GB2599866A - Reverse single working medium steam combined cycle - Google Patents
Reverse single working medium steam combined cycle Download PDFInfo
- Publication number
- GB2599866A GB2599866A GB2200350.3A GB202200350A GB2599866A GB 2599866 A GB2599866 A GB 2599866A GB 202200350 A GB202200350 A GB 202200350A GB 2599866 A GB2599866 A GB 2599866A
- Authority
- GB
- United Kingdom
- Prior art keywords
- working medium
- state
- heat
- medium
- working
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K11/00—Plants characterised by the engines being structurally combined with boilers or condensers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B1/00—Compression machines, plants or systems with non-reversible cycle
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B29/00—Combined heating and refrigeration systems, e.g. operating alternately or simultaneously
- F25B29/003—Combined heating and refrigeration systems, e.g. operating alternately or simultaneously of the compression type system
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01K—STEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
- F01K11/00—Plants characterised by the engines being structurally combined with boilers or condensers
- F01K11/02—Plants characterised by the engines being structurally combined with boilers or condensers the engines being turbines
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F25—REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
- F25B—REFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
- F25B9/00—Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point
- F25B9/14—Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point characterised by the cycle used, e.g. Stirling cycle
Landscapes
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Engine Equipment That Uses Special Cycles (AREA)
- Manufacturing Of Magnetic Record Carriers (AREA)
- Lubricants (AREA)
- Press Drives And Press Lines (AREA)
Abstract
A reverse single working medium steam combined cycle, relating to the technical fields of thermodynamics, refrigeration, and heat pumps. The reverse single working medium steam combined cycle refers to, on a working medium composed of M1 kg and M2 kg, a closed process composed of ten processes performed separately or jointly: an M1 kg working medium endothermic vaporization process 12, an M1 kg working medium pressure boosting process 23, an (M1+M2) kg working medium endothermic process 34, an (M1+M2) kg working medium pressure boosting process 45, an (M1+M2) kg working medium exothermic process 56, an M2 kg working medium pressure reduction process 63, an M1 kg working medium exothermic process 67, an M1 kg working medium pressure boosting process 78, an M1 kg working medium exothermic condensation process 89, and an M1 kg working medium pressure reduction process 91.
Description
REVERSED SINGLE-WORKING-MEDIUM VAPOR COMBINED CYCLE
FIELD
The present invention belongs to the flied of thermodynamics, refrigeration and heat pump.
BACKGROUD
Cold demand, heat demand and power demand are common in human life and production. Among them, the conversion of mechanical energy into thermal energy is an important way to realize refrigeration and heating. Generally, the temperature of the refrigerated medium changes during the refrigeration process, and the temperature of the heated medium also changes during the heating process. When using mechanical energy for heating, the heated medium often has the dual characteristics of variable temperature and high temperature at the same time, which makes the performance unsatisfactory when only using one single thermodynamic cycle to realize refrigeration or heating. The problems include the unreasonable coefficient of performance, low heating parameters, high pressure ratio and high operating pressure.
From the perspective of basic theory, there have been significant deficiencies for a long time: (1) In the vapor compression refrigeration/heat pump cycles based on the reversed Rankine cycle, the heat releasing process is usually a condensation process (isothermal or near-isothermal), which leads to a large loss of temperature difference between the working medium and the heated medium. Meanwhile, the depressurization process of the condensate has a large loss (or a high utilization cost). When the supercritical working condition is adopted, the compression ratio is high, which makes the manufacturing cost of the compressor high and the safety reduced. (2) In the gas compression refrigeration/heat pump cycles based on the reversed Brayton cycle, the required compression ratio is low, which limits the improvement of heating parameters. Meanwhile, the temperature changes a lot in the low-temperature process, which leads to a large temperature difference loss in the low-temperature process when heating or cooling, and thus the coefficient of performance is not satisfactory.
In the basic theoretical system of thermal science, the establishment, development and application of thermodynamic cycles will play an important role in the leap of energy utilization and actively promote the social progress and the productivity development. Reversed thermodynamic cycles (i.e., refrigeration/heat pump cycles) are the theoretical basis of mechanical-energy-driven refrigeration or heating devices, and they are also the core of the corresponding energy utilization systems. Aiming at the long-standing problems, starting from the principle of simply, actively and efficiently using the mechanical energy for refrigeration or heating, striving to provide the basic theoretical support for the simplicity, initiative and efficiency of refrigeration or heat pump device, the present invention proposes a reversed single-working-medium vapor combined cycle.
THE CONTENTS OF THE PRESENT INVENTION
The reversed single-working-medium vapor combined cycle is mainly provided in the present invention, and the specific contents of the present invention are as follows: 1. A reversed single-working-medium vapor combined cycle method consists of ten processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the Nit kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-FM2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+1\42) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (NI +A/12) kg of working medium, performing a depressurization process to set a state (6) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the MI kg of working medium, performing a pressurization process to set the state (7) to (8) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (9) of the Mi kg of working medium, performing a depressurization process to set the state (9) to (1) of the MI kg of working medium.
2. A reversed single-working-medium vapor combined cycle method consists of eleven processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-FM2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (MI-EM2) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (Mt+M2) kg of working medium, performing a depressurization process to set a state (6) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the Mt kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the Mi kg of working medium, performing a pressurization process to set the state (8) to (9) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the Mt kg of working medium, performing a depressurization process to set the state (c) to (1) of the MI kg of working medium.
3. A reversed single-working-medium vapor combined cycle method consists of eleven processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mt+M2) kg of working medium, performing a pressurization process to set a state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the Mt kg of working medium, performing a pressurization process to set the state (8) to (9) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the NIt kg of working medium, performing a depressurization process to set the state (c) to (1) of the NII kg of working medium.
4. A reversed single-working-medium vapor combined cycle method consists of twelve processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the N41 kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mint) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the M2 kg of working medium, performing a pressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the Mt kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the NII kg of working medium, performing a pressurization process to set the state (9) to (c) of the M t kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mt kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mi kg of working medium.
5. A reversed single-working-medium vapor combined cycle method consists of twelve processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mt kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NIFENI2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the M2 kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (3) of the M2 kg of working medium, performing a heat-absorption process to set a state (4) to (7) of the Mt kg of working medium, performing a pressurization process to set the state (7) to (8) of the Mt kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the NII kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the NI1 kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mt kg of working medium.
6. A reversed single-working-medium vapor combined cycle method consists of thirteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the N41 kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (N41+N42) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (NIFEN42-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (M1+1\42-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (NIt-PM2-X) kg of working medium, performing a pressurization process to set a state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (Mt-rM2) kg of working medium, performing a depressurization process to set a state (8) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (8) to (9) of the MI kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the NI1 kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mi kg of working medium.
7. A reversed single-working-medium vapor combined cycle method consists of twelve processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mt kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-FM2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (N4I+N12) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (IVIt-EN12) kg of working medium, performing a depressurization process to set a state (6) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the Mi kg of working medium, performing a pressurization process to set the state (7) to (8) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (9) of the MI kg of working medium, performing a depressurization process to set the state (9) to (1) of the Mi kg of working medium.
8. A reversed single-working-medium vapor combined cycle method consists of thirteen processes which are conducted with NI1 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the N41 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+M2) kg of working medium, performing a heat-releasing process to set a state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the Mt kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the MI kg of working medium, performing a pressurization process to set the state (8) to (9) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the N41 kg of working medium, performing a depressurization process to set the state (c) to (1) of the Mt kg of working medium.
