience and energy saving effect of prefabricated energy stations are improved.
Patent Information
- Application Number
- CN202510553979.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2045-04-29
AI Technical Summary
The fixed installation of columns of existing prefabricated energy stations is cumbersome and is inconvenient for heat recovery, resulting in low assembly convenience and waste of resources.
Fixed components and heat recovery components are adopted to achieve rapid column fixation and heat recovery through structures such as positioning grooves, locking holes, double-headed screws and air pumps.
It improves the assembly convenience and flexibility of the energy station, reduces the trouble of bolt fixing, and improves the recycling rate of heat energy, achieving energy conservation and environmental protection.
Smart Images

Figure CN120061623B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy stations, and particularly to an energy-efficient prefabricated energy station. Background Art
[0002] An energy station is a professional energy platform for collecting, storing, transferring, and transmitting energy, with the aim of more efficiently utilizing energy. The structure of the energy station itself is simple, and during construction, multiple bolts and other fasteners are usually used for installation. The assembly construction takes a relatively long time, and a large amount of heat is generated during the operation of the prefabricated energy station. To reduce energy consumption and environmental pollution, heat recovery is generally required.
[0003] For example, an energy-efficient prefabricated energy station with the publication number CN217501211U includes a bottom plate. Columns are arranged at the four corners of the upper surface of the bottom plate. The top of the columns is provided with a top plate. Limiting grooves are respectively formed through the upper and lower surfaces of the top plate and the bottom plate. Limiting blocks are installed at the upper and lower ends of the columns. Through the cooperation of the limiting grooves and the limiting blocks, the preliminary limiting function between the columns, the top plate, and the bottom plate is achieved. The support function for the top plate and the bottom plate is realized through the fixing plate and the support plate, and in combination with the first connection hole and the second connection hole, the position fixing function for the top plate, the bottom plate, and the columns is achieved. In this way, the energy station can be built more quickly. However, this device needs to fixedly install the columns in sequence, the installation process is relatively cumbersome, and a large number of fasteners and the like are required, reducing the convenience of the assembly process. At the same time, it is not convenient to recycle the heat generated during the operation of the prefabricated energy station, resulting in waste of resources.
[0004] Therefore, an energy-efficient prefabricated energy station is proposed to solve the above-mentioned problems. Summary of the Invention
[0005] The purpose of the present invention is to provide an energy-efficient prefabricated energy station to solve the problems that this device needs to fixedly install the columns in sequence, the convenience of assembly is not high, and it is not convenient to recycle the heat generated during the operation of the prefabricated energy station.
[0006] To achieve the above purpose, the present invention provides the following technical solution: An energy-efficient prefabricated energy station, including an installation bottom plate and an air extractor. Installation ears are fixedly connected to the outer periphery of the installation bottom plate. Fixed columns are installed around the top of the installation bottom plate. The top of the fixed columns is connected to the same top plate;
[0007] It further includes:
[0008] Side baffles, slidably installed between adjacent fixed columns. A fixing component is arranged between the fixed columns in the same column. A heat recovery component is arranged on the top of the top plate;
[0009] The fixed component includes a positioning groove, a mounting hole and a locking hole. The positioning groove, the mounting hole and the locking hole are divided into upper and lower groups. The upper group is opened at the bottom of the top plate, and the lower group is opened at the top of the mounting base plate. Symmetrically fixed to the top and bottom of the fixed column are positioning blocks. In the middle of one side of the fixed column is fixedly connected a fixing plate, and vertically rotatably connected inside the fixing plate is a double-headed screw rod;
[0010] Symmetrically fixed to the top and bottom of the double-headed screw rod are insertion rods. Symmetrically sleeved outside the double-headed screw rod are moving sleeves, and the moving sleeves are in threaded connection with the double-headed screw rod. Fixed to one side of the outside of the moving sleeve is a locking rod, and fixed to the other side of the outside of the moving sleeve is a transverse block. Slidably connected inside the transverse block is a connecting rod;
[0011] Fixed to the outside of one side of the connecting rod close to the fixing plate is a mounting block. Rotatably connected inside the mounting block is a pressing rod. Fixed to one side of the transverse block close to the fixing plate is a vertical plate, and fixed to the outside of the vertical plate is a pushing rod. The pushing rods are arranged at intervals between adjacent pressing rods;
[0012] The heat recovery component includes a collection cover and a water tank. An air collection hole is opened inside the top plate.
