Closed heat pump drying system for slurry resource utilization
Through the extrusion strip and track conveying technology of the closed heat pump drying system, combined with wastewater waste heat recovery, the problem of low heat conduction efficiency of slurry waste in traditional drying equipment is solved, and efficient and low-energy consumption is achieved.
Patent Information
- Application Number
- CN202510613587.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2025-09-02
AI Technical Summary
When dealing with slurry waste, traditional drying equipment has problems such as low heat conduction efficiency, uneven heat reception, high energy consumption, and environmental pollution, making it difficult to achieve efficient resource utilization.
The closed heat pump drying system is adopted. Through the extrusion into strips and track transmission, the heat pump components are used to dry them, combined with the sewage water source heat pump system to recover waste heat, and a fully enclosed air duct structure is adopted.
It improves the drying efficiency of the slurry, reduces heat waste, reduces energy consumption, improves production efficiency, and realizes the efficient resource utilization of slurry resources.
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Figure CN120576550A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of industrial and agricultural waste treatment and resource utilization, and in particular to a closed heat pump drying system for slurry resource utilization. Background Art
[0002] Waste treatment and resource utilization in the industrial and agricultural sectors focus on the recycling of slurry waste and the application of environmentally friendly technologies. Efficiently recovering valuable components from waste through technologies like heat pump drying, while reducing resource waste and environmental pollution, has become a critical issue in industrial and agricultural production, providing an important path for a green and low-carbon transition.
[0003] In recent years, many industrial and agricultural processes have generated large amounts of slurry waste containing valuable components. Directly discharging this slurry waste not only wastes resources but also pollutes the environment. Combining slurry waste recycling with heat pump drying technology can recover valuable components from the slurry during the drying process.
[0004] The combination of waste slurry recycling and heat pump drying technology offers an innovative path toward achieving carbon neutrality in industry and agriculture. This type of waste is rich in valuable components, and its direct discharge wastes resources and pollutes the environment. Traditional drying technology has significant shortcomings: The equipment's heat conduction efficiency is low, and uneven heating of the slurry easily forms clumps that are dry on the outside and wet on the inside, resulting in low evaporation rates and low energy consumption. Equipment with fixed parameters struggles to adapt to varying slurry characteristics, and when faced with high viscosity and moisture content, the surface often becomes overly dry while internal moisture cannot precipitate. These issues directly impact drying effectiveness and subsequent resource extraction and utilization.
[0005] In traditional drying equipment, uneven heating is prone to occur during the slurry drying process. When the slurry particles are large or clumpy, the internal moisture is difficult to dissipate, and the surface is over-dry. The contact area between the slurry and the drying medium is relatively small, the heat transfer efficiency is low, and the drying time is long, which cannot meet the needs of large-scale, high-efficiency slurry processing. Traditional open desiccants have high energy consumption and direct discharge of large amounts of hot air, resulting in low thermal efficiency. Environmental pollution, the exhaust gas contains dust and volatile substances, and the drying efficiency depends on environmental conditions. Humidity and temperature affect the drying efficiency, and the equipment is prone to corrosion. High temperature and high humidity environments accelerate component aging, occupy a large area, and require supporting heating and dust removal systems. Operating costs are high, and fuel and electricity consumption are high.
[0006] Therefore, based on the above technical problems, technicians in this field urgently need to develop a closed heat pump drying system for slurry resource utilization. Summary of the Invention
[0007] The purpose of the present invention is to provide a closed heat pump drying system for slurry resource utilization. The system adopts a flexible feeding method and extrusion technology to dry and dehumidify the slurry in the form of strips and bundles, thereby realizing the control of feeding rate, slurry form and size. It adopts a variety of heating and drying forms and combines crawler transmission to dry the moving wet slurry material, thereby improving the drying efficiency and effect of the wet slurry material. It connects to the sewage water source heat pump system to recycle the waste heat of the sewage, reduce heat waste, and improve the utilization efficiency of the device.