9. A reversed single-working-medium vapor combined cycle method consists of thirteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NIFENI2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+M2) kg of working medium, performing a pressurization process to set a state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the Mt kg of working medium, performing a pressurization process to set the state (8) to (9) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the NII kg of working medium.
10. A reversed single-working-medium vapor combined cycle method consists of fourteen processes which are conducted with Ivli kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the NI1 kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-ENI2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the M2 kg of working medium, performing a pressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the NI2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the NIi kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the NII kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the MI kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mt kg of working medium.
11. A reversed single-working-medium vapor combined cycle method consists of fourteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NII-EM2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the M2 kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-absorption process to set a state (4) to (7) of the MI kg of working medium, performing a pressurization process to set the state (7) to (8) of the MI kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the MI kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the NII kg of working medium.
12. A reversed single-working-medium vapor combined cycle method consists of fifteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+1\42) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (Mi+1\42-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (Mi+M2-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (Mi+N12-X) kg of working medium, performing a pressurization process to set a state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (N11+1\42) kg of working medium, performing a depressurization process to set a state (8) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (8) to (9) of the Mi kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the MI kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium.
13. A reversed single-working-medium vapor combined cycle method consists of fourteen processes which are conducted with NU kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the Nli kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (N41+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (NII-EN42) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (Mi+M2) kg of working medium, performing a depressurization process to set a state (6) to (t) of the (N42-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (7) to (8) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the NI kg of working medium, performing a heat-releasing process to set a state (r) to (9) of the N41 kg of working medium, performing a depressurization process to set the state (9) to (1) of the Mt kg of working medium.
14. A reversed single-working-medium vapor combined cycle method consists of fifteen processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the NI1 kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mt kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (M1-FNI2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (M1+M2) kg of working medium, performing a heat-releasing process to set a state (5) to (6) of the (M2-M) kg of working medium, performing a depressurization process to set the state (6) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the (Mi+M) kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (8) to (9) of the (MI-FM) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (r) of the (1\41+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (c) of the Mt kg of working medium, performing a depressurization process to set the state (c) to (1) of the Mt kg of working medium.
15. A reversed single-working-medium vapor combined cycle method consists of fifteen processes which are conducted with 1\41 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the NI1 kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (MI-FNI2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+N12) kg of working medium, performing a pressurization process to set a state (5) to (6) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (M2-M) kg of working medium, performing a depressurization process to set the state (7) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (8) to (9) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the NI kg of working medium, performing a heat-releasing process to set a state (r) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the MI kg of working medium.
16. A reversed single-working-medium vapor combined cycle method consists of sixteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (M2-M) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (M2-M) kg of working medium, performing a depressurization process to set the state (7) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the (Mi+M) kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (NII+NI) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the NI kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the MI kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium 17. A reversed single-working-medium vapor combined cycle method consists of sixteen processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NII kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NII+M2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (M2-M) kg of working medium, performing a depressurization process to set the state (6) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a depressurization process to set a state (4) to (7) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (7) to (8) of the (Mi+M) kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (Nil-FM) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the NI kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the NII kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mi kg of working medium.
18. A reversed single-working-medium vapor combined cycle method consists of seventeen processes which are conducted with NI1 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+N12) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (Mi+M2-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (Mi+M2-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (Nil-FA/12-X) kg of working medium, performing a pressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (N41-FM2) kg of working medium, performing a depressurization process to set a state (8) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (1\41+M) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (N/12-(M) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the MI kg of working medium.
19. A reversed single-working-medium vapor combined cycle method according to any one of claim 1-18, wherein adjusting that performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium to that performing a pressurization process to set the state (2) to (z) and a heat-absorption process to set a state (z) to (3) of the Mi kg of working medium, a reversed single-working-medium vapor combined cycle is completed
BRIEF DESCRIPTION OF THE FIGURES
Fig.1 is a type 1 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention Fig.2 is a type 2 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.3 is a type 3 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention Fig.4 is a type 4 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention Fig.5 is a type 5 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.6 is a type 6 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention Fig.7 is a type 7 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention Fig.8 is a type 8 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.9 is a type 9 example general flow chart of a single-working-medium combined cycle provided in the present invention Fig.10 is a type 10 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.11 is a type 11 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.12 is a type 12 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.13 is a type 13 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.14 is a type 14 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.15 is a type 15 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.16 is a type 16 example general flow chart of a single-working-medium combined cycle provided in the present invention.
Fig.17 is a type 17 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.18 is a type 18 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
Fig.19 is a type 19 example general flow chart of a reversed single-working-medium vapor combined cycle provided in the present invention.
DETAILED DESCRIPTION
The first thing to note is that, in terms of the process description, it shall not be repeated under unnecessary circumstances, and the obvious process shall not be described. The detailed description of the present invention is as follows: The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.1 works as follows: (I) From the perspective of the cycle's processes.
The working medium conducts ten processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the Mt kg of working medium, a heat-absorption process 3-4 of the (Mi+NI2) kg of working medium, a pressurization process 4-5 of the (Nli+NI2) kg of working medium, a heat-releasing process 5-6 of the (Mi+NI2) kg of working medium, a depressurization process 6-3 of the M2 kg of working medium, a heat-releasing process 6-7 of the MI kg of working medium, a pressurization process 7-8 of the NI1 kg of working medium, a heat-releasing and condensation process 8-9 of the MI kg of working medium, a depressurization process 9-1 of the Mi kg of working medium.
(2) From the perspective of energy conversion (11) Heat-releasing processes. Aiming at the heat released in the process 5-6 of the (Mi+M2) kg of working medium and the process 6-7 and 8-9 of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (1\42+NI2) kg of working medium in process 3-4.
(2) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (NII+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration.
0 Energy conversion processes. The process 2-3 and 7-8 of the Mi kg of working medium and the process 4-5 of the (Nli+M2) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process 9-1 of the Mi kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.2 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts eleven processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the NI1 kg of working medium, a heat-absorption process 3-4 of the (NI 1+M2) kg of working medium, a pressurization process 4-5 of the (M1+NI2) kg of working medium, a heat-releasing process 5-6 of the M2 kg of working medium, a depressurization process 6-3 of the M2 kg of working medium, a pressurization process 5-7 of the Mi kg of working medium, a heat-releasing process 7-8 of the Mi kg of working medium, a pressurization process 8-9 of the Mt kg of working medium, a heat-releasing and condensation process 9-c of the Mt kg of working medium, a depressurization process c-1 of the Mt kg of working medium.
(2) From the perspective of energy conversion.
CO Heat-releasing processes. Aiming at the heat released in the process 5-6 of the M2 kg of working medium and the process 7-8 and 9-c of the Mt kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (Mt+M2) kg of working medium in process 3-4.
(12.,) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Mi+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration.
C) Energy conversion processes. The process 2-3, 5-7 and 8-9 of the Mi kg of working medium and the process 4-5 of the (Mt+M2) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process c-1 of the N11 kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.3 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts eleven processes: a heat-absorption and vaporization process 1-2 of the MI kg of working medium, a pressurization process 2-3 of the MI kg of working medium, a heat-absorption process 3-4 of the (Mt+M2) kg of working medium, a pressurization process 4-5 of the (Mi+M2) kg of working medium, a pressurization process 5-6 of the M2 kg of working medium, a heat-releasing process 6-7 of the M2 kg of working medium, a depressurization process 7-3 of the M2 kg of working medium, a heat-releasing process 5-8 of the Mt kg of working medium, a pressurization process 8-9 of the Mi kg of working medium, a heat-releasing and condensation process 9-c of the Mt kg of working medium, a depressurization process c-1 of the NI1 kg of working medium.