[0013] Preferably, the positioning block is in snap fit with the positioning groove. Each group of the positioning grooves includes four symmetrically arranged ones. The mounting holes include four symmetrically arranged ones. A door body is hingedly installed at the lower part of the side baffle on one side of the front.
[0014] By adopting the above technical solution, synchronously rotating the rotating disks in the same column, the locking rod is inserted into the locking hole, and the pushing rod pushes the pressing rod to move, so that the pressing rod presses against the side baffle, and the fixing of the fixed column with the mounting base plate and the top plate is completed.
[0015] Preferably, a rotating disk is fixedly connected to the outside of the lower part of the double-headed screw rod. Friction lines are arranged on the outside of the rotating disk. The insertion rod is in plug-in connection and fixed with the mounting hole, and the insertion rod can rotate inside the mounting hole.
[0016] By adopting the above technical solution, the lower insertion rod will also be inserted into the mounting hole at the top of the mounting base plate, and the upper insertion rod is inserted into the mounting hole at the bottom of the top plate, and the installation of the four fixed columns is completed.
[0017] Preferably, there are no less than two locking rods. The number of the locking holes is the same as that of the locking rods, and the positions correspond one by one. A auxiliary spring is sleeved outside the side of the connecting rod away from the fixing plate. One end of the auxiliary spring is fixedly connected with the transverse block, and the other end of the auxiliary spring is fixedly connected with the end of the connecting rod.
[0018] By adopting the above technical solution, when the rotating disk drives the double-headed lead screw to rotate, the cross block slides on the connecting rod, the moving sleeve drives the locking rod to insert into the locking hole, and the moving sleeve drives the cross block to compress the auxiliary spring.
[0019] Preferably, the mounting blocks are evenly arranged up and down, there are no less than three mounting blocks, the number of the push rods is the same as that of the abutting rods, and the push rods are in contact with the abutting rods.
[0020] By adopting the above technical solution, the mounting block limits the abutting rod, so that the abutting rod will not rotate any more after rotating to the horizontal state.
[0021] Preferably, a threaded rod is fixedly connected to the outer side of one side of the fixing plate, a threaded sleeve is sleeved on the outer side of the threaded rod, the threaded sleeve is threadedly connected to the threaded rod, two threaded rods in the same column are fixed by the same threaded sleeve, a sliding groove is formed in the outer side of the fixed column, and the side baffle is slidably connected to the sliding groove.
[0022] By adopting the above technical solution, after the fixed column is installed, by screwing the threaded sleeve, the threaded sleeve sleeves the connection parts of the two threaded rods, thereby improving the support strength of the fixing plate.
[0023] Preferably, the collection cover and the water tank are both fixedly installed on the top of the top plate, the air extractor is also fixedly installed on the top plate, the water tank is located between the collection cover and the air extractor, the air collection holes are evenly arranged, and a curved pipe is fixedly installed inside the water tank.
[0024] By adopting the above technical solution, when the air extractor is started to work, the air extractor extracts air through the curved pipe, so that the hot air inside the energy station is extracted into the collection cover through the air collection holes and then flows into the curved pipe. At this time, the hot air transfers heat to the water body through the curved pipe.
[0025] Preferably, one end of the curved pipe passes through the water tank and is communicated with the collection cover, the other end of the curved pipe passes through the water tank and is communicated with the inlet end of the air extractor, a rotating rod is longitudinally rotatably connected inside the collection cover, there are no less than two rotating rods, a runoff fan blade is fixedly connected to the outer side of the rotating rod, and a stirring rod is fixedly connected to the rotating rod passing through the collection cover and the water tank.
[0026] By adopting the above technical solution, when the hot air passes through the air collection holes, it will also blow a plurality of runoff fan blades to rotate. The runoff fan blades drive the rotating rod to rotate, and the rotating rod drives the stirring rod to rotate, so as to facilitate the slow stirring of the water body inside the water tank.
[0027] Preferably, the number of the runoff fan blades is no less than three, the runoff fan blades are located directly above the air collection holes in the same column, the rotating rod is rotatably connected to the water tank, the stirring rod is located at the gap position of the curved pipe, and water outlet pipes are symmetrically and fixedly installed on one side of the water tank away from the collection cover.