[0008] In order to achieve the above object, the present invention provides the following technical solutions:
[0009] A closed heat pump drying system for slurry resource utilization of the present invention comprises:
[0010] A drying box body, wherein the drying box body has a crawler conveyor belt;
[0011] An extrusion box is provided at the upper end of the drying box and is in communication with the drying box, wherein a screw extruder is integrated inside the extrusion box, and the slurry material is extruded into a strip material by the screw extruder and transported into the drying box;
[0012] an air inlet and outlet assembly in communication with the drying box;
[0013] The system also includes:
[0014] heat pump components;
[0015] The air inlet and outlet components are divided into an air inlet component arranged at one end of the drying box body and an air outlet component arranged at the other end of the drying box body;
[0016] The air inlet assembly is provided with a condenser, and the refrigerant is condensed in the condenser to release heat and heat the air entering the air inlet assembly, and the strip material in the drying box is dried by the heated air;
[0017] The air inlet duct of the air inlet assembly is connected to the air outlet duct of the air outlet assembly through a connecting duct to form a closed pipeline.
[0018] Furthermore, a strip material feed port is provided at the upper end of the drying box, the extrusion box is arranged at the strip material feed port of the drying box, and an extrusion orifice plate is installed at the strip material feed port;
[0019] A motor is provided on the upper portion of the extrusion box, an output shaft of the motor passes through the extrusion box and extends into the interior of the extrusion box, and the output shaft of the motor is connected to the screw extruder;
[0020] A sewage orifice plate is provided on the upper portion of the interior of the extrusion box, and the space above the sewage orifice plate of the extrusion box is a sewage discharge space, and the sewage discharge space is connected to a sewage drain port;
[0021] The other side of the extrusion box is connected to a feed port, and the feed port is located below the sewage orifice plate.
[0022] Furthermore, the crawler conveyor belt inside the drying box is driven by a power wheel to move the crawler belt thereon to transport materials;
[0023] An air inlet opening is provided at the upper portion of one end of the drying box, and the air inlet assembly is connected to the drying box through the air inlet opening;
[0024] An air outlet opening is provided at the lower portion of the other end of the drying box, and the air outlet assembly is connected to the drying box through the air outlet opening;
[0025] A discharge port is provided at the lower portion of the drying box.
[0026] Furthermore, the air inlet assembly includes:
[0027] An air inlet duct, wherein an equalizing plate is installed between the air inlet duct and the air inlet opening;
[0028] A filter is installed at the air inlet of the air inlet duct, and a filter is also installed inside the air inlet duct; and
[0029] A condenser and a fan are arranged in the air inlet duct.
[0030] Furthermore, the air outlet assembly includes:
[0031] An air outlet duct, wherein the drying box body is provided with a folding plate near the air outlet opening;
[0032] An adsorption area is provided in the air outlet duct.
[0033] Furthermore, the heat pump assembly includes:
[0034] a compressor, a first heat exchanger, and a second heat exchanger, wherein the second heat exchanger is installed in the air outlet duct;
[0035] The outlet of the compressor is connected to the inlet of the condenser, the outlet of the condenser is connected to the inlet of the throttle valve through a pipeline, the outlet of the throttle valve is connected to the inlet of the first heat exchanger through a pipeline, and the outlet of the first heat exchanger is connected to the inlet of the compressor through a pipeline;
[0036] The water after heat exchange with the flue gas in the outlet duct through the second heat exchanger is connected to the water inlet of the first heat exchanger, and the water outlet of the first heat exchanger is connected to the water tank through a pump, and the water outlet of the water tank is connected to the water inlet of the second heat exchanger through a pipe.
[0037] Furthermore, the heat pump assembly includes:
[0038] generators and absorbers;
[0039] The steam outlet of the generator is connected to the inlet of the condenser. The outlet of the condenser is provided with a condenser drain. Hot water enters the generator through a pipe. The bottom of the generator is connected to a pump through a pipe, and the pump is connected to the spray device in the absorber through a pipeline.
[0040] The bottom of the absorber is connected to a pump through a pipeline, and the pump is connected to a spray device in the generator through a pipeline.
[0041] In the above technical solution, the present invention provides a closed heat pump drying system for slurry resource utilization, which has the following beneficial effects:
[0042] The heat pump drying system of the present invention adopts a flexible feeding method and extrusion technology to dry and dehumidify the slurry in the form of strips and bundles, thereby realizing the control of feeding rate, slurry form and size. It adopts various heating and drying forms and combines crawler transmission to dry the moving wet slurry material, thereby improving the drying efficiency and effect of the wet slurry material. It connects to the sewage water source heat pump system to recycle the waste heat of the sewage, reduce heat waste, and improve the utilization efficiency of the device.