(2) From the perspective of energy conversion.
(1.1) Heat-releasing processes. Aiming at the heat released in the process 6-7 of the 1\42 kg of working medium and the process 5-8 and 9-c of the Mt kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (Mi+M2) kg of working medium in process 3-4.
CZ Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (1\41+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration.
C) Energy conversion processes. The process 2-3 and 8-9 of the MI kg of working medium, the process 4-5 of the (Mi+M2) kg of working medium and the process 5-6 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process c-1 of the Mi kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.4 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts twelve processes: a heat-absorption and vaporization process 1-2 of the MI kg of working medium, a pressurization process 2-3 of the Mi kg of working medium, a heat-absorption process 3-4 of the (Mi+M2) kg of working medium, a heat-absorption process 4-5 of the IS/12 kg of working medium, a pressurization process 5-6 of the M2 kg of working medium, a heat-releasing process 6-7 of the M2 kg of working medium, a depressurization process 7-3 of the M2 kg of working medium, a pressurization process 4-8 of the M2 kg of working medium, a heat-releasing process 8-9 of the MI kg of working medium, a pressurization process 9-c of the MI kg of working medium, a heat-releasing and condensation process c-d of the MI kg of working medium, a depressurization process d-1 of the MI kg of working medium.
(2) From the perspective of energy conversion.
CU Heat-releasing processes. Aiming at the heat released in the process 6-7 of the M2 kg of working medium and the process 8-9 and c-d of the NI1 kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (Mi+M2) kg of working medium in process 3-4 and the M2 kg of working medium in process 4-5.
(2.,) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (1\41+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat demand in the process 4-5 of the M2 kg of working medium comes from regeneration.
C) Energy conversion processes. The process 2-3, 4-8 and 9-c of the MI kg of working medium and the process 5-6 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the 1\41 kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.5 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts twelve processes: a heat-absorption and vaporization process 1-2 of the Mt kg of working medium, a pressurization process 2-3 of the Mt kg of working medium, a heat-absorption process 3-4 of the (M1+1\42) kg of working medium, a pressurization process 4-5 of the M2 kg of working medium, a heat-releasing process 5-6 of the M2 kg of working medium, a depressurization process 6-3 of the M2 kg of working medium, a heat-absorption process 4-7 of the Mt kg of working medium, a pressurization process 7-8 of the NI1 kg of working medium, a heat-releasing process 8-9 of the Mt kg of working medium, a pressurization process 9-c of the MI kg of working medium, a heat-releasing and condensation process c-d of the Mi kg of working medium, a depressurization process d-1 of the Mt kg of working medium.
(2) From the perspective of energy conversion.
CO Heat-releasing processes. Aiming at the heat released in the process 5-6 of the M2 kg of working medium and the process 8-9 and c-d of the Mt kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (M1+1\42) kg of working medium in process 3-4 and the Mt kg of working medium in process 4-7. ri
Z Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (1\4[+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat demand in the process 4-7 of the MI kg of working medium comes from regeneration.
C) Energy conversion processes. The process 2-3, 7-8 and 9-c of the Mi kg of working medium and the process 4-5 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.6 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts thirteen processes: a heat-absorption and vaporization process 1-2 of the NU kg of working medium, a pressurization process 2-3 of the Mi kg of working medium, a heat-absorption process 3-4 of the (Nli+M2) kg of working medium, a heat-absorption process 4-5 of the (Mr +M2-X) kg of working medium, a pressurization process 5-6 of the (N1I+M2-X) kg of working medium, a heat-releasing process 6-7 of the (Mt+M2-X) kg of working medium, a pressurization process 4-7 of the X kg of working medium, a heat-releasing process 7-8 of the (Mi+M2) kg of working medium, a depressurization process 8-3 of the M2 kg of working medium, a heat-releasing process 8-9 of the Mi kg of working medium, a pressurization process 9-c of the Mt kg of working medium, a heat-releasing and condensation process c-d of the Mt kg of working medium, a depressurization process d-1 of the Mi kg of working medium.
(2) From the perspective of energy conversion (11) Heat-releasing processes Aiming at the heat released in the process 6-7 of the (Mi+M2-X) kg of working medium, the process 7-8 of the (Mi+M2) kg of working medium and the process 8-9 and c-d of the Mt kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (M1+1\42) kg of working medium in process 3-4 and the (M t+M2-X) kg of working medium in process 4-5.
(1.?.,) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (1\41+1\42) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration The heat absorbed in the process 4-5 of the (NI i+M2-X) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration.
0 Energy conversion processes. The process 2-3 and 9-c of the MI kg of working medium, the process 5-6 of the (Mr(M2-X) kg of working medium and the process 4-7 of the X kg of working medium are generally achieved by a compressor and requires mechanical work. The process 8-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.7 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts twelve processes: a heat-absorption and vaporization process 1-2 of the MI kg of working medium, a pressurization process 2-3 of the MI kg of working medium, a heat-absorption process 3-4 of the (Mi+NI2) kg of working medium, a pressurization process 4-5 of the (Mi-EN12) kg of working medium, a heat-releasing process 5-6 of the (Nli-EM2) kg of working medium, a depressurization process 6-a of the M2 kg of working medium, a heat-absorption process a-b of the M2 kg of working medium, a depressurization process b-3 of the M2 kg of working medium, a heat-releasing process 6-7 of the MI kg of working medium, a pressurization process 7-8 of the Mi kg of working medium, a heat-releasing and condensation process 8-9 of the NI1 kg of working medium, a depressurization process 9-1 of the NI1 kg of working medium.
(2) From the perspective of energy conversion.
op, Heat-releasing processes. Aiming at the heat released in the process 5-6 of the (Mi+1\42) kg of working medium and the process 6-7 and 8-9 of the Nli kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M2 kg of working medium in process a-b and the (Mi+1\42) kg of working medium in process 3-4 (41) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Nli+1\42) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources.
C) Energy conversion processes. The process 2-3 and 7-8 of the IVI1 kg of working medium and the process 4-5 of the (Mi+1\42) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process 9-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.8 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts thirteen processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the MI kg of working medium, a heat-absorption process 3-4 of the (M1+N42) kg of working medium, a pressurization process 4-5 of the (M1+1\42) kg of working medium, a heat-releasing process 5-6 of the (1\41-lM2) kg of working medium, a depressurization process 6-a of the M2 kg of working medium, a heat-absorption process a-b of the M2 kg of working medium, a depressurization process b-3 of the M2 kg of working medium, a pressurization process 5-7 of the MI kg of working medium, a heat-releasing process 7-8 of the Mi kg of working medium, a pressurization process 8-9 of the MI kg of working medium, a heat-releasing and condensation process 9-c of the MI kg of working medium, a depressurization process c-1 of the MI kg of working medium.
(2) From the perspective of energy conversion.
CO Heat-releasing processes. Aiming at the heat released in the process 5-6 of the Mt kg of working medium and the process 7-8 and 9-c of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M2 kg of working medium in process a-b and the (Mi+1\42) kg of working medium in process 3-4 C2) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (M1-FM2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources.