[0028] By adopting the above technical solution, the rotation of the stirring rod facilitates the full contact and heat transfer between the water body and the curved pipe, improving the recovery and utilization rate of thermal energy.
[0029] Compared with the prior art, the beneficial effects of the present invention are as follows: There is a fixing component. The operator synchronously rotates the rotating disks in the same column, causing the two moving sleeves to move away from the fixing plate. The moving sleeves drive the locking rods to insert into the locking holes. Meanwhile, the cross block drives the vertical plate to move, the vertical plate drives the push rod to move, and the push rod drives the abutting rod to move, making the abutting rod abut against the side baffle. At this time, the locking rod is completely inserted into the locking hole, thus completing the fixation of the fixed column with the installation base plate and the top plate, and at the same time being able to tightly abut and fix the side baffle, improving the convenience and flexibility of the overall assembly of the energy station and reducing the trouble of a large number of bolt fixations.
[0030] 1. There is a fixing component. When assembling the energy station, first move the installation base plate to the installation position and fix it by bolts in cooperation with the installation ears. Then place the four fixed columns on the top of the installation base plate, so that the positioning blocks at the bottom of the fixed columns are inserted into the positioning grooves inside the installation base plate. At this time, the lower insertion rods will also be inserted into the installation holes on the top of the installation base plate to complete the installation of the four fixed columns. Then slide the side baffle up and down between adjacent fixed columns so that the side baffle is stuck in the sliding groove to complete the preliminary positioning of the side baffle. Finally, place the top plate on the top of the four fixed columns, so that the positioning blocks at the top of the fixed columns are inserted into the positioning grooves inside the top plate, and the upper insertion rods are inserted into the installation holes at the bottom of the top plate. The upper and lower connecting rods are respectively abutted against the top plate and the installation base plate. Then the operator synchronously rotates the rotating disks in the same column. The rotating disks drive the double-headed lead screw to rotate, and the cross block slides on the connecting rod, causing the two moving sleeves to move away from the fixing plate. The moving sleeves drive the locking rods to insert into the locking holes, and the moving sleeves drive the cross block to compress the auxiliary spring. Meanwhile, the cross block drives the vertical plate to move, the vertical plate drives the push rod to move, and the push rod drives the abutting rod to move, making the abutting rod rotate from an inclined state to a horizontal state, so that the abutting rod abuts against the side baffle. The limiting of the abutting rod by the installation block keeps the abutting rod from rotating after rotating to the horizontal state. At this time, the locking rod is completely inserted into the locking hole, thus completing the fixation of the fixed column with the installation base plate and the top plate, and at the same time being able to tightly abut and fix the side baffle, improving the convenience and flexibility of the overall assembly of the energy station and reducing the trouble of a large number of bolt fixations, solving the problems that the device needs to fix and install the columns sequentially, the assembly convenience is not high, and it is not convenient to recover and utilize the heat generated during the operation of the prefabricated energy station.
[0031] 2. A heat recovery component is provided. When a large amount of heat is generated during the operation of the energy station, the air extractor is started to work. The air extractor extracts air through a curved pipe, so that the hot air inside the energy station is extracted into the collection hood through the air collection holes, and then flows into the curved pipe. Water is injected into the water tank. At this time, the hot air transfers heat to the water body through the curved pipe, which is convenient for heat energy recovery, reduces energy waste, is more energy-saving and environmentally friendly. Moreover, when the hot air passes through the air collection holes, it will also blow multiple runoff fan blades to rotate. The runoff fan blades drive the rotating rod to rotate, and the rotating rod drives the stirring rod to rotate, which is convenient for slowly stirring the water body inside the water tank and facilitating the full contact heat transfer between the water body and the curved pipe, thereby improving the recovery utilization rate of heat energy. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 Schematic diagram of the three-dimensional overall structure of the present invention;
[0033] Figure 2 Exploded structure schematic diagram of the present invention;
[0034] Figure 3 For the present invention Figure 2 Enlarged structure schematic diagram at A in;
[0035] Figure 4 Schematic diagram of the sectional view of the top plate of the present invention;
[0036] Figure 5 For the present invention Figure 4 Enlarged structure schematic diagram at B in;
[0037] Figure 6 Schematic diagram of the side baffle installation structure of the present invention;
[0038] Figure 7 For the present invention Figure 6 Enlarged structure schematic diagram at C in;
[0039] Figure 8 Schematic diagram of the inclined state of the abutting rod of the present invention;
[0040] Figure 9 Schematic diagram of the sectional view of the collection hood and the water tank of the present invention;
[0041] Figure 10 For the present invention Figure 9 Enlarged structure schematic diagram at D in;
[0042] Figure 11 Schematic diagram of the curved pipe installation structure of the present invention.