[0043] The air duct of the present invention adopts a fully enclosed structure, which prevents the heat and odor in the box from overflowing through the air duct, reduces the loss of hot air energy, and improves production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0044] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments described in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.
[0045] Figure 1 This is a process flow chart of a first embodiment of a closed heat pump drying system for slurry resource utilization disclosed in an embodiment of the present application;
[0046] Figure 2 This is a process flow chart of a second embodiment of a closed heat pump drying system for slurry resource utilization disclosed in an example of this application.
[0047] Description of reference numerals:
[0048] 1. Drying box; 2. Extrusion box; 3. Motor; 4. Output shaft; 5. Screw extruder; 6. Sewage orifice plate; 7. Extrusion orifice plate; 8. Sewage drain outlet; 9. Feed inlet; 10. Power wheel; 11. Track; 12. Bracket; 13. Support device; 14. Folding plate; 15. Filter screen; 16. Filter screen; 17. Condenser; 18. Fan; 19. Equalizing plate; 20. Discharge outlet; 21. Adsorption zone; 22. Compressor; 23. Throttle valve; 24. Evaporator; 25. First heat exchanger; 26. Second heat exchanger; 27. Pump; 28. Water tank; 29. Water outlet; 30. Air inlet duct; 31. Air outlet duct; 32. Connecting pipe; 33. Generator; 34. Hot water; 35. Spraying device; 36. Absorber; 37. Condenser drain outlet. DETAILED DESCRIPTION
[0049] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0050] See also Figures 1 to 2 As shown;
[0051] This embodiment discloses a closed heat pump drying system for slurry resource utilization, which includes:
[0052] A drying box 1, wherein the drying box 1 has a crawler conveyor belt;
[0053] An extrusion box 2 is provided at the upper end of the drying box 1 and is in communication with the drying box 1. A screw extruder 5 is integrated inside the extrusion box 2. The slurry material is extruded into a strip material by the screw extruder 5 and is transported to the drying box 1.
[0054] An air inlet and outlet assembly connected to the drying box 1;
[0055] The system also includes:
[0056] heat pump components;
[0057] The air inlet and outlet components are divided into an air inlet component arranged at one end of the drying box 1 and an air outlet component arranged at the other end of the drying box 1;
[0058] A condenser 17 is provided in the air inlet assembly, and the refrigerant condenses in the condenser 17 to release heat and heat the air entering the air inlet assembly, and the heated air is used to dry the strip material in the drying box 1;
[0059] In addition, the air inlet duct 30 of the air inlet assembly and the air outlet duct 31 of the air outlet assembly of this embodiment are connected through the connecting duct 32 to form a closed pipeline.
[0060] Specifically, this embodiment discloses a closed heat pump drying system, which includes a drying chamber 1, an extrusion chamber 2 having a screw extruder 5, an air inlet assembly and an air outlet assembly respectively disposed at the air inlet and air outlet ends of the drying chamber 1, and a heat pump assembly of this embodiment. In this embodiment, the screw extruder 5 within the extrusion chamber 2 first extrudes the slurry into strips, which are then conveyed to a crawler conveyor within the drying chamber 1 and dried using hot air circulated by the air inlet and air outlet assemblies. After drying, the strips are discharged outside the drying chamber 1.
[0061] At the same time, the air inlet duct 30 and the air outlet duct 31 of the closed heat pump drying system of this embodiment are connected through the connecting duct 32 to form a closed pipeline.
[0062] Preferably, the upper end of the drying box 1 of this embodiment is provided with a strip material feed port, the extrusion box 2 is arranged at the strip material feed port of the drying box 1, and an extrusion orifice plate 7 is installed at the strip material feed port;
[0063] In this embodiment, a motor 3 is provided on the upper portion of the extrusion box 1. The output shaft 4 of the motor 3 passes through the extrusion box 2 and extends into the interior of the extrusion box 2. The output shaft 4 of the motor 3 is connected to a screw extruder 5.
