Pipeline coal slurry excess pressure energy recovery power generation system and method
By setting up a turbine power station after the coal slurry conveying station, the pressure energy of high-pressure coal slurry is converted into electrical energy, the problem of energy waste during the coal slurry conveying process is solved, energy recycling and reuse is realized, and the environmental protection of production is improved.
Patent Information
- Application Number
- CN202510114118.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-24
- Publication Date
- 2025-05-06
AI Technical Summary
Pipeline conveying coal slurry consumes and wastes a lot of energy during transportation and during pressure relief and dehydration.
By setting up a turbine power station after the coal slurry conveying station, the pressure energy of the high-pressure coal slurry is converted into mechanical energy, and the mechanical energy is converted into electrical energy through a transmission and generator, which is used to drive powerless tubular spiral filtration concentrates and coal chemical plants.
The recovery and reuse of residual pressure energy during coal slurry transportation is realized, energy waste is reduced, and energy saving, green and environmentally friendly production is improved.
Smart Images

Figure CN119933919A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of excess pressure energy utilization, and in particular relates to a pipeline coal slurry excess pressure energy recovery power generation system and method. Background Art
[0002] A pressure station is set up every 100 kilometers on the coal slurry pipeline. The pressure station pressurizes the coal slurry through slurry pumps, diaphragm pumps, buffer tanks and other facilities, and then transports it to the next pressure station through the pipeline. After arriving at the next pressure station, the coal slurry is pumped into the coal slurry storage tank. The coal slurry in the pipeline has a very high pressure, while the storage tank is at normal pressure. There is a lot of pressure energy between the high pressure of the coal slurry and the normal pressure of the storage tank, which is not fully utilized.
[0003] Since coal slurry needs to be pressurized when transported through pipelines, it is depressurized and stored after being transported to the site, and then various dehydrations are performed to reach a usable mass concentration of coal slurry or coal slime. However, there is a large amount of residual pressure energy that is not utilized during the depressurization process. During the dehydration process, it is necessary to pressurize or increase the speed of the coal slurry to achieve dehydration, and this process requires energy to be provided again. Therefore, a lot of energy is consumed and wasted. Summary of the invention
[0004] Based on the technical problems existing in the prior art, the present invention provides a pipeline coal slurry residual pressure energy recovery power generation system and a use method thereof, which solves the problem in the prior art that a large amount of energy is consumed and wasted during the transportation and pressure relief and dehydration processes of pipeline coal slurry. The present invention recovers and reuses the coal slurry residual pressure energy in the pipeline after the coal slurry transportation station, thereby solving the problem of energy waste.
[0005] According to a first aspect of the technical solution of the present invention, the present invention provides a pipeline coal slurry residual pressure energy recovery power generation system, which includes a turbine power station, a transmission, a generator, an unpowered tubular spiral filter concentrator and a coal chemical plant; The turbine power station is used to receive high-pressure coal slurry, which drives the impeller of the turbine power station to rotate, thereby converting part of the pressure energy into mechanical energy for the rotation of the impeller; The transmission is connected to the output shaft of the turbine power station. The speed of the output shaft is constant. Through the speed change adjustment of the transmission, the speed of the transmission output shaft meets the speed requirement of the hydraulic pump of the hydraulic station. Generators are used to convert mechanical energy into electrical energy; The unpowered tubular spiral filter concentrator dehydrates the coal slurry with a moisture content of 47% to reduce its moisture content to 30%; The coal chemical plant receives the low-moisture coal slurry output from the unpowered tubular spiral filter thickener and converts the coal slurry into other products through chemical means.
[0006] Preferably, the turbine power station includes a high-pressure coal slurry inlet, a low-pressure coal slurry outlet, a power station impeller, an impeller output shaft, and a lubrication system.
[0007] Preferably, the turbine power station is connected to a transmission, and the speed and torque are obtained through conversion by the transmission. The transmission is then connected to a generator set, and the generator set is used to generate electricity.
[0008] Preferably, the turbine power station is a single turbine power station. The lubrication system is used for lubricating the connecting shaft of the cooling turbine power station and the spiral shaft of the unpowered tubular spiral filter concentrator.
[0009] More preferably, the high-pressure coal slurry is transmitted to the turbine power station through a coal pipeline, and the output end of the turbine power station is connected to the input end of the unpowered tubular spiral filter concentrator.
[0010] Furthermore, the output end of the unpowered tubular spiral filter concentrator is connected to the input end of the coal chemical plant, and the output end of the turbine power station is connected to the input end of the transmission.
[0011] Furthermore, the output end of the unpowered tubular spiral filter concentrator is connected to the input end of the coal chemical plant, and the output end of the turbine power station is connected to the input end of the transmission.
[0012] Preferably, the high-pressure coal slurry inlet is connected to the high-pressure coal slurry delivery pipeline, and the coal slurry is directly introduced into the turbine power station, driving the single turbine impeller to rotate at high speed. The single turbine impeller is connected to the impeller output shaft, thereby driving the impeller output shaft to rotate at high speed, and the pressure energy is thereby converted into mechanical energy.
[0013] According to a second aspect of the technical solution of the present invention, the present invention provides a method for using a pipeline coal slurry residual pressure energy recovery power generation system, which comprises the following steps: Step A1: The high-pressure coal slurry is transported to the high-pressure coal slurry inlet of the turbine power station through a pipeline, and the turbine power station reduces the pressure of the high-pressure coal slurry to form a low-pressure coal slurry; Step A2: the low-pressure coal slurry formed in step W1 is discharged from the low-pressure coal slurry outlet of the turbine power station, and then enters the low-pressure pipeline and is transported to the unpowered tubular spiral filter concentrator; Step A3: The turbine power station reduces the pressure of the high-pressure coal slurry to form a pressure difference. The pressure difference acts on the single turbine impeller to rotate it. The single turbine impeller and the impeller output shaft are connected together, so the impeller output shaft rotates together and generates a certain torque and speed; Step A4: The impeller output shaft of the turbine power station is connected to the input shaft of the transmission, and the output shaft of the transmission is connected to the input shaft of the generator. After conversion by the transmission, a suitable speed is formed, thereby driving the generator to work normally; Step A5: The generator generates electricity, and the generated electric energy is transmitted to the unpowered tubular spiral filter concentrator for use; the driving motor of the unpowered tubular spiral filter concentrator, the electric energy generated by the generator can drive the motor to work, thereby driving the unpowered tubular spiral filter concentrator to work.