[0043] In the figure: 1, mounting base plate; 2, mounting ear; 3, fixing column; 4, side baffle; 5, door body; 6, top plate; 7, fixing component; 71, positioning block; 72, positioning groove; 73, mounting hole; 74, locking hole; 75, fixing plate; 76, double-headed screw rod; 77, rotating disk; 78, inserting rod; 79, moving sleeve; 710, locking rod; 711, cross block; 712, connecting rod; 713, auxiliary spring; 714, mounting block; 715, pressing rod; 716, vertical plate; 717, pushing rod; 718, threaded rod; 719, threaded sleeve; 720, sliding groove; 8, heat recovery component; 81, collection cover; 82, water tank; 83, air collecting hole; 84, curved pipe; 85, rotating rod; 86, runoff fan blade; 87, stirring rod; 88, water outlet pipe; 9, air extractor. Detailed implementation manner
[0044] 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.
[0045] Please refer to Figures 1-11 , the present invention provides a technical solution: an energy-efficient prefabricated energy station, including a mounting base plate 1 and an air extractor 9. The outer periphery of the mounting base plate 1 is fixedly connected with mounting ears 2. The top periphery of the mounting base plate 1 is provided with fixing columns 3, and the tops of the fixing columns 3 are connected to the same top plate 6.
[0046] The side baffle 4 is slidably installed between adjacent fixing columns 3.
[0047] A fixing component 7 is arranged between the fixing columns 3 in the same column. The fixing component 7 includes a positioning groove 72, a mounting hole 73 and a locking hole 74. The positioning groove 72, the mounting hole 73 and the locking hole 74 are divided into upper and lower groups. The upper group is opened at the bottom of the top plate 6, and the lower group is opened at the top of the mounting base plate 1. The top and bottom of the fixing column 3 are symmetrically and fixedly connected with positioning blocks 71, and the middle part of one side of the fixing column 3 is fixedly connected with a fixing plate 75. A double-headed screw rod 76 is vertically rotatably connected inside the fixing plate 75.
[0048] The positioning block 71 is snap-fitted with the positioning groove 72. Each group of positioning grooves 72 includes four symmetrically arranged ones, and each group of mounting holes 73 includes four symmetrically arranged ones. The lower part of the side baffle 4 on the front side is hingedly installed with a door body 5.
[0049] At the top and bottom of the double-headed lead screw 76, insertion rods 78 are symmetrically and fixedly connected. On the outer side of the double-headed lead screw 76, moving sleeves 79 are symmetrically sleeved. The moving sleeves 79 are threadedly connected to the double-headed lead screw 76. On one external side of the moving sleeve 79, a locking rod 710 is fixedly connected. On the other external side of the moving sleeve 79, a cross block 711 is fixedly connected. Inside the cross block 711, a connecting rod 712 is slidably connected.
[0050] On the outer side of the lower part of the double-headed lead screw 76, a rotating disk 77 is fixedly connected. On the outer side of the rotating disk 77, friction lines are provided. The insertion rod 78 is inserted and fixed in the mounting hole 73, and the insertion rod 78 can rotate inside the mounting hole 73.
[0051] There are no less than two locking rods 710. The number of locking holes 74 is the same as that of the locking rods 710, and the positions correspond one by one. On the outer side of the side of the connecting rod 712 away from the fixed plate 75, an auxiliary spring 713 is sleeved. One end of the auxiliary spring 713 is fixedly connected to the cross block 711, and the other end of the auxiliary spring 713 is fixedly connected to the end of the connecting rod 712.
[0052] On the outer side of the side of the connecting rod 712 close to the fixed plate 75, a mounting block 714 is fixedly connected. Inside the mounting block 714, a pressing rod 715 is rotatably connected. On the side of the cross block 711 close to the fixed plate 75, a vertical plate 716 is fixedly connected. On the outer side of the vertical plate 716, a pushing rod 717 is fixedly connected. The pushing rods 717 are arranged at intervals between adjacent pressing rods 715.