0 Energy conversion processes. The process 2-3, 5-7 and 7-8 of the MI kg of working medium and the process 4-5 of the (Mi-FIVI2) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process c-1 of the Mi kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.9 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts thirteen processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the NI1 kg of working medium, a heat-absorption process 3-4 of the (Mi+M2) kg of working medium, a pressurization process 4-5 of the (Mi+M2) kg of working medium, a pressurization process 5-6 of the M2 kg of working medium, a heat-releasing process 6-7 of the M2 kg of working medium, a depressurization process 7-a of the M2 kg of working medium, a heat-absorption process a-b of the M2 kg of working medium, a depressurization process b-3 of the M2 kg of working medium, a heat-releasing process 5-8 of the Mi kg of working medium, a pressurization process 8-9 of the Mi kg of working medium, a heat-releasing and condensation process 9-c of the MI kg of working medium, a depressurization process c-1 of the 1\42 kg of working medium.
(2) From the perspective of energy conversion.
CU Heat-releasing processes. Aiming at the heat released in the process 6-7 of the M2 kg of working medium and the process 5-8 and 9-c of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M2 kg of working medium in process a-b and the (Mi+M2) kg of working medium in process 3-4. Wherein, the low-temperature heat released in the process 9-c of Mt kg working medium can be used for the heat demand of the IN42 kg working medium in process 1-2 (2.4 Heat absorption processes Generally, the INC kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Mi+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources 0 Energy conversion processes. The process 2-3 and 8-9 of the MI kg of working medium, the process 4-5 of the (Mi+M2) kg of working medium and the process 5-6 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process c-1 of the Mi kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig 10 (1) From the perspective of the cycle's processes.
The working medium conducts fourteen processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the Mi kg of working medium, a heat-absorption process 3-4 of the (NIFEN/12) kg of working medium, a heat-absorption process 4-5 of the N/12 kg of working medium, a pressurization process 5-6 of the N/12 kg of working medium, a heat-releasing process 6-7 of the M2 kg of working medium, a depressurization process 7-a of the M2 kg of working medium, a heat-absorption process a-b of the M2 kg of working medium, a depressurization process b-3 of the N42 kg of working medium, a pressurization process 4-8 of the N41 kg of working medium, a heat-releasing process 8-9 of the NI1 kg of working medium, a pressurization process 9-c of the 1\41 kg of working medium, a heat-releasing and condensation process c-d of the Mi kg of working medium, a depressurization process d-1 of the Mi kg of working medium.
(2) From the perspective of energy conversion.
CU Heat-releasing processes. Aiming at the heat released in the process 6-7 of the M2 kg of working medium and the process 8-9 and c-d of the NI1 kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M2 kg of working medium in process 4-5 and a-b and the (N11+1\42) kg of working medium in process 3-4. Wherein, the low-temperature heat released in the process c-d of N41 kg working medium can be used for the heat demand of the NI1 kg working medium in process 1-2 CZ Heat absorption processes. Generally, the Nli kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (NIFENI2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-5 of the M2 kg of working medium comes from regeneration. The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources.
0 Energy conversion processes. The process 2-3, 4-8 and 9-c of the 1\41 kg of working medium and the process 5-6 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the Mt kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig. ii works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts fourteen processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the Mi kg of working medium, a heat-absorption process 3-4 of the (N11+1\42) kg of working medium, a pressurization process 4-5 of the M2 kg of working medium, a heat-releasing process 5-6 of the M2 kg of working medium, a depressurization process 6-a of the M2 kg of working medium, a heat-absorption process a-b of the NI2 kg of working medium, a depressurization process b-3 of the M2 kg of working medium, a heat-absorption process 4-7 of the MI kg of working medium, a pressurization process 7-8 of the Mi kg of working medium, a heat-releasing process 8-9 of the Nli kg of working medium, a pressurization process 9-c of the NI1 kg of working medium, a heat-releasing and condensation process c-d of the Mt kg of working medium, a depressurization process d-1 of the 1\41 kg of working medium.
(2) From the perspective of energy conversion CE Heat-releasing processes. Aiming at the heat released in the process 5-6 of the M2 kg of working medium and the process 8-9 and c-d of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the Mt kg of working medium in process 4-7, the M2 kg of working medium in process a-b and the (NIFEN12) kg of working medium in process 3-4. Wherein, the low-temperature heat released in the process c-d of Mi kg working medium can be used for the heat demand of the N41 kg working medium in process 1-2.
(41) Heat absorption processes. Generally, the Mi kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (N11+1\42) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-7 of the Mi kg of working medium comes from regeneration. The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources.
C) Energy conversion processes. The process 2-3, 7-8 and 9-c of the Mi kg of working medium and the process 4-5 of the M2 kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the Mt kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.12 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts fifteen processes: a heat-absorption and vaporization process 1-2 of the Mt kg of working medium, a pressurization process 2-3 of the Mt kg of working medium, a heat-absorption process 3-4 of the (Mi+NI2) kg of working medium, a heat-absorption process 4-5 of the (Nli+N12-X) kg of working medium, a pressurization process 5-6 of the (Mi+M2-X) kg of working medium, a heat-releasing process 6-7 of the (Mi+N12-X) kg of working medium, a pressurization process 4-7 of the X kg of working medium, a heat-releasing process 7-8 of the (Mi-EM2) kg of working medium, a depressurization process 8-a of the Ni? kg of working medium, a heat-absorption process a-b of the M2 kg of working medium, a depressurization process b-3 of the M2 kg of working medium, a heat-releasing process 8-9 of the NI1 kg of working medium, a pressurization process 9-c of the Mt kg of working medium, a heat-releasing and condensation process c-d of the Mt kg of working medium, a depressurization process d-1 of the NII kg of working medium.
(2) From the perspective of energy conversion.
CO Heat-releasing processes. Aiming at the heat released in the process 6-7 of the (Nli+M2-X) kg of working medium, the process 7-8 of the (N11+1\42) kg of working medium and the process 8-9 and c-d of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the (Mt+1\42-X) kg of working medium in process 4-5, the M2 kg of working medium in process a-b and the (M i+IV12) kg of working medium in process 3-4. Wherein, the low-temperature heat released in the process c-d of Mt kg working medium can be used for the heat demand of the Mt kg working medium in process 1-2.
(2.,) Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Mi+NI2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-5 of the (Mt+N12-X) kg of working medium comes from the low-temperature heat load, or partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process a-b of the M2 kg of working medium comes from regeneration, or the external heat sources.
0 Energy conversion processes. The process 2-3 and 9-c of the Mi kg of working medium, the process 5-6 of the (Mi+M2-X) kg of working medium and the process 4-7 of the X kg of working medium are generally achieved by a compressor and requires mechanical work. The process 8-a and b-3 of the M2 kg of working medium is achieved by an expander and provides mechanical work. The process d-1 of the NII kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed, The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig J3 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts fourteen processes: a heat-absorption and vaporization process 1-2 of the 1^41 kg of working medium, a pressurization process 2-3 of the NI1 kg of working medium, a heat-absorption process 3-4 of the (MI-EN/12) kg of working medium, a pressurization process 4-5 of the (M-'-M2) kg of working medium, a heat-releasing process 5-6 of the (MITM2) kg of working medium, a depressurization process 6-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a heat-releasing process 6-7 of the (Ml+M) kg of working medium, a pressurization process 7-8 of the (M1+1\4) kg of working medium, a heat-releasing process 8-r of the (Mi+M) kg of working medium, a depressurization process r-s of the M kg of working medium, a heat-absorption and vaporization process s-t of the M kg of working medium, a heat-releasing and condensation process r-9 of the il\41 kg of working medium, a depressurization process 9-1 of the Mi kg of working medium.