[0014] Compared with the prior art, the beneficial technical effects of the present invention are as follows: 1. The coal slurry of the present invention is pressurized by a pressure pump to increase the pressure of the coal slurry to about 13.0Mpa, and then transported to the next pressure station through a pipeline. The next pressure station receives the high-pressure coal slurry transported by the previous pressure station, first stores it in a coal slurry buffer tank, and then pressurizes it again by a pressure pump and transports it backward. Alternatively, a low-pressure pump is used to pump the coal slurry in the coal slurry buffer tank into a plate and frame filter press or a centrifuge for dehydration. The existing coal slurry transportation process does not recover the pressure of the coal slurry before entering the coal slurry buffer tank, forming a normal pressure coal slurry, resulting in a waste of coal slurry transportation pressure energy. The advantage of the present invention is to make full use of the pressure energy of the coal slurry, and convert it into applicable hydraulic energy, electrical energy, and compressed air energy through a turbine power station. And the converted energy is then transported to the back-end terminal equipment.
[0015] 2. The low-pressure coal slurry formed by the present invention then enters the coal slurry buffer tank; or the residual pressure energy is converted into hydraulic energy to drive an unpowered tubular spiral filter concentrator for dehydration and concentration, and the obtained low-pressure coal slurry is suitable for the needs of the unpowered tubular spiral filter concentrator; or the residual pressure energy is converted into electrical energy or compressed air energy and transported to dehydration equipment such as a plate and frame filter press and a centrifuge.
[0016] 3. The present invention fully recovers and utilizes the pressure of coal slurry transported by pipelines, and converts it into electric energy, compressed air energy, hydraulic energy, etc. required by the back-end terminal equipment, and the low-pressure coal slurry pressure discharged by turbine power is the coal slurry pressure required by the back-end equipment. Energy recovery and reuse are achieved, and energy-saving, green and environmentally friendly production is realized. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the process framework of the pipeline coal slurry residual pressure energy recovery power generation system according to the present invention; Figure 2 The invention relates to a pipeline coal slurry residual pressure energy recovery power generation system. Figure 1 Schematic diagram of the process route for power generation from residual pressure energy recovery of medium coal slurry; Figure 3-A It is a structural schematic diagram of a single turbine power station of a pipeline coal slurry residual pressure energy recovery power generation system according to the present invention; Figure 3-B The invention relates to a pipeline coal slurry residual pressure energy recovery power generation system. Figure 3-A Schematic diagram of the section at the middle DD; Figure 4The present invention provides a three-dimensional structural schematic diagram of a pipeline coal slurry residual pressure energy recovery wind making device and its process; Figure 5 The present invention provides a schematic diagram of the connection structure of a pipeline coal slurry residual pressure energy recovery wind making device and its process; Figure 6 The present invention proposes a pipeline coal slurry residual pressure energy recovery wind making equipment and process Figure 5 A partial structural diagram of Figure 7 The present invention proposes a pipeline coal slurry residual pressure energy recovery wind making equipment and process Figure 5 Schematic diagram of the local structure; Figure 8 A schematic diagram of the supporting structure of a pipeline coal slurry residual pressure energy recovery wind making device and its process is proposed for the present invention; Fig. 9 The present invention proposes a pipeline coal slurry residual pressure energy recovery wind making equipment and process Figure 8 Schematic diagram of the internal structure; Fig.10 The present invention provides a pipeline coal slurry residual pressure energy recovery wind making equipment and its process hoisting structure schematic diagram; Fig.11 The present invention proposes a pipeline coal slurry residual pressure energy recovery wind making equipment and process Fig.10 Enlarged view of point A.
[0018] Description of reference numerals in the accompanying drawings: 1. High-pressure coal slurry inlet; 2. Low-pressure coal slurry outlet; 3. Single turbine impeller; 4. Impeller output shaft; 5. Single turbine power station housing; 12. Transmission; 15. Turbine power station; 17. Unpowered tubular spiral filter concentrator; 19. Generator; 20. Motor; 31. Bracket; 32. Instrument panel; 33. Buffer tank; 34. Connector; 35. Connecting structure; 501. Connecting pipe; 502. Connecting piece; 503. Slip ring; 504. Round rod; 505. Extrusion rod; 506. Fixed ring; 507. Connecting ring; 508. Clamping rod; 509. Notch; 510. Inclined groove; 511. Sliding rod; 5 12. tension spring; 513. connecting rail; 514. limiting rod; 515. swivel; 516. turntable; 36. supporting structure; 601. fixing plate; 602. connecting groove; 603. adjusting rod; 604. supporting ring; 605. supporting rod; 606. round plate; 607. gasket; 608. spring; 609. connecting rod; 610. plug rod; 611. mounting rod; 37. lifting structure; 701. fixing rod; 702. sliding block; 703. block; 704. housing; 705. positioning rod; 706. top block; 707. round pad; 708. top spring; 709. auxiliary rod; 710. slide groove. DETAILED DESCRIPTION
[0019] In order to make the purpose, technical solution and advantages of the present invention clearer, the technical solution of the present invention will be clearly and completely described below in conjunction with the drawings of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0020] It should also be noted that, for ease of description, only the parts related to the invention are shown in the drawings. In the absence of conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other.
[0021] It should be noted that the concepts such as "first" and "second" mentioned in the present invention are only used to distinguish different devices, modules or units, and are not used to limit the order or interdependence of the functions performed by these devices, modules or units.
[0022] It should be noted that the modifications of "one" and "plurality" mentioned in the present invention are illustrative rather than restrictive, and those skilled in the art should understand that, unless otherwise clearly indicated in the context, it should be understood as "one or more".
[0023] The present invention discloses a pipeline coal slurry residual pressure energy recovery power generation system and method, the pipeline coal slurry residual pressure energy recovery power generation system includes a turbine power station, a transmission, a generator, a non-powered tubular spiral filter concentrator and a coal chemical plant, the system reduces the high-pressure coal slurry to low-pressure coal slurry through the turbine power station, the resulting pressure difference can be converted into mechanical energy by the turbine power station, and then transmitted to the transmission, the output shaft of the transmission is connected to the generator set, and the power generation function of the generator set is used to generate electricity. The present invention solves the problem that a large amount of energy is consumed and wasted during the transportation process and the pressure relief and dehydration process of pipeline coal slurry in the prior art solution. The present invention recovers and reuses the residual pressure energy of coal slurry in the pipeline after the coal slurry transportation station, solving the problem of energy waste.