[0053] The mounting blocks 714 are evenly arranged up and down. There are no less than three mounting blocks 714. The number of the pushing rods 717 is the same as that of the pressing rods 715, and the pushing rods 717 are in contact with the pressing rods 715.
[0054] On one external side of the fixed plate 75, a threaded rod 718 is fixedly connected. On the outer side of the threaded rod 718, a threaded sleeve 719 is sleeved. The threaded sleeve 719 is threadedly connected to the threaded rod 718. Two threaded rods 718 in the same column are fixed by the same threaded sleeve 719. On the outer side of the fixed column 3, a sliding groove 720 is opened. The side baffle 4 is slidably connected to the sliding groove 720.
[0055] Example 1: As Figures 1-8 shown, when assembling the energy station, first move the installation base plate 1 to the installation position and fix it through the installation ears 2 with bolts. Then, place the four fixed columns 3 on the top of the installation base plate 1, so that the positioning blocks 71 at the bottom ends of the fixed columns 3 are inserted into the positioning grooves 72 inside the installation base plate 1. At this time, the lower insertion rods 78 will also be inserted into the mounting holes 73 at the top of the installation base plate 1, completing the installation of the four fixed columns 3.
[0056] Next, slide the side baffle 4 up and down between adjacent fixed columns 3 so that the side baffle 4 is stuck in the sliding groove 720 to complete the preliminary positioning of the side baffle 4. Finally, place the top plate 6 on the tops of the four fixed columns 3 so that the positioning block 71 at the top of the fixed column 3 is inserted into the positioning groove 72 inside the top plate 6, and the upper insertion rod 78 is inserted into the mounting hole 73 at the bottom of the top plate 6. The upper and lower connecting rods 712 are respectively abutted tightly against the top plate 6 and the mounting bottom plate 1.
[0057] Next, the operator synchronously rotates the rotating disks 77 in the same column. The rotating disks 77 drive the double-headed lead screw 76 to rotate. The cross block 711 slides on the connecting rod 712, so that the two moving sleeves 79 move away from the fixed plate 75. The moving sleeve 79 drives the locking rod 710 to be inserted into the locking hole 74, and the moving sleeve 79 drives the cross block 711 to compress the auxiliary spring 713. The cross block 711 simultaneously drives the vertical plate 716 to move, the vertical plate 716 drives the push rod 717 to move, and the push rod 717 pushes the abutting rod 715 to move, so that the abutting rod 715 rotates from an inclined state to a horizontal state, so that the abutting rod 715 abuts tightly against the side baffle 4.
[0058] The installation block 714 limits the abutting rod 715 to keep the abutting rod 715 from rotating anymore after rotating to the horizontal state. At this time, the locking rod 710 is completely inserted into the locking hole 74, thus completing the fixation of the fixed column 3 with the mounting bottom plate 1 and the top plate 6, and at the same time being able to tightly abut and fix the side baffle 4, improving the convenience and flexibility of the overall assembly of the energy station, reducing the trouble of a large number of bolt fixations, and solving the problems that the device needs to fix and install the upright columns in sequence, the assembly convenience is not high, and it is not convenient to recycle the heat generated during the operation of the assembled energy station.
[0059] A heat recovery assembly 8 is provided on the top of the top plate 6. The heat recovery assembly 8 includes a collection cover 81 and a water tank 82. An air collection hole 83 is opened inside the top plate 6.
[0060] Both the collection cover 81 and the water tank 82 are fixedly installed on the top of the top plate 6. The air extractor 9 is also fixedly installed on the top plate 6. The model of the air extractor 9 can be selected as RAETTS70. The water tank 82 is located between the collection cover 81 and the air extractor 9. The air collection holes 83 are evenly opened. A curved pipe 84 is fixedly installed inside the water tank 82.
[0061] One end of the curved pipe 84 passes through the water tank 82 and is communicated with the collection cover 81. The other end of the curved pipe 84 passes through the water tank 82 and is communicated with the inlet end of the air extractor 9. A rotating rod 85 is longitudinally rotatably connected inside the collection cover 81. There are no less than two rotating rods 85. A runoff fan blade 86 is fixedly connected to the outer side of the rotating rod 85. The rotating rod 85 passes through the collection cover 81 and the water tank 82 and is fixedly connected with a stirring rod 87.