[0064] A sewage orifice plate 6 is provided at the upper portion of the interior of the extrusion box 2, and the space above the sewage orifice plate 6 of the extrusion box 2 is a sewage discharge space, and the sewage discharge space is connected to a sewage drain port 8;
[0065] The other side of the extrusion box 2 is connected to a feed port 9 , which is located below the sewage orifice plate 6 .
[0066] First, this embodiment further defines the structure and principle of the extrusion box 2 and the screw extruder 5 within it. The extrusion box 2 is positioned at the upper end of the drying box 1 and communicates with the drying box 1 via an extrusion orifice 7. A motor 3 at the upper end of the extrusion box 2 drives the screw extruder 5 to extrude the slurry material through the extrusion orifice 7 into strips, which are then conveyed to the crawler conveyor of the drying box 1 for drying and transportation. A sewage orifice 6 is installed at the upper portion of the extrusion box 2 in this embodiment, and sewage is discharged to the outside through a sewage outlet 8.
[0067] Preferably, the crawler conveyor belt inside the drying box 1 of this embodiment drives the crawler belt 11 thereon to move through the power wheel 10 to transport materials;
[0068] An air inlet opening is provided at the upper portion of one end of the drying box body 1, and the air inlet assembly is connected to the drying box body 1 through the air inlet opening;
[0069] An air outlet opening is provided at the lower portion of the other end of the drying box body 1, and the air outlet assembly is connected to the drying box body 1 through the air outlet opening;
[0070] A discharge port 20 is provided at the lower portion of the drying box 1 .
[0071] The material enters the extrusion box 2 from the feed port 9, and the motor 3 drives the screw extruder 5 through the output shaft 4 to extrude the slurry material. Since the moisture content of the material is between 65% and 75%, a portion of the sewage is squeezed out by squeezing, and the sewage is collected through the sewage orifice plate 6 and then discharged through the sewage outlet 8. Due to the extrusion orifice plate 7 of the screw extruder 5, the slurry passes through multiple cylindrical holes and vertically enters the air-drying area of the drying box 1 in the form of strips and bundles. As the length of the slurry gradually increases, due to the influence of gravity, the slurry will fall onto the crawler 11 inside the drying box 1. After being collected by the crawler 11, the slurry is further dried on the crawler 11 until the slurry reaches the moisture content required for the product. In this embodiment, the air inlet end of the air outlet duct 31 is provided with a folding plate 14. Under the action of the folding plate 14, the strip material can be prevented from entering the air outlet duct 31. The slurry is then dried and discharged through the discharge port 20.
[0072] Based on the structure of the above-mentioned drying box 1, the air inlet assembly of this embodiment includes an air inlet duct 30, an equalizing plate 19 is installed between the air inlet duct 30 and the air inlet opening; a filter 15 is installed at the air inlet of the air inlet duct 30, and a filter 16 is also installed inside the air inlet duct 30; and a condenser 17 and a fan 18 are arranged in the air inlet duct 30.
[0073] Secondly, the air outlet assembly of this embodiment includes an air outlet duct 31 , and a folding plate 14 is provided near the air outlet opening of the drying box 1 ; an adsorption area 21 is provided in the air outlet duct 31 .
[0074] The external air is guided by the fan 3 of the air inlet duct 30 through the filter 15 to prevent large foreign objects from entering the air inlet duct 30. After the air enters the air inlet duct 30, it is filtered by the filter 16 to remove most of the particles. After the dust particles are removed, the air passes through the condenser 17. Due to the condensation of the refrigerant, a large amount of heat is released. Through the heat exchange of the condenser 17, a large amount of heat is transferred to the air, raising its temperature. After being guided by the fan 18, the air enters the drying box 1. The hot air passes through the wind plate 19 to form a uniform wind field. In the drying box 1, heat exchange is finally carried out on the strip material to dry its surface. Then the hot air continues to heat the slurry on its crawler 11 to dry it. After drying, the hot air is discharged through the air outlet duct 31 at the other end of the drying box 1. The air outlet duct 31 of this embodiment is provided with an adsorption area 21 to remove odor in the hot air.