[0024] Based on the first aspect of the present invention, a pipeline coal slurry residual pressure energy recovery power generation system is provided, which further comprises a turbine power station, a transmission, a generator, an unpowered tubular spiral filter thickener and a coal chemical plant. The high-pressure coal slurry is transmitted to the turbine power station through a coal pipeline, the output end of the turbine power station is connected to the input end of the unpowered tubular spiral filter thickener, the output end of the unpowered tubular spiral filter thickener is connected to the input end of the coal chemical plant, the output end of the turbine power station is connected to the input end of the transmission, the output end of the transmission is connected to the input end of the generator, and the output end of the generator is connected to the input end of the unpowered tubular spiral filter thickener.
[0025] The present invention designs a system for recovering and reusing residual pressure energy in the process of dissipating energy during pipeline transportation of coal slurry. The present invention can dissipate the residual pressure energy of coal slurry through a turbine power station to reduce the pressure, and the decompressed coal slurry is transported to subsequent process equipment. The subsequent process equipment can be an unpowered tubular spiral filter concentrator, a coal slurry storage tank, or various types of dehydration equipment. The low-pressure coal slurry after energy dissipation and decompression enters a coal slurry buffer tank for storage, or enters an unpowered tubular spiral filter concentrator to obtain coal slurry with low water content, or is driven into a dehydration device through other equipment to produce dry coal cakes or coal powder that meets the requirements.
[0026] The coal slurry is reduced from high pressure to low pressure through the turbine power station, and the resulting pressure difference can be converted into mechanical energy by the turbine power station. Then it is transmitted to the transmission, and the output shaft of the transmission is connected to the subsequent process equipment, which is the generator set, and the generator set is used to generate electricity.
[0027] The following is a further description of a pipeline coal slurry residual pressure energy recovery power generation system of the present invention in conjunction with the accompanying drawings. Figure 1 - As shown in FIG3 , the present invention provides a pipeline coal slurry residual pressure energy recovery power generation system, which includes a turbine power station, a transmission, a generator, an unpowered tubular spiral filter concentrator and a coal chemical plant.
[0028] The transmission is connected to the output shaft of the turbine power station. The speed of the output shaft is constant. Through the speed change adjustment of the transmission, the speed of the transmission output shaft meets the speed requirement of the hydraulic pump of the hydraulic station.
[0029] The turbine power station is used to receive high-pressure coal slurry, which drives the impeller of the turbine power station to rotate, thereby converting part of the pressure energy into mechanical energy for the impeller rotation. The coal slurry releases part of the pressure energy and becomes low-pressure coal slurry, which is then output from the low-pressure coal slurry outlet of the turbine power station.
[0030] The unpowered tubular spiral filter concentrator dehydrates the coal slurry with a moisture content of 47%, reducing its moisture content to 30%.
[0031] Generators are used to convert mechanical energy into electrical energy.
[0032] Coal chemical plant is a process that uses coal as raw material, converts coal into gas, liquid and solid products or semi-products through chemical processing, and then further processes them into chemical and energy products. Coal chemical plant receives low-water content coal slurry output by unpowered tubular spiral filter concentrator, and converts the coal slurry into other products through chemical means.
[0033] The transmission is connected to the output shaft of the turbine power station and the input shaft of the air compressor screw pump, and the transmission receives the speed signal of the output shaft of the turbine power station; the turbine power station is connected to the coal transportation pipeline, the transmission and the low-pressure coal slurry pipeline, and the turbine power station receives the pressure signal of the coal transportation pipeline; the generator is connected to the output shaft of the transmission, and the generator receives the rotation signal of the transmission; the unpowered tubular spiral filter concentrator is connected to the low-pressure coal slurry outlet of the turbine power station, and the unpowered tubular spiral filter concentrator receives the electric energy signal of the generator and also receives the low-pressure coal slurry signal output by the turbine power station; the coal chemical industry is connected to the concentrated coal slurry pipeline, and the coal chemical industry receives the concentrated slurry signal of the unpowered tubular spiral filter concentrator.
[0034] The high-pressure coal slurry transported by the upper pressure station through the coal pipeline is connected to the turbine power station through a pipeline, and the high-pressure coal slurry is converted into low-pressure coal slurry after the energy dissipation treatment of the turbine power station. The low-pressure coal slurry can be processed according to the original process. For example, the low-pressure coal slurry is introduced into the coal slurry buffer tank for storage, and then pumped from the buffer tank through the feed pump to the filter press or centrifuge for dehydration treatment to obtain a low-water content and directly use dry coal cake or dry coal powder. The low-pressure coal slurry can also directly enter the unpowered tubular spiral filter concentrator for dehydration and concentration to obtain a low-water content coal slurry that can be used directly. The energy dissipation of the turbine power station can be set in two stages or in a single stage. No matter how many stages of turbine power stations are set, the pressure requirements of the subsequent process equipment for the coal slurry need to be met. If the subsequent process of the present invention is an unpowered tubular spiral filter concentrator, a first-level turbine power station can be set to dissipate the coal slurry pressure from 13.0Mpa to 6.0Mpa.
[0035] The turbine power station is connected to the corresponding transmission, and the transmission is connected to the subsequent process equipment. In a preferred embodiment, the process equipment is a generator set. The high-pressure coal slurry drives the turbine of the turbine power station to rotate at high speed, thereby driving the transmission to rotate. After the transmission is changed, it outputs an available speed and torque, and then drives the generator set to work, using the generator set to generate electricity, and then drives other electrical equipment.