[0062] The number of the runoff fan blades 86 is not less than three. The runoff fan blades 86 are located directly above the same row of air collecting holes 83. The rotating rod 85 is rotatably connected to the water tank 82. The stirring rod 87 is located at the gap position of the curved pipe 84. On the side of the water tank 82 far away from the collecting cover 81, a water outlet pipe 88 is symmetrically and fixedly installed.
[0063] Embodiment 2: As Figures 9-11 shown, when a large amount of heat is generated during the operation of the energy station, the air extractor 9 is started. The air extractor 9 extracts air through the curved pipe 84, so that the hot air inside the energy station is extracted into the collecting cover 81 through the air collecting holes 83 and then flows into the curved pipe 84. Water is injected into the water tank 82. At this time, the hot air transfers heat to the water body through the curved pipe 84, thus facilitating heat energy recovery, reducing energy waste, being more energy-saving and environment-friendly. Moreover, when the hot air passes through the air collecting holes 83, it will also blow multiple runoff fan blades 86 to rotate. The runoff fan blades 86 drive the rotating rod 85 to rotate, and the rotating rod 85 drives the stirring rod 87 to rotate, thereby facilitating the slow stirring of the water body inside the water tank 82 and facilitating the full contact heat transfer between the water body and the curved pipe 84, thus improving the recovery and utilization rate of heat energy.
[0064] Working principle: When using this device, first, as Figures 1-11 shown, move the mounting base plate 1 to the installation position and fix it through bolts in cooperation with the mounting ears 2. Then place the four fixing columns 3 on the top of the mounting base plate 1. The positioning block 71 is inserted into the positioning groove 72, and the inserting rod 78 is inserted into the installation hole 73. Then slide the side baffle 4 up and down between the adjacent fixing columns 3. Finally, place the top plate 6 on the top of the four fixing columns 3. Then the operator synchronously rotates the rotating disks 77 in the same row, so that the two moving sleeves 79 move away from the fixing plate 75 relative to each other. The moving sleeves 79 drive the locking rods 710 to be inserted into the locking holes 74, and the pushing rod 717 pushes the abutting rod 715 to move, so that the abutting rod 715 rotates from an inclined state to a horizontal state, thereby enabling the abutting rod 715 to abut against the side baffle 4, improving the convenience and flexibility of the overall assembly of the energy station. When a large amount of heat is generated during the operation of the energy station, the air extractor 9 is started. The air extractor 9 extracts air through the curved pipe 84, so that the hot air inside the energy station is extracted into the collecting cover 81 through the air collecting holes 83 and then flows into the curved pipe 84. Water is injected into the water tank 82. At this time, the hot air transfers heat to the water body through the curved pipe 84. When the hot air passes through the air collecting holes 83, it will also blow multiple runoff fan blades 86 to rotate. The runoff fan blades 86 drive the rotating rod 85 to rotate, and the rotating rod 85 drives the stirring rod 87 to rotate, thereby facilitating the slow stirring of the water body inside the water tank 82 and facilitating the full contact heat transfer between the water body and the curved pipe 84.
[0065] The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0066] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An energy-efficient prefabricated energy station, comprising an installation base plate (1) and an air extractor (9). The outer periphery of the installation base plate (1) is fixedly connected with installation ears (2). The top periphery of the installation base plate (1) is provided with fixing columns (3). The tops of the fixing columns (3) are connected to the same top plate (6). It is characterized in that It further includes: Side baffles (4), slidably installed between adjacent fixing columns (3). A fixing component (7) is arranged between the fixing columns (3) in the same column. A heat recovery component (8) is arranged on the top of the top plate (6). The fixing component (7) includes a positioning groove (72), a mounting hole (73), and a locking hole (74). The positioning groove (72), the mounting hole (73), and the locking hole (74) are divided into upper and lower groups. The upper group is opened at the bottom of the top plate (6), and the lower group is opened at the top of the installation base plate (1). The top and bottom of the fixing column (3) are symmetrically and fixedly connected with positioning blocks (71). The middle of one side of the fixing column (3) is fixedly connected with a fixing plate (75). A double-headed lead screw (76) is vertically rotatably connected inside the fixing plate (75). The top and bottom of the double-headed lead screw (76) are symmetrically and fixedly connected with insertion rods (78). The outer side of the double-headed lead screw (76) is symmetrically sleeved with moving sleeves (79). The moving sleeves (79) are threadedly connected with the double-headed lead screw (76). One side of the outside of the moving sleeve (79) is fixedly connected with a locking rod (710). The other side of the outside of the moving sleeve (79) is fixedly connected with a cross block (711). A connecting rod (712) is slidably connected inside the cross block (711). One side of the outside of the connecting rod (712) close to the fixing plate (75) is fixedly connected with a mounting block (714). An abutting rod (715) is rotatably connected inside the mounting block (714). One side of the cross block (711) close to the fixing plate (75) is fixedly connected with a vertical plate (716). A push rod (717) is fixedly connected to the outside of the vertical plate (716). The push rods (717) are arranged at intervals between adjacent abutting rods (715). The heat recovery component (8) includes a collection cover (81) and a water tank (82). An air collection hole (83) is opened inside the top plate (6).
