Wastewater evaporation device for thermal power plant
By designing a mobile support wheel, a synchronous deflection rod, a driving wheel, and a height and position adjustment mechanism, adaptive adjustment of the wastewater evaporation device in a thermal power plant is achieved, thereby improving the wastewater evaporation efficiency.
Patent Information
- Application Number
- CN202510660321.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-10-10
AI Technical Summary
In the prior art, the wastewater evaporation device of a thermal power plant cannot adaptively adjust the single evaporation amount, resulting in low evaporation efficiency.
A wastewater evaporation device for a thermal power plant is designed, which includes a mobile support wheel mechanism, a synchronous deflection rod mechanism, a drive wheel mechanism, a height adjustment mechanism, and a position adjustment mechanism. Through the coordinated use of these mechanisms, the position and height of the inner evaporation cylinder and the outer closed cylinder can be adjusted, and it can adapt to the evaporation treatment of wastewater in different positions and quantities.
The adaptability and efficiency of wastewater evaporation in thermal power plants are improved, and the evaporation amount can be adjusted according to needs to adapt to wastewater treatment in different locations and quantities.
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Figure CN120757174A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of wastewater evaporation, in particular to a waste water evaporation device for thermal power plants. BACKGROUND
[0002] The waste water of thermal power plants refers to various waste water generated in the process of thermal power generation, mainly including ash washing water, dust removal water, industrial wastewater, domestic sewage, acid and alkali waste liquid and condenser cooling water drainage, etc.
[0003] In the prior art, the waste water of thermal power plants is usually directly heated or evaporated at room temperature. However, the waste water generated by thermal power plants cannot be adaptively adjusted in the prior art, and the amount of single evaporation cannot be adaptively adjusted, so the efficiency of waste water evaporation of thermal power plants is low, and therefore there is a large room for improvement in the prior art. SUMMARY
[0004] The present application provides a waste water evaporation device for thermal power plants, which solves the problems raised in the background art.
[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme:
[0006] A waste water evaporation device for thermal power plants, comprising two fixed bottom plates, the bottom of the fixed bottom plate is provided with two mobile support wheel mechanisms, the inner side of the fixed bottom plate is provided with a clamping edge moving assembly, the clamping edge moving assembly comprises a synchronous deflection rod mechanism and a driving wheel mechanism, a height adjusting mechanism is arranged on the fixed bottom plate, the height adjusting mechanism is connected with a main moving frame, a position adjusting mechanism is arranged on the main moving frame, the bottom of the position adjusting mechanism is provided with an inner evaporation cylinder mechanism, and the inner evaporation cylinder mechanism is connected with an outer closed cylinder mechanism; the synchronous deflection rod mechanism is used to adjust the deflection state of the driving wheel mechanism, the driving wheel mechanism is used to drive the movement of the device, the height adjusting mechanism is used to adjust the height of the main moving frame, the position adjusting mechanism is used to adjust the position of the inner evaporation cylinder mechanism and the outer closed cylinder mechanism, and the inner evaporation cylinder mechanism is used to evaporate the waste water, and the outer closed cylinder mechanism can adjust the heating amount of the waste water.
[0007] As a preferred technical scheme of the present application, the mobile support wheel mechanism comprises a support deflection shaft rotatably connected with the fixed bottom plate, the end of the support deflection shaft away from the fixed bottom plate is fixedly connected with a support deflection wheel frame, and the support deflection wheel frame is rotatably connected with a deflection support wheel.
[0008] As a preferred technical solution of the present invention, the synchronous deflection rod mechanism includes a first mounting plate fixed to the side of the fixed base plate, and there are two first mounting plates. The two first mounting plates are symmetrically arranged on the fixed base plate, and the first mounting plate is rotatably connected to the first rotating shaft, and the first rotating shaft is rotatably connected to the deflection rod. The fixed base plate is located between the two first mounting plates and is fixedly connected to the linear motor, and the end of the linear motor is fixedly connected to the feed plate, and the side of the feed plate is fixedly connected to the first displacement seat, and the first displacement seat is rotatably connected to the deflection link, and the end of the deflection link away from the first displacement seat is rotatably connected to the second displacement seat, and the second displacement seat is fixed to the side of the deflection rod.