[0036] The turbine power station mainly includes the following parts: high-pressure coal slurry inlet, low-pressure coal slurry outlet, power station impeller, impeller output shaft, and lubrication system. The power station impeller can be a single turbine. Figure 3-A and Figure 3-BAs shown, the single turbine power station further includes a high-pressure coal slurry inlet 1, a low-pressure coal slurry outlet 2, a single turbine impeller 3, an impeller output shaft 4 and a single turbine power station housing 5. The high-pressure coal slurry inlet 1 is connected to the high-pressure coal slurry delivery pipeline, and the coal slurry is directly introduced into the turbine power station 15, driving the single turbine impeller 3 to rotate at high speed. The single turbine impeller 3 is connected to the impeller output shaft 4, thereby driving the impeller output shaft 4 to rotate at high speed, and the pressure energy is converted into mechanical energy. The high-speed rotating impeller output shaft 4 is connected to the transmission 12, and the speed and torque that can be used by subsequent process equipment can be converted through the speed conversion of the transmission 12. The output shaft of the transmission 12 can be connected to the hydraulic pump of the hydraulic station, the screw pump of the air compressor, or the generator. If the pressure pump of the hydraulic station is connected, hydraulic energy can be obtained to drive actuators such as hydraulic motors or hydraulic cylinders. If the screw pump of the air compressor is connected, compressed air can be generated. If the generator is connected, electrical energy can be obtained. The lubrication system mainly provides lubricating oil for the parts that need lubrication in the turbine power station or process system. In a preferred embodiment, the output shaft of the transmission 12 is connected to the screw pump of the air compressor, driving the screw pump of the air compressor to rotate, thereby producing compressed air. The obtained compressed air is transported to the compressed air buffer tank for storage, and then transported to other gas-using equipment. In a preferred embodiment, the compressed air stored in the compressed air buffer tank is transported to the unpowered tubular spiral filter concentrator. The lubrication system is mainly used for the lubrication of the connecting shaft of the cooling turbine power station and the lubrication of the spiral shaft of the unpowered tubular spiral filter concentrator. The lubrication system prevents the shaft from being worn due to friction between the shaft and the bearing.
[0037] According to the second aspect of the present invention, Figure 1 and Figure 2 As shown, a pipeline coal slurry residual pressure energy recovery and dehydration method is provided, which comprises the following steps: Step A1: Flow rate is 40m 3 / h, the high-pressure coal slurry with a pressure of 13.0Mpa is transported to the high-pressure coal slurry inlet 1 of the turbine power station 15 through a pipeline, and the turbine power station 15 reduces the pressure of the high-pressure coal slurry from 13.0Mpa to 6.0Mpa to form a low-pressure coal slurry.
[0038] Step A2: The low-pressure coal slurry formed in step W1 is discharged from the low-pressure coal slurry outlet 2 of the turbine power station, and then enters the low-pressure pipeline and is transported to the unpowered tubular spiral filter concentrator 17.
[0039] Step A3: The turbine power station reduces the pressure of the high-pressure coal slurry to form a pressure difference. The pressure difference acts on the single turbine impeller 3 to rotate it. The single turbine impeller 3 and the impeller output shaft 4 are connected together, so the impeller output shaft 4 rotates together and generates a certain torque and speed.
[0040] Therefore, the turbine power station will be 40m 3 / h, the high-pressure coal slurry with a pressure of 13.0Mpa is reduced to 6.0MPa, and the residual pressure can be converted into mechanical energy. The converted mechanical energy is theoretically calculated to be 103 kWh. The impeller output shaft 4 of the turbine power station 15 has a certain speed. The speed generated by the single turbine impeller 3 and the impeller output shaft 4 cannot directly drive the energy conversion power equipment.
[0041] Step A4: The impeller output shaft 4 of the turbine power station is connected to the input shaft of the transmission 12, and the output shaft of the transmission 12 is connected to the input shaft of the generator 19. After the conversion of the transmission 12, a suitable speed is formed, thereby driving the generator 19 to work normally.
[0042] Step A5: The generator 19 generates electricity, and the generated electric energy is transmitted to the unpowered tubular spiral filter concentrator 17 for use. The unpowered tubular spiral filter concentrator can be driven by the hydraulic motor 18 in the above dehydration process, or by the electric motor 20. If it is the electric motor 20, the electric energy generated by the generator 19 can drive the electric motor 20 to work, thereby driving the unpowered tubular spiral filter concentrator 17 to work. The low-pressure coal slurry transmitted is dehydrated, and the filtrate formed after dehydration is discharged. The dehydrated coal slurry forms a concentrated coal slurry, and the concentrated coal slurry is then transported to the coal chemical plant for reuse.
[0043] A pipeline coal slurry residual pressure energy recovery power generation system is connected to a pipeline coal slurry residual pressure energy recovery wind making equipment, such as Figure 4-11 As shown, the present invention provides a pipeline coal slurry residual pressure energy recovery wind making equipment and a process thereof, including a turbine power station, a transmission, an air compressor screw pump, an unpowered tubular spiral filter concentrator, a buffer tank 33 and a coal chemical industry, the turbine power station includes a high-pressure coal slurry inlet, a high-pressure coal slurry outlet, a single turbine impeller, an impeller output shaft and a single turbine power station housing 704, the lower end of the buffer tank 33 is fixedly connected to three brackets 31, the arc surface of the buffer tank 33 is installed with an instrument panel 32, and the arc surfaces on both sides of the buffer tank 33 are fixedly connected to Connector 34, the transmission is connected to the turbine power station, the transmission is connected to the air compressor screw pump, the air compressor screw pump is connected to the buffer tank 33, the buffer tank 33 is connected to the unpowered tubular spiral filter concentrator, the unpowered tubular spiral filter concentrator is connected to the turbine power station, the unpowered tubular spiral filter concentrator is connected to the coal chemical industry, the arc surface of the connector 34 is provided with a connecting structure 35, the arc surfaces on both sides of the buffer tank 33 are provided with supporting structures 36, and the upper end of the buffer tank 33 is provided with a lifting structure 37.
[0044] The transmission connects the output shaft of the turbine power station and the input shaft of the air compressor screw pump. The transmission receives the speed signal of the output shaft of the turbine power station; the turbine power station connects the coal pipeline, the transmission and the low-pressure coal slurry pipeline, or the turbine power station receives the pressure signal of the coal pipeline; the air compressor screw pump connects the transmission, or the air compressor screw pump receives the rotation speed signal of the output shaft of the transmission; the unpowered tubular spiral filter concentrator connects the low-pressure coal slurry pipeline, or the unpowered tubular spiral filter concentrator receives the pressure signal of the low-pressure coal slurry of the turbine power station; the coal chemical industry connects the concentrated coal slurry pipeline, or the coal chemical industry receives the concentrated slurry signal of the unpowered tubular spiral filter concentrator; the compressed air buffer tank 33 connects the air compressor screw pump and the air inlet interface of the unpowered tubular spiral filter concentrator, or the compressed air buffer tank 33 receives the compressed air signal delivered by the air compressor screw pump.