[0075] See also Figure 1 As shown, Example 1:
[0076] As a first embodiment of the heat pump assembly of the present application: the heat pump assembly of the first embodiment includes a compressor 22, a first heat exchanger 25, and a second heat exchanger 26, and the second heat exchanger 26 is installed in the air outlet duct 31;
[0077] The outlet of the compressor 22 is connected to the inlet of the condenser 17, the outlet of the condenser 17 is connected to the inlet of the throttle valve 23 through a pipeline, the outlet of the throttle valve 23 is connected to the inlet of the first heat exchanger 25 through a pipeline, and the outlet of the first heat exchanger 25 is connected to the inlet of the compressor 22 through a pipeline;
[0078] The water after heat exchange with the flue gas in the outlet duct 31 through the second heat exchanger 26 is connected to the water inlet of the first heat exchanger 25, and the water outlet of the first heat exchanger 25 is connected to the water tank 28 through the pump 27, and the water outlet of the water tank 28 is connected to the water inlet of the second heat exchanger 26 through a pipe.
[0079] In the first embodiment of the present invention, the compressor 22 compresses the gaseous refrigerant into a high-temperature and high-pressure state. In the condenser 17, the high-temperature and high-pressure gas releases heat to the air in the air inlet duct 30 and condenses into a liquid state. The throttle valve 23 reduces the pressure and temperature of the liquid refrigerant. In the first heat exchanger 25, the low-temperature and low-pressure liquid refrigerant absorbs the heat from the water in the second heat exchanger 26 and evaporates into a gaseous state, so that the gaseous refrigerant re-enters the compressor 22 to complete the cycle. The cold water passing through the first heat exchanger 25 enters the water tank 28 for storage through the pump 27, and the pump 27 pumps the cold water in its water tank 28 into the second heat exchanger 26.
[0080] See also Figure 2 As shown, Example 2:
[0081] As a second embodiment of the heat pump assembly of the present application: the heat pump assembly of this embodiment 2 includes a generator 33 and an absorber 36; wherein the steam outlet of the generator 33 is connected to the inlet of the condenser 17, and the outlet of the condenser 17 is provided with a condenser drain 37, hot water 34 enters the generator 33 through a pipe, the bottom of the generator 33 is connected to the pump 27 through a pipe, and the pump is connected to the spray device 35 in the absorber 36 through a pipeline;
[0082] The bottom of the absorber 36 is connected to the pump 27 through a pipeline, and the pump 27 is connected to the spray device 35 in the generator 33 through a pipeline.
[0083] In the second embodiment, hot water is connected to the generator 33 through a pipe to heat the dilute lithium bromide solution. The high-temperature steam generated is connected to the condenser 17 through a pipe. The waste water generated by the condenser 17 is discharged through the condenser drain 37. In the generator 33, the concentrated lithium bromide solution generated is directly pumped into the spray device 35 in the absorber 36 by the pump 27. In the absorber 36, the concentrated lithium bromide solution absorbs moisture in the hot air, so that the concentrated lithium bromide solution is converted into a dilute lithium bromide solution, and is pumped into the spray device 35 by the pump.
[0084] In the above technical solution, the present invention provides a closed heat pump drying system for slurry resource utilization, which has the following beneficial effects:
[0085] The heat pump drying system of the present invention adopts a flexible feeding method and extrusion technology to dry and dehumidify the slurry in the form of strips and bundles, thereby realizing the control of feeding rate, slurry form and size. It adopts various heating and drying forms and combines crawler transmission to dry the moving wet slurry material, thereby improving the drying efficiency and effect of the wet slurry material. It connects to the sewage water source heat pump system to recycle the waste heat of the sewage, reduce heat waste, and improve the utilization efficiency of the device.
[0086] The air duct of the present invention adopts a fully enclosed structure, which prevents the heat and odor in the box from overflowing through the air duct, reduces the loss of hot air energy, and improves production efficiency.
[0087] The above description is merely illustrative of certain exemplary embodiments of the present invention. It goes without saying that those skilled in the art will be able to modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims.
Claims
1. A closed heat pump drying system for slurry resource utilization, characterized in that: The system includes: A drying box (1), wherein the drying box (1) has a crawler conveyor belt; An extrusion box (2) is arranged at the upper end of the drying box (1) and is in communication with the drying box (1), and a screw extruder (5) is integrated inside the extrusion box (2). The slurry material is extruded into a strip material by the screw extruder (5) and is transported into the drying box (1); an air inlet and outlet assembly in communication with the drying box (1); The system also includes: heat pump components; The air inlet and outlet components are divided into an air inlet component arranged at one end of the drying box (1) and an air outlet component arranged at the other end of the drying box (1); A condenser (17) is provided in the air inlet assembly, and the refrigerant condenses in the condenser (17) to release heat and heat the air entering the air inlet assembly, and the heated air is used to dry the strip material in the drying box (1); The air inlet duct (30) of the air inlet assembly and the air outlet duct (31) of the air outlet assembly are connected via a connecting duct (32) to form a closed pipeline.