[0009] As a preferred technical solution of the present invention, the driving wheel mechanism includes a motor base fixed to the bottom of the fixed base plate, the motor base is provided with a first driving motor, the output shaft of the first driving motor is fixedly connected to the driving shaft, the driving shaft is coaxially fixedly connected to the first driving gear, the first driving gear meshes with two second driving gears, the two second driving gears are respectively arranged on both sides of the first driving gear, the second driving gear is coaxially fixedly connected to the second rotating shaft, the second rotating shaft and the deflection rod are rotatably connected, the second rotating shaft and the first rotating shaft are coaxially arranged, the second rotating shaft is rotatably connected to the second mounting plate, the second mounting plate is fixedly connected to the fixed base plate, the second rotating shaft is coaxially fixedly connected to the first driving bevel gear, the first driving bevel gear meshes with the second driving bevel gear, the second driving bevel gear is coaxially fixedly connected to the third rotating shaft, the third rotating shaft is rotatably connected to the third rotating shaft seat, the third rotating shaft seat is fixedly connected to the deflection rod, one end of the third rotating shaft away from the second driving bevel gear is fixedly connected to the third driving bevel gear, the third driving bevel gear meshes with the fourth driving bevel gear, the fourth drive bevel gear is coaxially fixedly connected to the fourth rotating shaft, the fourth rotating shaft and the deflection rod are rotatably connected, and one end of the fourth rotating shaft away from the deflection rod is fixedly connected to the moving wheel.
[0010] As a preferred technical solution of the present invention, the height adjustment mechanism includes an adjustment frame fixed on a fixed base plate, a second drive motor is provided on the adjustment frame, the output shaft of the second drive motor is fixedly connected to the lifting threaded rod, the lifting threaded rod and the adjustment frame are rotatably connected, the lifting threaded rod is threadedly connected to the lifting adjustment block, the lifting adjustment block and the adjustment frame are slidably connected, and the lifting adjustment block and the main movable frame are fixedly connected.
[0011] As a preferred technical solution of the present invention, the position adjustment mechanism includes a third drive motor arranged in the main moving frame, the output shaft of the third drive motor is fixedly connected to the adjustment threaded rod, the adjustment threaded rod and the main moving frame are rotatably connected, the adjustment threaded rod is threadedly connected to the position adjustment block, and the position adjustment block and the main moving frame are slidably connected.
[0012] As a preferred technical solution of the present invention, the inner evaporator mechanism includes an exhaust pipe fixedly connected to the position adjustment block, the position adjustment block is provided with an exhaust valve, the exhaust valve is connected to the exhaust pipe, the exhaust pipe is fixedly connected to the inner evaporator, the inner evaporator is provided with a side groove, the outer surface of the inner evaporator is provided with an insulation layer, and the inner bottom of the inner evaporator is provided with an electric heating plate.
[0013] As a preferred technical solution of the present invention, the outer closed cylinder mechanism includes a fourth drive motor fixed on the position adjustment block, the output shaft of the fourth drive motor is fixedly connected to the third drive gear, the third drive gear engages the fourth drive gear, the fourth drive gear is fixedly connected to the rotating sleeve, the rotating sleeve is rotatably connected to the position adjustment block and the exhaust pipe, the end of the rotating sleeve away from the position adjustment block is fixedly connected to the closed cylinder, the closed cylinder is located on the outside of the inner evaporating cylinder, the outer surface of the closed cylinder is provided with an insulation layer, a number of dial plates are provided on the side bottom of the closed cylinder, and a water inlet trough is provided on the closed cylinder, and the water inlet trough is a structure with a larger upper portion and a smaller lower portion.
[0014] As a preferred technical solution of the present invention, an atomizer is provided on the inner evaporating cylinder and the sealing cylinder.
[0015] The present invention has the following benefits:
[0016] The device can be supported by setting a movable support wheel mechanism, and can be contacted with the water tank by cooperating with the synchronous deflection rod mechanism. At the same time, it can be moved along the wall of the water tank under the action of the driving wheel mechanism. The height of the inner evaporator cylinder mechanism and the outer closed cylinder mechanism can be adjusted by the height adjustment mechanism, and the position of the inner evaporator cylinder mechanism and the outer closed cylinder mechanism can be adjusted by the position adjustment mechanism, so that wastewater at different positions can be evaporated. Different amounts of wastewater can be heated and evaporated by the inner evaporator cylinder mechanism and the outer closed cylinder mechanism, thereby increasing the adaptability of wastewater evaporation in thermal power plants. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the specific embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0018] Figure 1 This is a structural schematic diagram of a wastewater evaporation device in a thermal power plant from the first perspective.