[0045] The specific configuration and functions of the connection structure 35 , the support structure 36 , and the hoisting structure 37 will be described in detail below.
[0046] like Figures 5 to 7As shown, the connection structure 35 includes a fixed ring 506, which is fixedly connected to the connecting member 34. The inner wall of the fixed ring 506 is slidably connected to a plurality of round rods 504, and one end of the round rod 504 away from the fixed ring 506 is fixedly connected to a slip ring 503. The arc surface of the fixed ring 506 is fixedly connected to a plurality of connecting rails 513, and the inner wall of the connecting rail 513 is slidably connected to a sliding rod 511, and one end of the sliding rod 511 away from the fixed ring 506 is fixedly connected to an extrusion rod 505, and the extrusion rod 505 is slidably connected to the fixed ring 506. The arc surface of the connecting member 34 is slidably connected to a connecting ring 507, and the arc surface of the connecting member 34 is fixedly connected to a rotating ring 515, and the arc surface of the rotating ring 515 is rotatably connected to a rotating disk 516, and the connecting ring 507 is close to the rotating disk A plurality of clamping rods 508 are fixedly connected to one side of 516, a plurality of notches 509 are provided on the side of the rotating disk 516 close to the clamping rod 508, a tension spring 512 is provided between the rotating ring 515 and the connecting ring 507, and the two ends of the tension spring 512 are fixedly connected to the rotating ring 515 and the connecting ring 507 respectively, a connecting piece 502 is slidably connected to the circular arc surface of the round rod 504, and a connecting tube 501 is fixedly connected to the side of the connecting piece 502 away from the connecting member 34, and a plurality of inclined grooves 510 are provided on the inner wall of the rotating disk 516, and the inclined grooves 510 are slidably connected to the sliding rod 511. When the connecting tube 501 and the connecting member 34 need to be connected, the connecting tube 501 is pulled to move, and the connecting tube 501 drives the connecting piece 502 to move, and the connecting tube 501 drives the sliding ring 503 moves, the slip ring 503 drives the round rod 504 to move, then the round rod 504 is aligned with the connecting piece 502 and the connecting piece 34, then the round rod 504 is inserted into the connecting piece 34 and the connecting piece 502, then the round rod 504 is inserted into the fixing ring 506, then the connecting ring 507 is pulled to move, the connecting ring 507 drives the clamping rod 508 to separate from the notch 509, the connecting ring 507 drives the tension spring 512 to stretch, then the turntable 516 is rotated to move, the turntable 516 drives the inclined slot 510 to move, the inclined slot 510 drives the sliding rod 511 to move, the sliding rod 511 slides on the inner wall of the connecting rail 513, the sliding rod 511 drives the extrusion rod 505 to move, and the extrusion rod 505 is on the fixing ring 506. The inner wall of the connecting rail 513 slides, and then the extrusion rod 505 squeezes and fixes the round rod 504, and then the connecting ring 507 is loosened and the tension spring 512 is contracted to drive the clamping rod 508 to be clamped into the groove 509 for fixation, thereby completing the connection between the connecting tube 501 and the connecting piece 34. The internal fixed connection of the connecting rail 513 is limited by the limiting rod 514, and the limiting rod 514 is slidably connected with the sliding rod 511. The limiting rod 514 can limit the sliding rod 511 to prevent the slider 702 from deviating when sliding on the inner wall of the connecting rail 513, thereby improving the sliding stability of the sliding rod 511. The cross-section of the round rod 504 is circular, and the round rod 504 is a stainless steel rod. The stainless steel material can increase the service life of the round rod 504 and prevent the round rod 504 from rusting during use.
[0047] The entire connection structure 35 can facilitate quick installation and connection between the connection piece 34 on the buffer tank 33 and the connecting pipe 501 , and can also improve efficiency when installing or removing the connecting pipe 501 .
[0048] like Figure 8 and Fig. 9 As shown, the support structure 36 includes a fixed plate 601, which is fixedly connected to the buffer tank 33. The inner wall of the fixed plate 601 is provided with two connection grooves 602. The inner wall of the connection groove 602 is rotatably connected with an adjusting rod 603. The inner wall of the adjusting rod 603 is slidably connected with a mounting rod 611. The upper end of the mounting rod 611 is fixedly connected with a circular plate 606. The lower end of the mounting rod 611 is fixedly connected with a gasket 607. The arc surface of the mounting rod 611 is movably connected with a connecting rod 609. The ends of the two connecting rods 609 that are close to each other are rotatably connected with a support rod 605. The support rod 605 The upper end is fixedly connected with a support ring 604, and the lower surface of the circular plate 606 is fixedly connected with a plurality of plug rods 610, and the plurality of plug rods 610 are slidably connected with the connecting rod 609 and the adjusting rod 603. The arc surface of the installation rod 611 is sleeved with a spring 608, and the two ends of the spring 608 are respectively fixedly connected with the gasket 607 and the adjusting rod 603. When it is necessary to support different positions of the connecting tube 501, the circular plate 606 is pulled to move, and the circular plate 606 drives the installation rod 611 to move, and the installation rod 611 moves inside the connecting rod 609 and the adjusting rod 603, and the installation The rod 611 drives the gasket 607 to move, the gasket 607 drives the spring 608 to contract, the disc drives the insertion rod 610 to move, and then the insertion rod 610 is separated from the connecting rod 609 and the adjusting rod 603, and then the support rod 605 is pulled to move, the support rod 605 drives the connecting rod 609 to move, the connecting rod 609 drives the adjusting rod 603 to move, and the adjusting rod 603 rotates on the inner wall of the connecting groove 602. After moving to the appropriate position, the insertion rod 610 is aligned with the adjusting rod 603 and the connecting rod 609, and then the gasket 607 and the spring 608 are released. 08 contracts to drive the insertion rod 610 to insert the fixing rod 701, and then the support rod 605 and the support ring 604 support the connecting tube 501. The cross-section of the mounting rod 611 is circular, and the mounting rod 611 is a stainless steel rod. The mounting rod 611 can limit the spring 608 to prevent the spring 608 from being deformed during use, thereby increasing the service life of the spring 608. The cross-section of the support ring 604 is circular, and the support ring 604 is a rubber ring. The rubber material can provide certain protection for the connecting tube 501 to avoid wear when the connecting tube 501 is supported and fixed.