(2) From the perspective of energy conversion (1) Heat-releasing processes. Aiming at the heat released in the process 5-6 of the (Mt-FM2) kg of working medium and the process 6-7 and 8-r of the (Mt+M) kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the Ni kg of working medium in process s-t and the (Mi+M2) kg of working medium in process 3-4. The heat released in the process r-9 of Mi kg working medium can be used for the heat demand of the (Mi+M2) kg working medium in process 3-4. ri
Z Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Mi+M2) kg of working medium comes from the low-temperature heat load, or partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process s-t of the M kg of working medium comes from regeneration.
0 Energy conversion processes. The process 2-3 of the MI kg of working medium, the process 4-5 of the (Mi+M2) kg of working medium and the process 7-8 of the (Mt+N4) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-t of the (M2-M) kg of working medium and the process t-3 of the M2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the M kg of working medium and the process 9-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed, The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig J4 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts fifteen processes: a heat-absorption and vaporization process 1-2 of the NI1 kg of working medium, a pressurization process 2-3 of the NII kg of working medium, a heat-absorption process 3-4 of the (Mi+M2) kg of working medium, a pressurization process 4-5 of the (N11-EN12) kg of working medium, a heat-releasing process 5-6 of the (M2-M) kg of working medium, a depressurization process 6-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a pressurization process 5-7 of the (NI1+M) kg of working medium, a heat-releasing process 7-8 of the (Mi+NI) kg of working medium, a pressurization process 8-9 of the (M f+M) kg of working medium, a heat-releasing process 9-r of the (Mi+M) kg of working medium, a depressurization process r-s of the M kg of working medium, a heat-absorption and vaporization process s-t of the M kg of working medium, a heat-releasing and condensation process r-c of the MI kg of working medium, a depressurization process c-1 of the NII kg of working medium.
(2) From the perspective of energy conversion CO Heat-releasing processes. Aiming at the heat released in the process 5-6 of the (M2-M) kg of working medium and the process 7-8 and 9-r of the (N11+NI) kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M kg of working medium in process s-t and the (N11+1V12) kg of working medium in process 3-4 The heat released in the process r-c of Mf kg working medium can be used for the heat demand of the (Mi+M2) kg working medium in process 3-4.
6,2) Heat absorption processes. Generally, the Mi kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (Mi+M2) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration The heat absorbed in the process s-t of the M kg of working medium comes from regeneration C) Energy conversion processes. The process 2-3 of the Mi kg of working medium, the process 4-5 of the (Mi+M2) kg of working medium and the process 5-7 and 8-9 of the (NIi+M) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-t of the (M2-M) kg of working medium and the process t-3 of the M2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the M kg of working medium and the process c-1 of the Mi kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fio 15 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts fifteen processes: a heat-absorption and vaporization process 1-2 of the MI kg of working medium, a pressurization process 2-3 of the NI1 kg of working medium, a heat-absorption process 3-4 of the (M1+M2) kg of working medium, a pressurization process 4-5 of the (Nli+NI2) kg of working medium, a pressurization process 5-6 of the (M2-M) kg of working medium, a heat-releasing process 6-7 of the (M2-M) kg of working medium, a depressurization process 7-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a heat-releasing process 5-8 of the (Mi+M) kg of working medium, a pressurization process 8-9 of the (Mi+M) kg of working medium, a heat-releasing process 9-r of the (Mi+M) kg of working medium, a depressurization process r-s of the M kg of working medium, a heat-absorption and vaporization process s-t of the M kg of working medium, a heat-releasing and condensation process r-c of the MI kg of working medium, a depressurization process c-1 of the MI kg of working medium.
(2) From the perspective of energy conversion CO Heat-releasing processes. Aiming at the heat released in the process 6-7 of the (M2-M) kg of working medium, the process 5-8 and 9-r of the (1\41+M) kg of working medium and the process r-s of the MI kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M kg of working medium in process s-t and the (Alf+M2) kg of working medium in process 3-4.
C.Z Heat absorption processes. Generally, the MI kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (N4 i+M2) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process s-t of the M kg of working medium comes from regeneration 0 Energy conversion processes. The process 2-3 of the Mi kg of working medium, the process 4-5 of the (Mf+M2) kg of working medium, the process 5-6 of the (M2-M) kg of working medium and the process 8-9 of the (Mi+M) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-t of the (I\42-M) kg of working medium and the process t-3 of the NI2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the NI kg of working medium and the process c-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fio 16 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts sixteen processes: a heat-absorption and vaporization process 1-2 of the NI1 kg of working medium, a pressurization process 2-3 of the NII kg of working medium, a heat-absorption process 3-4 of the (Mi+M2) kg of working medium, a heat-absorption process 4-5 of the (M2-M) kg of working medium, a pressurization process 5-6 of the (M2-M) kg of working medium, a heat-releasing process 6-7 of the (M2-M) kg of working medium, a depressurization process 7-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a pressurization process 4-8 of the (NI1+M) kg of working medium, a heat-releasing process 8-9 of the (Nli+M) kg of working medium, a pressurization process 9-c of the (NI1+1\4) kg of working medium, a heat-releasing process c-r of the (Mi+NI) kg of working medium, a depressurization process r-s of the M kg of working medium, a heat-absorption and vaporization process s-t of the NI kg of working medium, a heat-releasing and condensation process r-d of the NII kg of working medium, a depressurization process d-1 of the Mi kg of working medium.
(2) From the perspective of energy conversion.
(1) Heat-releasing processes. Aiming at the heat released in the process 6-7 of the (1\42-M) kg of working medium, the process 8-9 and c-r of the (NI1+M) kg of working medium and the process r-d of the 1\4i kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M kg of working medium in process s-t, the (M2-M) kg of working medium in process 4-5 and the (Mi+N12) kg of working medium in process 3-4.
(2) Heat absorption processes. Generally, the Mi kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (1\41+N42) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-5 of the (M2-M) kg of working medium comes from regeneration. The heat absorbed in the process s-t of the M kg of working medium comes from regeneration.
0 Energy conversion processes. The process 2-3 of the NII kg of working medium, the process 5-6 of the (M2-M) kg of working medium and the process 4-8 and 9-c of the (1\4 [-FM) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 7-t of the (M2-M) kg of working medium and the process t-3 of the M2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the NI kg of working medium and the process d-1 of the N41 kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.17 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts thirteen processes: a heat-absorption and vaporization process 1-2 of the Mi kg of working medium, a pressurization process 2-3 of the Mt kg of working medium, a heat-absorption process 3-4 of the (M1+IY12) kg of working medium, a pressurization process 4-5 of the (M2-M) kg of working medium, a heat-releasing process 5-6 of the (M2-M) kg of working medium, a depressurization process 6-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a heat-absorption process 4-7 of the (Mi+M) kg of working medium, a pressurization process 7-8 of the (1\4 i+M) kg of working medium, a heat-releasing process 8-9 of the (Mi+NI) kg of working medium, a pressurization process 9-c of the (Mi+1\4) kg of working medium, a heat-releasing process c-r of the (Mi+NI) kg of working medium, a depressurization process r-s of the M kg of working medium, a heat-absorption and vaporization process s-t of the M kg of working medium, a heat-releasing and condensation process r-d of the MI kg of working medium, a depressurization process d-1 of the 1\41 kg of working medium.