[0019] Figure 2 This is a structural schematic diagram of a wastewater evaporation device in a thermal power plant from a second perspective.
[0020] Figure 3It is a third perspective view of the structure of a waste water evaporation device for a thermal power plant.
[0021] Figure 4 It is a first perspective view of the structure of a clamping edge moving assembly in a waste water evaporation device for a thermal power plant.
[0022] Figure 5 It is a second perspective view of the structure of a clamping edge moving assembly in a waste water evaporation device for a thermal power plant.
[0023] In the figure: 1, fixed bottom plate; 2, moving support wheel mechanism; 201, support deflection shaft; 202, support deflection wheel frame; 203, deflection support wheel; 3, synchronous deflection lever mechanism; 301, first mounting plate; 302, first rotation shaft; 303, deflection lever; 304, linear motor; 305, feeding plate; 306, first displacement seat; 307, deflection connecting rod; 308, second displacement seat; 4, drive wheel mechanism; 401, motor base; 402, first drive motor; 403, drive shaft; 404, first drive gear; 405, second drive gear; 406, second rotation shaft; 407, second mounting plate; 408, first drive bevel gear; 409, second drive bevel gear; 410, third rotation shaft; 411, third rotation shaft seat; 412, third drive bevel gear; 413, fourth drive bevel gear; 414, fourth rotation shaft; 415, moving wheel; 5, height adjustment mechanism; 501, adjusting frame; 502, second drive motor; 503, lifting threaded rod; 504, lifting adjusting block; 6, main moving frame; 7, position adjustment mechanism; 701, third drive motor; 702, adjusting threaded rod; 703, position adjusting block; 8, inner evaporation cylinder mechanism; 801, exhaust pipe; 802, inner evaporation cylinder; 803, side groove; 9, outer closed cylinder mechanism; 901, fourth drive motor; 902, third drive gear; 903, fourth drive gear; 904, rotating sleeve; 905, closed cylinder; 906, push plate; 907, water inlet groove. DETAILED DESCRIPTION
[0024] The preferred embodiments of the present application are described below in conjunction with the accompanying drawings, it should be understood that the preferred embodiments described here are only used to illustrate and explain the present application, and are not used to limit the present application.
[0025] Example 1, please refer to Figure 1-Figure 5, a wastewater evaporation device for a thermal power plant includes a fixed base plate 1, wherein the fixed base plate 1 is provided with two, and two movable supporting wheel mechanisms 2 are provided at the bottom of the fixed base plate 1. A card edge moving assembly is provided on the inner side edge of the fixed base plate 1, and the card edge moving assembly includes a synchronous deflection rod mechanism 3 and a driving wheel mechanism 4. A height adjustment mechanism 5 is provided on the fixed base plate 1, and the height adjustment mechanism 5 is connected to the main moving frame 6. The main moving frame 6 is provided with a position adjustment mechanism 7. An inner evaporation tube mechanism 8 is provided at the bottom of the position adjustment mechanism 7, and the inner evaporation tube mechanism 8 is connected to the outer sealing tube mechanism 9; the synchronous deflection rod mechanism 3 is used to adjust the deflection state of the driving wheel mechanism 4, and the driving wheel mechanism 4 is used to drive the device to move, the height adjustment mechanism 5 is used to adjust the height of the main moving frame 6, and the position adjustment mechanism 7 is used to adjust the position of the inner evaporation tube mechanism 8 and the outer sealing tube mechanism 9. The inner evaporation tube mechanism 8 is used to evaporate the wastewater, and can adjust the heating amount of the wastewater in cooperation with the outer sealing tube mechanism 9.
[0026] The movable support wheel mechanism 2 includes a support deflection shaft 201 rotatably connected to the fixed base plate 1 , one end of the support deflection shaft 201 away from the fixed base plate 1 is fixedly connected to a support deflection wheel frame 202 , and the support deflection wheel frame 202 is rotatably connected to a deflection support wheel 203 .