[0049] The effect achieved by the entire support structure 36 is that it can conveniently support different positions of the connecting tube 501, thereby preventing the connecting tube 501 from falling due to its own weight and the weight of the fluid when in use.
[0050] like Fig.10 and Fig.11 As shown, the hoisting structure 37 includes a fixing rod 701, the fixing rod 701 is fixedly connected to the buffer tank 33, the upper end of the fixing rod 701 is fixedly connected to a positioning rod 705, the upper end of the positioning rod 705 is fixedly connected to a clamping block 703, the arc surface of the positioning rod 705 is slidably connected to a slider 702, the arc surface of the clamping block 703 is slidably connected to a shell 704, the inner wall of the shell 704 is provided with a plurality of slide grooves 710, the inner wall of the slide groove 710 is slidably connected to a top block 706, the top block 706 abuts against the clamping block 703, the interior of the slide groove 710 is provided with a top spring 708, the two ends of the top spring 708 are respectively connected to the top block 706 and the shell 704 The auxiliary rod 709 is fixedly connected to the side of the top block 706 away from the block 703, and the auxiliary rod 709 is slidably connected to the shell 704. The top spring 708 is sleeved on the arc surface of the auxiliary rod 709. When the buffer tank 33 needs to be hoisted and moved, the shell 704 connected to the hoisting device is pulled to move, and then the shell 704 is aligned with the block 703 and the slider 702, and then the shell 704 is sleeved on the block 703, and then the block 703 squeezes the top block 706, and the top block 706 slides on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to contract, and the top block 706 drives the auxiliary rod 709 slides on the inner wall of the shell 704, and after moving to the appropriate position, the top spring 708 is stretched to drive the top block 706 to abut and fix with the clamping block 703, so as to hoist the buffer tank 33. When it is necessary to separate the shell 704 from the clamping block 703, the shell 704 is further moved downward, and the shell 704 drives the top block 706 to move downward, and then the top block 706 abuts with the slider 702, and the slider 702 drives the top block 706 to slide on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to stretch. When it moves to the bottom of the slider 702, the top spring 708 stretches and drives the slider 70 2 abuts against the top block 706, and then moves the shell 704 upward, the top block 706 drives the slider 702 to slide on the arc surface of the positioning rod 705, when the slider 702 abuts and fixes with the clamping block 703, the top block 706 slides toward the inside of the slide groove 710, and then continues to pull the shell 704 upward to drive the top block 706 to separate from the slider 702 and the clamping block 703, and the end of the auxiliary rod 709 away from the top block 706 is fixedly connected with a round pad 707, which is a stainless steel pad. The round pad 707 can prevent the auxiliary rod 709 from falling off from the shell 704, thereby greatly improving the stability of the auxiliary rod 709.
[0051] The entire hoisting structure 37 has the effect of facilitating the hoisting of the buffer tank 33 and preventing the buffer tank 33 from being difficult to connect during hoisting.
[0052] S1. Transmission, describe the function or purpose of the transmission: the transmission is connected to the output shaft of the turbine power station. The speed of the output shaft is constant. Through the speed change adjustment of the transmission, the speed of the transmission output shaft meets the speed requirements of the hydraulic pump, generator or air compressor screw pump of the hydraulic station. Turbine power station, describe the function or purpose of the turbine power station: the turbine power station is used to receive high-pressure coal slurry, which drives the impeller of the turbine power station to rotate, thereby converting part of the pressure energy into the mechanical energy of the impeller rotation. After releasing part of the pressure energy, the coal slurry becomes low-pressure coal slurry, and then outputs from the low-pressure coal slurry outlet of the turbine power station. Air compressor screw pump, describe the function or purpose of the air compressor screw pump: the input shaft of the air compressor screw pump is connected to the output shaft of the transmission. It is used to convert the mechanical energy of rotation into the pressure energy of air and convert normal pressure air into high-pressure air. Unpowered tubular spiral filter concentrator, describe the function or purpose of the unpowered tubular spiral filter concentrator: it is mainly used to dehydrate coal slurry with a water content of 47% to reduce its water content to 30%. Compressed air buffer tank 33, describe the function or purpose of compressed air buffer tank 33: used to transport high-pressure compressed air produced by the air compressor screw pump to the compressed air buffer tank 33. Used for storage and standby. Coal chemical industry is the process of using coal as raw material, converting coal into gas, liquid and solid products or semi-products through chemical processing, and then further processing them into chemical and energy products. Describe the function or purpose of coal chemical industry: receive the low-water content coal slurry output by the unpowered tubular spiral filter concentrator, and convert the coal slurry into other products by chemical means.
[0053] S2. When the connecting tube 501 and the connecting piece 34 need to be connected, the connecting tube 501 is pulled to move, the connecting tube 501 drives the connecting piece 502 to move, the connecting tube 501 drives the slip ring 503 to move, the slip ring 503 drives the round rod 504 to move, and then the round rod 504 is aligned with the connecting piece 502 and the connecting piece 34, and then the round rod 504 is inserted into the connecting piece 34 and the connecting piece 502, and then the round rod 504 is inserted into the fixing ring 506, and then the connecting ring 507 is pulled to move, and the connecting ring 507 drives the clamping rod 508 to separate from the notch 509, and the connecting ring 507 is pulled to move. 07 drives the tension spring 512 to stretch, and then rotates the turntable 516 to move, the turntable 516 drives the inclined slot 510 to move, the inclined slot 510 drives the slide bar 511 to move, the slide bar 511 slides on the inner wall of the connecting rail 513, the slide bar 511 drives the extrusion rod 505 to move, the extrusion rod 505 slides on the inner wall of the fixing ring 506, and then the extrusion rod 505 squeezes and fixes the round rod 504, and then releases the connecting ring 507. The tension spring 512 shrinks and drives the clamping rod 508 to be clamped into the slot 509 for fixation, thereby completing the connection between the connecting tube 501 and the connecting piece 34.