2. A closed heat pump drying system for slurry resource utilization according to claim 1, characterized in that: The upper end of the drying box (1) is provided with a strip material feed port, the extrusion box (2) is arranged at the strip material feed port of the drying box (1), and an extrusion orifice plate (7) is installed at the strip material feed port; A motor (3) is provided on the upper portion of the extrusion box (2); an output shaft (4) of the motor (3) passes through the extrusion box (2) and extends into the interior of the extrusion box (2); and the output shaft (4) of the motor (3) is connected to the screw extruder (5); A sewage orifice plate (6) is provided at the upper portion of the interior of the extrusion box (2), and the space above the sewage orifice plate (6) of the extrusion box (2) is a sewage discharge space, and the sewage discharge space is connected to a sewage outlet (7); The other side of the extrusion box (2) is connected to a feed port (9), and the feed port (9) is located below the sewage orifice plate (6).
3. A closed heat pump drying system for slurry resource utilization according to claim 2, characterized in that: The crawler conveyor belt inside the drying box (1) drives the crawler belt (11) thereon to move via the power wheel (10) to transport materials; An air inlet opening is provided at the upper portion of one end of the drying box (1), and the air inlet assembly and the drying box (1) are connected to the air inlet opening; An air outlet opening is provided at the lower portion of the other end of the drying box (1), and the air outlet assembly and the drying box (1) are connected to the air outlet opening; A discharge port (20) is provided at the lower portion of the drying box (1).
4. A closed heat pump drying system for slurry resource utilization according to claim 3, characterized in that: The air inlet assembly comprises: An air inlet duct (30), wherein an equalizing plate (19) is installed between the air inlet duct (30) and the air inlet opening; A filter (15) is installed at the air inlet of the air inlet duct (30), and a filter (16) is also installed inside the air inlet duct (30); and A condenser (17) and a fan (18) are arranged in the air inlet duct (30).
5. The open heat pump drying system for slurry resource utilization according to claim 4, characterized in that: The air outlet component includes: An air outlet duct (31), wherein the drying box (1) is provided with a folding plate (14) near the air outlet opening; An adsorption area (21) is provided in the air outlet duct (31).
6. A closed heat pump drying system for slurry resource utilization according to claim 5, characterized in that: The heat pump assembly comprises: A compressor (22), a first heat exchanger (25), and a second heat exchanger (26), wherein the second heat exchanger (26) is installed in the air outlet duct; The outlet of the compressor (22) is connected to the inlet of the condenser (17), the outlet of the condenser (17) is connected to the inlet of the throttle valve (23) through a pipeline, the outlet of the throttle valve (23) is connected to the inlet of the first heat exchanger (25) through a pipeline, and the outlet of the first heat exchanger (25) is connected to the inlet of the compressor (22) through a pipeline; The water after heat exchange with the flue gas in the air outlet duct through the second heat exchanger (26) is connected to the water inlet of the first heat exchanger (25), and the water outlet of the first heat exchanger (25) is connected to the water tank (28) through a pump (27), and the water outlet of the water tank (28) is connected to the water inlet of the second heat exchanger (26) through a pipeline.
7. A closed heat pump drying system for slurry resource utilization according to claim 5, characterized in that: The heat pump assembly comprises: a generator (33) and an absorber (36); The steam outlet of the generator (33) is connected to the inlet of the condenser (17), the outlet of the condenser (17) is provided with a condenser drain (37), hot water (34) enters the generator (33) through a pipeline, the bottom of the generator (33) is connected to the pump (27) through a pipeline, and the pump (27) is connected to the spray device (35) in the absorber (26) through a pipeline; The bottom of the absorber (26) is connected to a pump (27) through a pipeline, and the pump (27) is connected to a spray device (35) in the generator (33) through a pipeline.