[0027] The height adjustment mechanism 5 includes an adjustment frame 501 fixed to the fixed base plate 1, and a second drive motor 502 is provided on the adjustment frame 501. The output shaft of the second drive motor 502 is fixedly connected to a lifting threaded rod 503, the lifting threaded rod 503 is rotatably connected to the adjustment frame 501, the lifting threaded rod 503 is threadedly connected to a lifting adjustment block 504, the lifting adjustment block 504 is slidably connected to the adjustment frame 501, and the lifting adjustment block 504 is fixedly connected to the main moving frame 6. The position adjustment mechanism 7 includes a third drive motor 701 provided in the main moving frame 6, the output shaft of the third drive motor 701 is fixedly connected to an adjustment threaded rod 702, the adjustment threaded rod 702 is rotatably connected to the main moving frame 6, the adjustment threaded rod 702 is threadedly connected to a position adjustment block 703, and the position adjustment block 703 is slidably connected to the main moving frame 6.
[0028] Specifically, the second drive motor 502 is turned on, and the output shaft of the second drive motor 502 rotates to drive the lifting threaded rod 503 to rotate, thereby driving the lifting adjustment block 504 to rise and fall along the axis direction of the lifting threaded rod 503, and further driving the main moving frame 6 to rise and fall.
[0029] In addition, turning on the third driving motor 701 can drive the adjusting threaded rod 702 to rotate, thereby driving the position adjustment block 703 to move and change position along the axis direction of the adjusting threaded rod 702 .
[0030] The inner evaporator tube mechanism 8 includes an exhaust pipe 801 fixedly connected to the position adjustment block 703, an exhaust valve is provided on the position adjustment block 703, the exhaust valve is connected to the exhaust pipe 801, the exhaust pipe 801 is fixedly connected to the inner evaporator tube 802, a side groove 803 is provided on the inner evaporator tube 802, an outer surface of the inner evaporator tube 802 is provided with an insulation layer, and an electric heating plate is provided on the inner bottom of the inner evaporator tube 802. The outer closed cylinder mechanism 9 includes a fourth drive motor 901 fixed on the position adjustment block 703, the output shaft of the fourth drive motor 901 is fixedly connected to the third drive gear 902, the third drive gear 902 engages the fourth drive gear 903, the fourth drive gear 903 is fixedly connected to the rotating sleeve 904, the rotating sleeve 904 is rotatably connected to the position adjustment block 703 and the exhaust pipe 801, and the end of the rotating sleeve 904 away from the position adjustment block 703 is fixedly connected to the closed cylinder 905, the closed cylinder 905 is located on the outside of the inner evaporating cylinder 802, the outer surface of the closed cylinder 905 is provided with a thermal insulation layer, and a plurality of dial plates 906 are provided on the side bottom of the closed cylinder 905, and a water inlet trough 907 is provided on the closed cylinder 905, and the water inlet trough 907 is a structure with a larger upper portion and a smaller lower portion.
[0031] Specifically, turning on the fourth drive motor 901 can drive the third drive gear 902 to rotate, and the rotation of the third drive gear 902 will drive the fourth drive gear 903 to rotate, thereby driving the rotating sleeve 904 to rotate, and the rotation of the rotating sleeve 904 will drive the closed cylinder 905 to rotate, thereby controlling the overlap state of the water inlet groove 907 and the side groove 803, thereby controlling the waste water entering the inner evaporation cylinder 802. At this time, further turning on the fourth drive motor 901 can drive the third drive gear 902 to rotate, and the rotation of the third drive gear 902 will drive the fourth drive gear 903 to rotate, thereby driving the rotating sleeve 904 to rotate, and the rotation of the rotating sleeve 904 will drive the closed cylinder 905 to rotate, and the side groove 803 is closed by the closed cylinder 905. At this time, turning on the electric heater can heat the waste water in the inner evaporation cylinder 802, and the heated water vapor is discharged through the exhaust pipe 801 and the exhaust valve, thereby realizing quantitative and partial evaporation of the waste water.
[0032] In addition, turning on the fourth drive motor 901 can drive the third drive gear 902 to rotate. The rotation of the third drive gear 902 will drive the fourth drive gear 903 to rotate, thereby driving the rotating sleeve 904 to rotate. The rotation of the rotating sleeve 904 will drive the closed cylinder 905 to rotate continuously. The rotation of the closed cylinder 905 will drive the dial plate 906 to rotate. The dial plate 906 can move the waste water in the water storage tank and at the same time turn on the electric heating plate in the inner evaporating cylinder 802, so that the waste water in the entire water storage tank is heated and evaporated.
[0033] The inner evaporation cylinder 802 and the sealing cylinder 905 are provided with atomizers.