[0054] S3. When it is necessary to support different positions of the connecting tube 501, pull the circular plate 606 to move, the circular plate 606 drives the mounting rod 611 to move, the mounting rod 611 moves inside the connecting rod 609 and the adjusting rod 603, the mounting rod 611 drives the gasket 607 to move, the gasket 607 drives the spring 608 to contract, the circular plate drives the insertion rod 610 to move, and then the insertion rod 610 is separated from the connecting rod 609 and the adjusting rod 603, and then the support is pulled. Rod 605 moves, support rod 605 drives connecting rod 609 to move, connecting rod 609 drives adjusting rod 603 to move, adjusting rod 603 rotates on the inner wall of connecting groove 602, and after moving to the appropriate position, the insertion rod 610 is aligned with adjusting rod 603 and connecting rod 609, and then gasket 607 is loosened and spring 608 is contracted to drive the insertion rod 610 to be inserted to fix rod 701, and then support rod 605 and support ring 604 support connecting tube 501.
[0055] S4. When the buffer tank 33 needs to be hoisted and moved, the shell 704 connected to the hoisting device is pulled to move, and then the shell 704 is aligned with the block 703 and the slider 702, and then the shell 704 is put on the block 703, and then the block 703 squeezes the top block 706, and the top block 706 slides on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to contract, and the top block 706 drives the auxiliary rod 709 to slide on the inner wall of the shell 704. After moving to the appropriate position, the top spring 708 is stretched to drive the top block 706 to abut and fix with the block 703, and then the buffer tank 33 is hoisted. When the shell 704 needs to be separated from the block 703, the shell 704 is further Continue to move downward, the shell 704 drives the top block 706 to move downward, and then the top block 706 abuts against the slider 702, the slider 702 drives the top block 706 to slide on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to stretch. When moving to the bottom of the slider 702, the top spring 708 stretches and drives the slider 702 to abut against the top block 706, and then the shell 704 is moved upward, the top block 706 drives the slider 702 to slide on the arc surface of the positioning rod 705, and when the slider 702 abuts and fixes with the card block 703, the top block 706 slides toward the inside of the slide groove 710, and then the shell 704 is pulled upward to drive the top block 706 to separate from the slider 702 and the card block 703.
[0056] The overall working principle is that the transmission connects the output shaft of the turbine power station and the input shaft of the air compressor screw pump. The transmission receives the speed signal of the output shaft of the turbine power station; the turbine power station connects the coal pipeline, the transmission and the low-pressure coal slurry pipeline, or the turbine power station receives the pressure signal of the coal pipeline; the air compressor screw pump connects the transmission, or the air compressor screw pump receives the rotation speed signal of the output shaft of the transmission; the unpowered tubular spiral filter concentrator connects the low-pressure coal slurry pipeline, or the unpowered tubular spiral filter concentrator receives the pressure signal of the low-pressure coal slurry of the turbine power station; the coal chemical industry connects the concentrated coal slurry pipeline, or the coal chemical industry receives the concentrated slurry signal of the unpowered tubular spiral filter concentrator; the compressed air buffer tank 33 connects the air compressor screw pump and the air inlet interface of the unpowered tubular spiral filter concentrator, or the compressed air buffer tank 33 receives the compressed air signal delivered by the air compressor screw pump.
[0057] When it is necessary to connect the connecting tube 501 and the connecting piece 34, pull the connecting tube 501 to move, the connecting tube 501 drives the connecting piece 502 to move, the connecting tube 501 drives the slip ring 503 to move, the slip ring 503 drives the round rod 504 to move, and then align the round rod 504 with the connecting piece 502 and the connecting piece 34, and then insert the round rod 504 into the connecting piece 34 and the connecting piece 502, and then insert the round rod 504 into the fixing ring 506, and then pull the connecting ring 507 to move, the connecting ring 507 drives the clamping rod 508 to separate from the notch 509, the connecting ring 507 drives the tension spring 512 to stretch, and then rotate the turntable 516 to move, the turntable 516 drives the inclined slot 510 to move, and the inclined slot 510 with The movable slide bar 511 moves, and the slide bar 511 slides on the inner wall of the connecting rail 513. The slide bar 511 drives the extrusion rod 505 to move, and the extrusion rod 505 slides on the inner wall of the fixing ring 506. Then the extrusion rod 505 squeezes and fixes the round rod 504, and then the connecting ring 507 is released. The tension spring 512 shrinks and drives the clamping rod 508 to be clamped into the groove 509 for fixation, thereby completing the connection between the connecting tube 501 and the connecting member 34. The limiting rod 514 can limit the slide bar 511 to prevent the slider 702 from deviating when sliding on the inner wall of the connecting rail 513, thereby improving the sliding stability of the slide bar 511. The stainless steel material can increase the service life of the round rod 504 and prevent the round rod 504 from rusting during use.
[0058] When it is necessary to support different positions of the connecting tube 501, the circular plate 606 is pulled to move, and the circular plate 606 drives the installation rod 611 to move, and the installation rod 611 moves inside the connecting rod 609 and the adjusting rod 603, and the installation rod 611 drives the gasket 607 to move, and the gasket 607 drives the spring 608 to contract, and the circular plate drives the insertion rod 610 to move, and then the insertion rod 610 is separated from the connecting rod 609 and the adjusting rod 603, and then the support rod 605 is pulled to move, and the support rod 605 drives the connecting rod 609 to move, and the connecting rod 609 drives the adjusting rod 603 to move, and the adjusting rod 603 is adjusted. The section rod 603 rotates on the inner wall of the connecting groove 602. After moving to the appropriate position, the insertion rod 610 is aligned with the adjustment rod 603 and the connecting rod 609. Then the gasket 607 is loosened and the spring 608 is contracted to drive the insertion rod 610 to be inserted into the fixing rod 701. Then the support rod 605 and the support ring 604 support the connecting tube 501. The installation rod 611 can limit the spring 608 to prevent the spring 608 from being deformed when it is used again, thereby increasing the service life of the spring 608. The rubber material can provide certain protection for the connecting tube 501 to prevent wear when the connecting tube 501 is supported and fixed.