(2) From the perspective of energy conversion EI1) Heat-releasing processes. Aiming at the heat released in the process 5-6 of the (M2-M) kg of working medium, the process 8-9 and c-r of the (1\41+M) kg of working medium and the process r-d of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the NI kg of working medium in process s-t, the (Mi+M) kg of working medium in process 4-7 and the (NI i+M2) kg of working medium in process (4,-) Heat absorption processes. Generally, the Mi kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (N11+1\42) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-7 of the (NIrENI) kg of working medium comes from regeneration. The heat absorbed in the process s-t of the NI kg of working medium comes from regeneration.
C) Energy conversion processes. The process 2-3 of the NII kg of working medium, the process 4-5 of the (M2-M) kg of working medium and the process 7-8 and 9-c of the (1\41+M) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 6-t of the (M2-M) kg of working medium and the process t-3 of the M2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the Ni kg of working medium and the process d-1 of the NI1 kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig. 18 works as follows: (1) From the perspective of the cycle's processes.
The working medium conducts seventeen processes: a heat-absorption and vaporization process 1-2 of the MI kg of working medium, a pressurization process 2-3 of the MI kg of working medium, a heat-absorption process 3-4 of the (M1+M2) kg of working medium, a heat-absorption process 4-5 of the (Mi+NI2-X) kg of working medium, a pressurization process 5-6 of the (NI1+M2-X) kg of working medium, a heat-releasing process 6-7 of the (NI1+M2-X) kg of working medium, a pressurization process 4-7 of the X kg of working medium, a heat-releasing process 7-8 of the (N1I+NI2) kg of working medium, a depressurization process 8-t of the (M2-M) kg of working medium, a depressurization process t-3 of the M2 kg of working medium, a heat-releasing process 8-9 of the (Mi+M) kg of working medium, a pressurization process 9-c of the (Mi+M) kg of working medium, a heat-releasing process c-r of the (Mi+M) kg of working medium, a depressurization process r-s of the Ni kg of working medium, a heat-absorption and vaporization process s-t of the M kg of working medium, a heat-releasing and condensation process r-d of the Ivli kg of working medium, a depressurization process d-1 of the NI1 kg of working medium (2) From the perspective of energy conversion.
CU Heat-releasing processes. Aiming at the heat released in the process 6-7 of the (Ni1-HA/12-X) kg of working medium, the process 7-8 of the (N1I+N12) kg of working medium, the process 8-9 and c-r of the (Ni i+M) kg of working medium and the process r-d of the Mi kg of working medium, the relatively high-temperature parts are generally used to satisfy the heat demand of the heated medium, and the relatively low-temperature parts are generally used to satisfy the heat demands of the M kg of working medium in process s-t, the (N11+1V12-X) kg of working medium in process 4-5 and the (Mi+M2) kg of working medium in process 3-4.
(4) Heat absorption processes. Generally, the Mi kg of working medium in the process 1-2 obtains the low-temperature heat load which is provided by the refrigerated medium or a low-temperature heat source. The heat absorbed in the process 3-4 of the (N11+1\42) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process 4-5 of the (NII+M2-X) kg of working medium partly comes from the low-temperature heat load and partly comes from regeneration, or totally comes from regeneration. The heat absorbed in the process s-t of the M kg of working medium comes from regeneration.
C) Energy conversion processes. The process 2-3 of the Mt kg of working medium, the process 5-6 of the (NII-EM2-X) kg of working medium, the process 4-7 of the X kg of working medium and the process 9-c of the (Mi+M) kg of working medium are generally achieved by a compressor and requires mechanical work. The process 8-t of the (M2-1\4) kg of working medium and the process t-3 of the M2 kg of working medium are achieved by an expander and provides mechanical work. The process r-s of the NI kg of working medium and the process d-1 of the MI kg of working medium can be achieved by a turbine or a throttle valve. The total expansion work output is less than the total pressurization work input, and the difference (the cycle's net work) is inputted from the outside. The reversed single-working-medium vapor combined cycle is completed.
The T-s diagram of the reversed single-working-medium vapor combined cycle in Fig.18 works as follows: In the reversed single-working-medium vapor combined cycle of Fig.1, the pressurization process 2-3 of the 1\41 kg of working medium is changed for the pressurization process 2-z and the heat-absorption process z-3. That is, the pressurization process 2-3 of the 1\4i kg of working medium is replaced by the pressurization process 2-z of the MI kg of working medium, and the heat-absorption process is increased. The heat absorbed in the process z-3 of the 1\41 kg of working medium comes from regeneration. The reversed single-working-medium vapor combined cycle is completed.
The technical effects of the present invention: The reversed single-working-medium vapor combined cycle proposed by the present invention has the following effects and advantages: (1) The present invention establishes a basic theory of the mechanical-energy-driven refrigeration and heating (energy quality difference utilization) (2) The present Invention eliminates or greatly reduces the exothermic load in the phase-change region, and correspondingly increases the exothermic load in the high-temperature region. Therefore, a reasonable coefficient of performance can be achieved.
(3) In the present invention, the ranges of the working medium's parameters are expanded greatly. Therefore, the high-efficiency and high-temperature heating can be achieved.
(4) The present invention provides a theoretical basis for reducing the operating pressure and improving the safety of the device.
(5) The present invention reduces the cycle's compression ratio, and leads to the convenience in selecting and manufacturing the cycle's core devices.
(6) The present invention possesses simple methods, reasonable processes and good applicability. It is a common technology to realize the effective utilization of energy grade differences.
(7) The present invention only uses a single working medium, which is easy to produce and store; The present invention can also reduce the operation cost and improve the flexibility of cycle regulation, (8) The processes in the present invention are shared and reduced, which provides a theoretical basis for reducing equipment investment.
(9) In the high-temperature region or the variable temperature region, the temperature difference loss in heat transfer can be reduced, and the coefficient of performance can be improved.
(10) The present invention adopts the low-pressure and high-temperature operation mode in the high-temperature region; therefore, the contradiction among the coefficient of performance, the working medium's parameters and the material's temperature resistance and pressure resistance abilities, which is common in traditional refrigeration/heat pump devices, can be alleviated or solved.
(11) Under the precondition of achieving a high thermal efficiency, the present invention can operate at a low pressure. The present invention provides theoretical support for improving the safety of the device operation.
(12) The present invention possesses a wide range of applicable working media. The present invention can match energy supply with demand well. It is flexible to match the working medium and the working parameters.
(13) The present invention expands the range of thermodynamic cycles for mechanical-energy-driven refrigeration and heating, and is conducive to better realize the efficient utilization of mechanical energy in the fields of refrigeration, high-temperature heating and variable temperature heating.
Claims (19)
- WHAT IS CLAIMED IS: 1. A reversed single-working-medium vapor combined cycle method consisting of ten processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NIi+NI2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (M1+1\42) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (Mi+IV12) kg of working medium, performing a depressurization process to set a state (6) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the N41 kg of working medium, performing a pressurization process to set the state (7) to (8) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (9) of the N41 kg of working medium, performing a depressurization process to set the state (9) to (1) of the MI kg of working medium.