2. The high-efficiency and energy-saving prefabricated energy station according to claim 1, wherein: The positioning block (71) is snap-fitted with the positioning groove (72). Each group of positioning grooves (72) includes four symmetrically arranged ones. The mounting holes (73) include four symmetrically arranged ones. A door body (5) is hingedly installed at the lower part of the side baffle (4) on one side of the front.
3. An efficient energy-saving prefabricated energy station according to claim 2, characterized in that: The lower outer side of the double-headed lead screw (76) is fixedly connected with a rotating disc (77). The outer side of the rotating disc (77) is provided with friction lines. The insertion rod (78) is inserted and fixed in the mounting hole (73), and the insertion rod (78) can rotate inside the mounting hole (73).
4. An efficient energy-saving prefabricated energy station according to claim 1, characterized in that: There are at least two of the locking rods (710). The number of the locking holes (74) is the same as that of the locking rods (710), and their positions correspond one by one. An auxiliary spring (713) is sleeved outside one side of the connecting rod (712) far from the fixing plate (75). One end of the auxiliary spring (713) is fixedly connected to the cross block (711), and the other end of the auxiliary spring (713) is fixedly connected to the end of the connecting rod (712).
5. The high-efficiency energy-saving prefabricated energy station according to claim 3, characterized in that: The mounting blocks (714) are evenly arranged up and down. There are at least three of the mounting blocks (714). The number of the push rods (717) is the same as that of the pressing rods (715), and the push rods (717) are in contact with the pressing rods (715).
6. The high-efficiency energy-saving prefabricated energy station according to claim 1, characterized in that: One side of the outside of the fixing plate (75) is fixedly connected with a threaded rod (718). A threaded sleeve (719) is sleeved outside the threaded rod (718). The threaded sleeve (719) is threadedly connected to the threaded rod (718). Two of the threaded rods (718) in the same column are fixed by the same threaded sleeve (719). A sliding groove (720) is formed on the outside of the fixed column (3), and the side baffle (4) is slidably connected to the sliding groove (720).
7. An efficient energy-saving prefabricated energy station according to claim 1, characterized in that: The collection hood (81) and the water tank (82) are both fixedly installed on the top of the top plate (6). The air extractor (9) is also fixedly installed on the top plate (6). The water tank (82) is located between the collection hood (81) and the air extractor (9). The air collection holes (83) are evenly formed. A curved pipe (84) is fixedly installed inside the water tank (82).
8. An efficient energy-saving prefabricated energy station according to claim 7, characterized in that: One end of the curved pipe (84) passes through the water tank (82) and is communicated with the collection hood (81). The other end of the curved pipe (84) passes through the water tank (82) and is communicated with the inlet end of the air extractor (9). A rotating rod (85) is longitudinally rotatably connected inside the collection hood (81). There are at least two of the rotating rods (85). A runoff fan blade (86) is fixedly connected to the outside of the rotating rod (85). The rotating rod (85) passes through the collection hood (81) and the water tank (82) and is fixedly connected with a stirring rod (87).
9. The highly energy-efficient prefabricated energy station according to claim 8, characterized in that: The number of the runoff fan blades (86) is at least three. The runoff fan blades (86) are located directly above the air collection holes (83) in the same column. The rotating rod (85) is rotatably connected to the water tank (82). The stirring rod (87) is located at the gap position of the curved pipe (84). Water outlet pipes (88) are symmetrically and fixedly installed on one side of the water tank (82) far from the collection hood (81).
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Combined cooling and heating integrated mobile energy station
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Efficient energy-saving assembly type energy station
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