[0034] Specifically, when the atomizer is turned on, the wastewater can be atomized and evaporated at high speed by the high-temperature flue gas, and the large-particle ash falls to accelerate the treatment of the wastewater.
[0035] Embodiment 2, continue to refer to Figure 1-Figure 5 In the embodiment of the present application, the synchronous deflection lever mechanism 3 comprises a first mounting plate 301 fixed to the side edge of the fixed base plate 1, and the first mounting plate 301 is provided with two first mounting plates 301 which are symmetrically arranged on the fixed base plate 1, the first mounting plate 301 is rotationally connected with a first rotating shaft 302, the first rotating shaft 302 is rotationally connected with a deflection lever 303, a linear motor 304 is fixedly connected between the two first mounting plates 301 on the fixed base plate 1, the linear motor 304 is fixedly connected with a feeding plate 305 at the end, the side edge of the feeding plate 305 is fixedly connected with a first displacement seat 306, the first displacement seat 306 is rotationally connected with a deflection connecting rod 307, one end of the deflection connecting rod 307 away from the first displacement seat 306 is rotationally connected with a second displacement seat 308, and the second displacement seat 308 is fixed to the side edge of the deflection lever 303. The driving wheel mechanism 4 comprises a motor seat 401 fixed to the bottom of the fixed base plate 1, the motor seat 401 is provided with a first driving motor 402, the output shaft of the first driving motor 402 is fixedly connected with a driving shaft 403, the driving shaft 403 is coaxially fixedly connected with a first driving gear 404, the first driving gear 404 is engaged with two second driving gears 405, the two second driving gears 405 are respectively arranged on the two sides of the first driving gear 404, the second driving gear 405 is coaxially fixedly connected with a second rotating shaft 406, the second rotating shaft 406 is rotationally connected with the deflection lever 303, the second rotating shaft 406 is coaxially arranged with the first rotating shaft 302, the second rotating shaft 406 is rotationally connected with a second mounting plate 407, the second mounting plate 407 is fixedly connected with the fixed base plate 1, the second rotating shaft 406 is coaxially fixedly connected with a first driving bevel gear 408, the first driving bevel gear 408 is engaged with a second driving bevel gear 409, the second driving bevel gear 409 is coaxially fixedly connected with a third rotating shaft 410, the third rotating shaft 410 is rotationally connected with a third rotating shaft seat 411, the third rotating shaft seat 411 is fixedly connected with the deflection lever 303, one end of the third rotating shaft 410 away from the second driving bevel gear 409 is fixedly connected with a third driving bevel gear 412, the third driving bevel gear 412 is engaged with a fourth driving bevel gear 413, the fourth driving bevel gear 413 is coaxially fixedly connected with a fourth rotating shaft 414, the fourth rotating shaft 414 is rotationally connected with the deflection lever 303, and the fourth rotating shaft 414 is fixedly connected with a moving wheel 415 at the end away from the deflection lever 303.
[0036] Specifically, the linear motor 304 is started to drive the feeding plate 305 to feed the displacement, and then drive the first displacement seat 306 to feed the displacement, so as to adjust the position of the deflection connecting rod 307, so that the deflection rod 303 rotates around the first rotating shaft 302, and then the moving wheel 415 is in contact with the outer wall of the water storage pool.
[0037] In addition, if the device needs to be moved, the first drive motor 402 is started, the output shaft of the first drive motor 402 rotates to drive the drive shaft 403 to rotate, the drive shaft 403 rotates to drive the first drive gear 404 to rotate, the first drive gear 404 rotates to drive the two second drive gears 405 to rotate, the second drive gears 405 rotate to drive the second rotating shaft 406 to rotate, the second rotating shaft 406 rotates to drive the first drive bevel gear 408 to rotate, the first drive bevel gear 408 rotates to drive the second drive bevel gear 409 to rotate, the second drive bevel gear 409 rotates to drive the third rotating shaft 410 to rotate, the third rotating shaft 410 rotates to drive the third drive bevel gear 412 to rotate, the third drive bevel gear 412 rotates to drive the fourth drive bevel gear 413 to rotate, the fourth drive bevel gear 413 rotates to drive the fourth rotating shaft 414 to rotate, the fourth rotating shaft 414 rotates to drive the moving wheel 415 to rotate, and the moving wheel 415 rotates to drive the device to move along the water storage pool. Since four moving wheels 415 are provided in the device, the device can not only move linearly along the side wall of the square water storage pool, but also move around the side wall of the circular water storage pool.