- 2. A reversed single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi-F1\42) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+NI2) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (Mi+M2) kg of working medium, performing a depressurization process to set a state (6) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the N41 kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the N41 kg of working medium, performing a pressurization process to set the state (8) to (9) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the NII kg of working medium.
- 3. A reversed single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with NII kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the N41 kg of working medium, performing a pressurization process to set the state (2) to (3) of the NII kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+M2) kg of working medium, performing a pressurization process to set a state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the Mi kg of working medium, performing a pressurization process to set the state (8) to (9) of the 1\4i kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the NI1 kg of working medium.
- 4. A reversed single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the M2 kg of working medium, performing a pressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the NI1 kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the MI kg of working medium, performing a pressurization process to set the state (9) to (c) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium.
- 5. A reversed single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (NIFENI2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the M2 kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (3) of the M2 kg of working medium, performing a heat-absorption process to set a state (4) to (7) of the MI kg of working medium, performing a pressurization process to set the state (7) to (8) of the Mi kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the NI1 kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the MI kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium.
- 6. A reversed single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with 1\41 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the NIi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi-EN12) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (Mi+N12-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (NIFENI2-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (Mi+1\42-X) kg of working medium, performing a pressurization process to set a state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (I\41+M2) kg of working medium, performing a depressurization process to set a state (8) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (8) to (9) of the MI kg of working medium, performing a pressurization process to set the state (9) to (c) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the NU kg of working medium, performing a depressurization process to set the state (d) to (1) of the MI kg of working medium.
- 7. A reversed single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (I\41+I\42) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (Mi+1\42) kg of working medium, performing a depressurization process to set a state (6) to (a) of the NI2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the 1\4i kg of working medium, performing a pressurization process to set the state (7) to (8) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (9) of the Mi kg of working medium, performing a depressurization process to set the state (9) to (1) of the Mi kg of working medium.
- 8. A reversed single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with 1\41 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NIi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (1\41+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mi+NI2) kg of working medium, performing a heat-releasing process to set a state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the Mi kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the MI kg of working medium, performing a pressurization process to set the state (8) to (9) of the NI1 kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the MI kg of working medium.
- 9. A reversed single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the MI kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (M1-FM2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (NIFEM2) kg of working medium, performing a pressurization process to set a state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the N11 kg of working medium, performing a pressurization process to set the state (8) to (9) of the Mi kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (c) of the MI kg of working medium, performing a depressurization process to set the state (c) to (1) of the MI kg of working medium.
- 10. A reversed single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the NI1 kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mt kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt+M2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the M2 kg of working medium, performing a pressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the M2 kg of working medium, performing a depressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the NI) kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the MI kg of working medium, performing a pressurization process to set the state (9) to (c) of the MI kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mt kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium.
- 11. A reversed single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with NI1 kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mt kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the M2 kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the M2 kg of working medium, performing a depressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-absorption process to set a state (4) to (7) of the Mt kg of working medium, performing a pressurization process to set the state (7) to (8) of the NI1 kg of working medium, performing a heat-releasing, process to set the state (8) to (9) of the Mt kg of working medium, performing a pressurization process to set the state (9) to (c) of the NII kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mt kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mt kg of working medium.
- 12. A reversed single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with NII kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-EN12) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (NII-EM2-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (Mi+M2-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (Mt+N12-X) kg of working medium, performing a pressurization process to set a state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (Mi-FM2) kg of working medium, performing a depressurization process to set a state (8) to (a) of the M2 kg of working medium, performing a heat-absorption process to set the state (a) to (b) of the M2 kg of working medium, performing a depressurization process to set the state (b) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (8) to (9) of the Mt kg of working medium, performing a pressurization process to set the state (9) to (c) of the Mt kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the NII kg of working medium.
- 13. A reversed single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the MI kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (M1+1\42) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (M1+1\42) kg of working medium, performing a depressurization process to set a state (6) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (6) to (7) of the (Mt+M) kg of working medium, performing a pressurization process to set the state (7) to (8) of the (NIt+M) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (r) of the (NI i+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (9) of the NIi kg of working medium, performing a depressurization process to set the state (9) to (1) of the NIt kg of working medium.
- 14. A reversed single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (1\41+M2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (Mt+N12) kg of working medium, performing a heat-releasing process to set a state (5) to (6) of the (M2-M) kg of working medium, performing a depressurization process to set the state (6) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (5) to (7) of the (Nil-FM) kg of working medium, performing a heat-releasing process to set the state (7) to (8) of the (Mt+M) kg of working medium, performing a pressurization process to set the state (8) to (9) of the (N11+M) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (r) of the (NI i+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (c) of the Nfi kg of working medium, performing a depressurization process to set the state (c) to (1) of the Mi kg of working medium.
- 15. A reversed single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with Mt kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the N1t kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+NI2) kg of working medium, performing a pressurization process to set the state (4) to (5) of the (M t+M2) kg of working medium, performing a pressurization process to set a state (5) to (6) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (M2-M) kg of working medium, performing a depressurization process to set the state (7) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set a state (5) to (8) of the (Mt+M) kg of working medium, performing a pressurization process to set the state (8) to (9) of the (N11+1\4) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (r) of the (1\41+NI) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (0 of the M kg of working medium, performing a heat-releasing process to set a state (0 to (c) of the NE kg of working medium, performing a depressurization process to set the state (c) to (1) of the MI kg of working medium.
- 16. A reversed single-working-medium vapor combined cycle method consisting of sixteen processes which are conducted with MI kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Nfi kg of working medium, performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mt-FM2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (M2-M) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (M2-M) kg of working medium, performing a depressurization process to set the state (7) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a pressurization process to set a state (4) to (8) of the (Mi+M) kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (Mi+M) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the NIi kg of working medium, performing a depressurization process to set the state (d) to (1) of the Mi kg of working medium.
- 17. A reversed single-working-medium vapor combined cycle method consisting of sixteen processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the NU kg of working medium, performing a pressurization process to set the state (2) to (3) of the NII kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a pressurization process to set a state (4) to (5) of the (M2-M) kg of working medium, performing a heat-releasing process to set the state (5) to (6) of the (M2-M) kg of working medium, performing a depressurization process to set the state (6) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a depressurization process to set a state (4) to (7) of the (M1-(M) kg of working medium, performing a pressurization process to set the state (7) to (8) of the (M i+M) kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (M1-(M) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (Mi+M) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (NIi+NI) kg of working medium, performing a depressurization process to set a state (r) to (s) of the Ni kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the NI kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI' kg of working medium.