[0059] When it is necessary to hoist and move the buffer tank 33, pull the shell 704 connected to the hoisting device to move, then align the shell 704 with the block 703 and the slider 702, then put the shell 704 on the block 703, and then the block 703 squeezes the top block 706, and the top block 706 slides on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to contract, and the top block 706 drives the auxiliary rod 709 to slide on the inner wall of the shell 704. After moving to the appropriate position, the top spring 708 is stretched to drive the top block 706 to abut and fix with the block 703, and then the buffer tank 33 is hoisted. When it is necessary to separate the shell 704 from the block 703, the shell 704 continues to move downward, and the shell 704 drives the top block 706 to move downward. When the outer shell 704 is moved upward, the top block 706 drives the slider 702 to slide on the inner wall of the slide groove 710, and the top block 706 drives the top spring 708 to stretch. When it moves to the bottom of the slider 702, the top spring 708 stretches to drive the slider 702 to abut against the top block 706, and then the outer shell 704 is moved upward. The top block 706 drives the slider 702 to slide on the arc surface of the positioning rod 705. When the slider 702 is abutted and fixed with the card block 703, the top block 706 slides toward the inside of the slide groove 710, and then the outer shell 704 is continued to be pulled upward to drive the top block 706 to separate from the slider 702 and the card block 703. The round pad 707 can prevent the auxiliary rod 709 from falling off from the outer shell 704, thereby greatly improving the stability of the auxiliary rod 709.
[0060] In summary, a system and method for recovering excess pressure energy of coal slurry for pipeline transportation is provided. The high-pressure coal slurry is converted into low-pressure coal slurry by turbine power, and the low-pressure coal slurry enters the terminal equipment at the rear end for dehydration or storage for standby use. The pressure difference of the coal slurry can be converted into mechanical energy by the turbine power station, and then adjusted to a suitable speed by the transmission to drive the energy conversion power device. Thus, the mechanical energy is converted into corresponding electrical energy. The obtained electrical energy is then delivered to the terminal equipment at the rear end. The high-pressure coal slurry is input into the turbine power station, and the high-pressure coal slurry is converted into low-pressure coal slurry by the action of the turbine power station, thereby forming pressure difference energy, which is converted into mechanical energy for the rotation of the output shaft by the turbine power station. The pressure of the low-pressure coal slurry after passing through the turbine power station can adapt to the required coal slurry pressure of the terminal equipment at the rear end to recover the excess pressure energy to the greatest extent. The rotational mechanical energy output by the turbine power station is adjusted to a suitable output speed by the transmission to drive the generator, and the electrical energy converted by the generator is then delivered to the terminal equipment at the rear end for use. The back-end terminal equipment can be coal slurry storage tanks, unpowered tubular spiral filter concentrators or other dehydration equipment, such as plate and frame filter presses, etc. The turbine power station converts the residual pressure energy into mechanical energy, which drives different equipment, such as hydraulic station hydraulic pumps, air compressor screw pumps or generators and other power equipment.
[0061] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A pipeline coal slurry residual pressure energy recovery power generation system, characterized in that: It includes a turbine power station, transmission, generator, unpowered tubular spiral filter thickener and coal chemical plant; The turbine power station is used to receive high-pressure coal slurry, which drives the impeller of the turbine power station to rotate, thereby converting part of the pressure energy into mechanical energy for the rotation of the impeller; The transmission is connected to the output shaft of the turbine power station. The speed of the output shaft is constant. Through the speed change adjustment of the transmission, the speed of the transmission output shaft meets the speed requirement of the hydraulic pump of the hydraulic station. Generators are used to convert mechanical energy into electrical energy; The unpowered tubular spiral filter concentrator dehydrates the coal slurry with a moisture content of 47% to reduce its moisture content to 30%; The coal chemical plant receives the low-moisture coal slurry output from the unpowered tubular spiral filter thickener and converts the slurry into other products through chemical means.
2. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 1 is characterized in that: The turbine power station includes a high-pressure coal slurry inlet, a low-pressure coal slurry outlet, a power station impeller, an impeller output shaft, and a lubrication system.
3. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 2 is characterized in that: The turbine power station is connected to the transmission, which converts the speed and torque to generate electricity. The transmission is then connected to the generator set, which generates electricity.
4. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 3 is characterized in that: The turbine power station is a single turbine power station.
5. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 1 is characterized in that: The lubrication system is used for lubrication of the connecting shaft of the cooling turbine power station and the spiral shaft of the unpowered tubular spiral filter concentrator.
6. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 1 is characterized in that: The high-pressure coal slurry is transmitted to the turbine power station through the coal pipeline, and the output end of the turbine power station is connected to the input end of the unpowered tubular spiral filter concentrator.
7. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 6 is characterized in that: The output end of the unpowered tubular spiral filter concentrator is connected to the input end of the coal chemical plant, and the output end of the turbine power station is connected to the input end of the transmission.
8. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 7 is characterized in that: The output end of the unpowered tubular spiral filter concentrator is connected to the input end of the coal chemical plant, and the output end of the turbine power station is connected to the input end of the transmission.
9. The pipeline coal slurry residual pressure energy recovery power generation system according to claim 1, characterized in that: The high-pressure coal slurry inlet is connected to the high-pressure coal slurry conveying pipeline, and the coal slurry is directly introduced into the turbine power station, driving the single turbine impeller to rotate at high speed. The single turbine impeller is connected to the impeller output shaft, thereby driving the impeller output shaft to rotate at high speed, and the pressure energy is converted into mechanical energy.
10. A method for using a pipeline coal slurry residual pressure energy recovery power generation system, characterized in that: It includes the following steps: Step A1: The high-pressure coal slurry is transported to the high-pressure coal slurry inlet of the turbine power station through a pipeline, and the turbine power station reduces the pressure of the high-pressure coal slurry to form a low-pressure coal slurry; Step A2: the low-pressure coal slurry formed in step W1 is discharged from the low-pressure coal slurry outlet of the turbine power station, and then enters the low-pressure pipeline and is transported to the unpowered tubular spiral filter concentrator; Step A3: The turbine power station reduces the pressure of the high-pressure coal slurry to form a pressure difference. The pressure difference acts on the single turbine impeller to rotate it. The single turbine impeller and the impeller output shaft are connected together, so the impeller output shaft rotates together and generates a certain torque and speed; Step A4: The impeller output shaft of the turbine power station is connected to the input shaft of the transmission, and the output shaft of the transmission is connected to the input shaft of the generator. After conversion by the transmission, a suitable speed is formed, thereby driving the generator to work normally; Step A5: The generator generates electricity, and the generated electric energy is transmitted to the unpowered tubular spiral filter concentrator for use; the driving motor of the unpowered tubular spiral filter concentrator, the electric energy generated by the generator can drive the motor to work, thereby driving the unpowered tubular spiral filter concentrator to work.