[0038] In the implementation process of the present application, first, the device is moved to the specified position by the moving support wheel mechanism 2, at this time, the synchronous deflection rod mechanism 3 is adjusted, the state of the drive wheel mechanism 4 is adjusted by the synchronous deflection rod mechanism 3, so that the drive wheel mechanism 4 is in contact with the outer wall of the water storage pool, at this time, the drive wheel mechanism 4 is started to drive the device to move along the outer wall of the water storage pool, which can also drive the inner evaporation cylinder mechanism 8 and the outer closed cylinder mechanism 9 to move to the position where the wastewater needs to be treated, at this time, the height adjustment mechanism 5 and the position adjustment mechanism 7 are started, which can adjust the inner evaporation cylinder mechanism 8 and the outer closed cylinder mechanism 9 to the specified height and position, at this time, the outer closed cylinder mechanism 9 is started to control the amount of wastewater entering the inner evaporation cylinder mechanism 8, at this time, the inner evaporation cylinder mechanism 8 is started to evaporate and treat the wastewater in the inner evaporation cylinder mechanism 8, and the outer closed cylinder mechanism 9 is directly started to continuously rotate, and the inner evaporation cylinder mechanism 8 is started to heat the wastewater in the water storage pool, and the outer closed cylinder mechanism 9 can uniformly heat the wastewater in the water storage pool.
[0039] The application can support the device by setting the mobile support wheel mechanism 2, can realize the contact with the water storage pool by setting the synchronous deflection rod mechanism 3, can realize the movement along the water storage pool wall under the action of the driving wheel mechanism 4, can adjust the height of the inner evaporation cylinder mechanism 8 and the outer closed cylinder mechanism 9 by the height adjusting mechanism 5, can adjust the position of the inner evaporation cylinder mechanism 8 and the outer closed cylinder mechanism 9 by the position adjusting mechanism 7, thereby evaporating and treating the wastewater at different positions, and can heat and evaporate the wastewater with different amounts by the inner evaporation cylinder mechanism 8 and the outer closed cylinder mechanism 9, thereby increasing the adaptability of the thermal power plant wastewater evaporation.
[0040] Finally, it should be noted that: the above only for the preferred embodiments of the application, and not for the purpose of limiting the application, although the application has been described in detail with reference to the foregoing embodiments, for those skilled in the art, it still can be modified to the technical solutions recorded in the foregoing embodiments, or equivalent replacement of some technical features. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the application shall be included in the protection scope of the application.
Claims
1. A wastewater evaporation device for a thermal power plant, comprising a fixed bottom plate, characterized in that: The fixed base plate is provided with two, and two movable supporting wheel mechanisms are provided at the bottom of the fixed base plate. The inner side edge of the fixed base plate is provided with a card edge moving assembly, and the card edge moving assembly includes a synchronous deflection rod mechanism and a driving wheel mechanism. A height adjustment mechanism is provided on the fixed base plate, and the height adjustment mechanism is connected to the main moving frame. A position adjustment mechanism is provided on the main moving frame. An inner evaporator tube mechanism is provided at the bottom of the position adjustment mechanism, and the inner evaporator tube mechanism is connected to the outer closed tube mechanism; the synchronous deflection rod mechanism is used to adjust the deflection state of the driving wheel mechanism, and the driving wheel mechanism is used to drive the device to move, the height adjustment mechanism is used to adjust the height of the main moving frame, and the position adjustment mechanism is used to adjust the position of the inner evaporator tube mechanism and the outer closed tube mechanism. The inner evaporator tube mechanism is used to evaporate the wastewater, and can adjust the heating amount of the wastewater in cooperation with the outer closed tube mechanism.
2. The thermal power plant wastewater evaporation device according to claim 1, characterized in that: The movable support wheel mechanism comprises a support deflection shaft rotatably connected to the fixed base plate, one end of the support deflection shaft away from the fixed base plate is fixedly connected to a support deflection wheel frame, and the support deflection wheel frame is rotatably connected to the deflection support wheel.