- 18. A reversed single-working-medium vapor combined cycle method consisting of seventeen processes which are conducted with Mi kg of working medium and M2 kg of working medium separately or jointly: performing a heat-absorption and vaporization process to set a state (1) to (2) of the Mi kg of working medium, performing a pressurization process to set the state (2) to (3) of the Mi kg of working medium, performing a heat-absorption process to set a state (3) to (4) of the (Mi+M2) kg of working medium, performing a heat-absorption process to set a state (4) to (5) of the (Mi+M2-X) kg of working medium, performing a pressurization process to set the state (5) to (6) of the (Mi+M2-X) kg of working medium, performing a heat-releasing process to set the state (6) to (7) of the (NIi+NI2-X) kg of working medium, performing a pressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-releasing process to set a state (7) to (8) of the (Mi+NI2) kg of working medium, performing a depressurization process to set a state (8) to (t) of the (M2-M) kg of working medium, performing a depressurization process to set a state (t) to (3) of the M2 kg of working medium, performing a heat-releasing process to set the state (8) to (9) of the (Mi+1\4) kg of working medium, performing a pressurization process to set the state (9) to (c) of the (MFEM) kg of working medium, performing a heat-releasing and condensation process to set the state (c) to (r) of the (Mi+M) kg of working medium, performing a depressurization process to set a state (r) to (s) of the M kg of working medium, performing a heat-absorption and vaporization process to set the state (s) to (t) of the M kg of working medium, performing a heat-releasing process to set a state (r) to (d) of the Mi kg of working medium, performing a depressurization process to set the state (d) to (1) of the NI1 kg of working medium.
- 19. A reversed single-working-medium vapor combined cycle method according to any one of claim 1-18, wherein adjusting that performing a pressurization process to set the state (2) to (3) of the NI1 kg of working medium to that performing a pressurization process to set the state (2) to (z) and a heat-absorption process to set a state (z) to (3) of the MI kg of working medium, a reversed single-working-medium vapor combined cycle is completed.
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
CN201910558709 | 2019-06-14 | ||
PCT/CN2020/000133 WO2020248589A1 (en) | 2019-06-14 | 2020-06-10 | Reverse single working medium steam combined cycle |
Publications (2)
Publication Number | Publication Date |
---|---|
GB2599866A true GB2599866A (en) | 2022-04-13 |
GB2599866B GB2599866B (en) | 2023-03-29 |
Family
ID=73781617
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
GB2200350.3A Active GB2599866B (en) | 2019-06-14 | 2020-06-10 | Reversed single-working-medium vapor combined cycle |
Country Status (4)
Country | Link |
---|---|
US (1) | US20220364774A1 (en) |
CN (1) | CN115478916A (en) |
GB (1) | GB2599866B (en) |
WO (1) | WO2020248589A1 (en) |
Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH03125863A (en) * | 1989-10-06 | 1991-05-29 | Matsushita Electric Ind Co Ltd | Refrigerating cycle unit with two stage compression |
CN105004100A (en) * | 2015-07-21 | 2015-10-28 | 同济大学 | Single-refrigerant loop and multiple-suction pressure steam compression refrigeration/heat pump system |
WO2016117946A1 (en) * | 2015-01-23 | 2016-07-28 | Lg Electronics Inc. | Cooling cycle apparatus for refrigerator |
CN207180086U (en) * | 2017-07-27 | 2018-04-03 | 江苏雪龙新能源科技有限公司 | Carbon dioxide heat-pump unit |
CN107893685A (en) * | 2016-10-12 | 2018-04-10 | 李华玉 | Either simplex matter Steam Combined Cycle and combined cycle Steam Power Equipment |
CN108119196A (en) * | 2017-12-07 | 2018-06-05 | 李华玉 | Combined circulation power apparatus |
Family Cites Families (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN105953453B (en) * | 2015-04-13 | 2021-04-16 | 李华玉 | Bidirectional thermodynamic cycle and first-class thermally-driven compression heat pump |
CN106440510B (en) * | 2016-02-25 | 2020-05-29 | 李华玉 | Second-class thermally-driven compression heat pump |
CN106352601B (en) * | 2016-03-14 | 2020-04-07 | 李华玉 | Third-class thermally-driven compression heat pump |
CN108679880B (en) * | 2017-03-30 | 2021-07-27 | 李华玉 | Double-working medium combined cycle compression heat pump |
-
2020
- 2020-06-10 WO PCT/CN2020/000133 patent/WO2020248589A1/en active Application Filing
- 2020-06-10 GB GB2200350.3A patent/GB2599866B/en active Active
- 2020-06-10 US US17/619,245 patent/US20220364774A1/en not_active Abandoned
- 2020-06-11 CN CN202010557968.XA patent/CN115478916A/en active Pending
Patent Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH03125863A (en) * | 1989-10-06 | 1991-05-29 | Matsushita Electric Ind Co Ltd | Refrigerating cycle unit with two stage compression |
WO2016117946A1 (en) * | 2015-01-23 | 2016-07-28 | Lg Electronics Inc. | Cooling cycle apparatus for refrigerator |
CN105004100A (en) * | 2015-07-21 | 2015-10-28 | 同济大学 | Single-refrigerant loop and multiple-suction pressure steam compression refrigeration/heat pump system |
CN107893685A (en) * | 2016-10-12 | 2018-04-10 | 李华玉 | Either simplex matter Steam Combined Cycle and combined cycle Steam Power Equipment |
CN207180086U (en) * | 2017-07-27 | 2018-04-03 | 江苏雪龙新能源科技有限公司 | Carbon dioxide heat-pump unit |
CN108119196A (en) * | 2017-12-07 | 2018-06-05 | 李华玉 | Combined circulation power apparatus |
Also Published As
Publication number | Publication date |
---|---|
US20220364774A1 (en) | 2022-11-17 |
CN115478916A (en) | 2022-12-16 |
WO2020248589A1 (en) | 2020-12-17 |
GB2599866B (en) | 2023-03-29 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
CN103743150B (en) | Absorption compression type automatic-overlapping refrigerating system and use method | |
CN101701755B (en) | Sectionalized heat absorption, sectionalized compression and sectionalized expansion gas compression type heat pump | |
GB2599866A (en) | Reverse single working medium steam combined cycle | |
US20220252307A1 (en) | Reversed single-working-medium vapor combined cycle | |
US20220282890A1 (en) | Reversed single-working-medium vapor combined cycle | |
GB2599865A (en) | Reverse single-working-media steam combined cycle | |
GB2600047A (en) | Reverse single working medium steam combined cycle | |
CN207365486U (en) | Refrigerating system | |
US20220213816A1 (en) | Single-working-medium vapor combined cycle | |
US20220213812A1 (en) | Single-working-medium vapor combined cycle | |
CN112344579A (en) | Reverse single working medium steam combined cycle | |
WO2021072988A1 (en) | Reverse single-working-medium steam combined cycle and single-working-medium combined cycle heat pump device | |
CN110645736A (en) | Direct-current variable-frequency carbon dioxide heat pump cold and hot unit | |
WO2022105044A1 (en) | First-type thermally-driven combined cycle heat pump apparatus | |
US20220381159A1 (en) | Single-working-medium vapor combined cycle | |
WO2021047127A1 (en) | Reverse single-working-medium steam combined cycle | |
US20240018885A1 (en) | Single-working-medium vapor combined cycle | |
US20220372894A1 (en) | Single-working-medium vapor combined cycle | |
WO2021047126A1 (en) | Reverse single-working-medium steam combined cycle | |
WO2021047125A1 (en) | Reverse single-working-medium steam combined cycle | |
US20220213817A1 (en) | Single-working-medium vapor combined cycle | |
US20220290582A1 (en) | Single-working-medium vapor combined cycle | |
US20220195895A1 (en) | Single-working-medium vapor combined cycle | |
US20220178277A1 (en) | Single-working-medium vapor combined cycle | |
CN112344592A (en) | Single-working medium combined cycle heat pump device |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
789A | Request for publication of translation (sect. 89(a)/1977) |
Ref document number: 2020248589 Country of ref document: WO |