3. The thermal power plant wastewater evaporation device according to claim 1, characterized in that: The synchronous deflection rod mechanism includes a first mounting plate fixed to the side of the fixed base plate, and there are two first mounting plates, which are symmetrically arranged on the fixed base plate. The first mounting plate is rotatably connected to the first rotating shaft, and the first rotating shaft is rotatably connected to the deflection rod. The fixed base plate is fixedly connected to the linear motor between the two first mounting plates, and the end of the linear motor is fixedly connected to the feed plate. The side of the feed plate is fixedly connected to the first displacement seat, and the first displacement seat is rotatably connected to the deflection link. The end of the deflection link away from the first displacement seat is rotatably connected to the second displacement seat, and the second displacement seat is fixed to the side of the deflection rod.
4. The thermal power plant wastewater evaporation device according to claim 3, characterized in that: The driving wheel mechanism includes a motor base fixed to the bottom of the fixed base plate, the motor base is provided with a first driving motor, the output shaft of the first driving motor is fixedly connected to the driving shaft, the driving shaft is coaxially fixedly connected to the first driving gear, the first driving gear meshes with two second driving gears, the two second driving gears are respectively arranged on both sides of the first driving gear, the second driving gear is coaxially fixedly connected to the second rotating shaft, the second rotating shaft and the deflection rod are rotatably connected, the second rotating shaft and the first rotating shaft are coaxially arranged, the second rotating shaft is rotatably connected to the second mounting plate, the second mounting plate is fixedly connected to the fixed base plate, the second rotating shaft is coaxially fixedly connected to the first driving bevel gear, the first driving bevel gear meshes with the second driving bevel gear, the second driving bevel gear is coaxially fixedly connected to the third rotating shaft, the third rotating shaft is rotatably connected to the third rotating shaft seat, the third rotating shaft seat is fixedly connected to the deflection rod, an end of the third rotating shaft away from the second driving bevel gear is fixedly connected to the third driving bevel gear, the third driving bevel gear meshes with the fourth driving bevel gear, the fourth drive bevel gear is coaxially fixedly connected to the fourth rotating shaft, the fourth rotating shaft is rotatably connected to the deflection rod, and an end of the fourth rotating shaft away from the deflection rod is fixedly connected to the moving wheel.
5. The thermal power plant wastewater evaporation device according to claim 1, characterized in that: The height adjustment mechanism includes an adjustment frame fixed on a fixed base plate, a second drive motor is provided on the adjustment frame, an output shaft of the second drive motor is fixedly connected to a lifting threaded rod, the lifting threaded rod and the adjustment frame are rotatably connected, the lifting threaded rod is threadedly connected to a lifting adjustment block, the lifting adjustment block and the adjustment frame are slidably connected, and the lifting adjustment block and the main movable frame are fixedly connected.
6. The thermal power plant wastewater evaporation device according to claim 5, characterized in that: The position adjustment mechanism includes a third drive motor arranged in the main moving frame, the output shaft of the third drive motor is fixedly connected to the adjustment threaded rod, the adjustment threaded rod is rotatably connected to the main moving frame, the adjustment threaded rod is threadedly connected to the position adjustment block, and the position adjustment block is slidably connected to the main moving frame.
7. The thermal power plant wastewater evaporation device according to claim 6, characterized in that: The inner evaporator mechanism includes an exhaust pipe fixedly connected to the position adjustment block, an exhaust valve is provided on the position adjustment block, the exhaust valve is connected to the exhaust pipe, the exhaust pipe is fixedly connected to the inner evaporator, a side groove is provided on the inner evaporator, an insulation layer is provided on the outer surface of the inner evaporator, and an electric heating plate is provided on the inner bottom of the inner evaporator.
8. The thermal power plant wastewater evaporation device according to claim 7, characterized in that: The outer closed cylinder mechanism includes a fourth drive motor fixed on the position adjustment block, the output shaft of the fourth drive motor is fixedly connected to the third drive gear, the third drive gear engages the fourth drive gear, the fourth drive gear is fixedly connected to the rotating sleeve, the rotating sleeve is rotatably connected to the position adjustment block and the exhaust pipe, and the end of the rotating sleeve away from the position adjustment block is fixedly connected to the closed cylinder, the closed cylinder is located on the outside of the inner evaporating cylinder, the outer surface of the closed cylinder is provided with an insulation layer, a plurality of dial plates are provided on the side bottom of the closed cylinder, and a water inlet trough is provided on the closed cylinder, and the water inlet trough is a structure with a larger upper portion and a smaller lower portion.
9. The thermal power plant wastewater evaporation device according to claim 8, characterized in that: The inner evaporating cylinder and the sealing cylinder are provided with atomizers.