US20220381159A1 - Single-working-medium vapor combined cycle - Google Patents

Single-working-medium vapor combined cycle Download PDF

Info

Publication number
US20220381159A1
US20220381159A1 US17/604,396 US202017604396A US2022381159A1 US 20220381159 A1 US20220381159 A1 US 20220381159A1 US 202017604396 A US202017604396 A US 202017604396A US 2022381159 A1 US2022381159 A1 US 2022381159A1
Authority
US
United States
Prior art keywords
working medium
state
heat
working
medium
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.)
Abandoned
Application number
US17/604,396
Inventor
Huayu Li
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of US20220381159A1 publication Critical patent/US20220381159A1/en
Abandoned legal-status Critical Current

Links

Images

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K23/00Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids
    • F01K23/02Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled
    • F01K23/04Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled condensation heat from one cycle heating the fluid in another cycle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K23/00Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids
    • F01K23/02Plants characterised by more than one engine delivering power external to the plant, the engines being driven by different fluids the engine cycles being thermally coupled
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K25/00Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for
    • F01K25/06Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for using mixtures of different fluids
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K11/00Plants characterised by the engines being structurally combined with boilers or condensers
    • F01K11/02Plants characterised by the engines being structurally combined with boilers or condensers the engines being turbines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K25/00Plants or engines characterised by use of special working fluids, not otherwise provided for; Plants operating in closed cycles and not otherwise provided for
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01KSTEAM ENGINE PLANTS; STEAM ACCUMULATORS; ENGINE PLANTS NOT OTHERWISE PROVIDED FOR; ENGINES USING SPECIAL WORKING FLUIDS OR CYCLES
    • F01K13/00General layout or general methods of operation of complete plants

Definitions

  • the present invention belongs to the flied of energy and power technology.
  • the vapor power device with external combustion for example, its heat source has the dual characteristics of high temperature and variable temperature.
  • the material's temperature resistance and pressure resistance abilities and safety concerns limit the parameters of the cycle's working medium. Therefore, there is a big temperature difference between the working medium and the heat source, which leads to big irreversible loss and low efficiency.
  • thermodynamic cycles are the theoretical basis of thermal energy utilization devices, and the core of energy utilization systems. The establishment, development and application of thermodynamic cycles will play an important role in the rapid development of energy utilization and will promote actively for social progress and productivity development.
  • the present invention proposes a single-working-medium vapor combined cycle.
  • the single working-medium vapor combined cycle and the vapor power device for combined cycle are mainly provided in the present invention, and the specific content of the present invention is as follows:
  • a single-working-medium vapor combined cycle method consisting of ten processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M 1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (3) of the M 2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M 1 +M 2 ) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M 1 +M 2 ) kg of working medium, performing
  • a single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M 1 kg of working medium, performing a depressurization process to set the state (3) to (5) of the M 1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (4) of the M 2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M 2 kg of working medium, performing a depressurization process to set the state (5)
  • a single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (5) of the M 1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (3) of the M 2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the M 2 kg of working medium, performing a depressurization process to set the state (4) to (5) of the M 2 kg of working medium, performing a depressurization process to set the state (5)
  • a single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M 1 kg of working medium, performing a depressurization process to set the state (3) to (7) of the M 1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (4) of the M 2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M 2 kg of working medium, performing a depressurization process to set the state (5)
  • a single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M 1 kg of working medium, performing a depressurization process to set the state (3) to (4) of the M 1 kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the M 1 kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (5) of the M 2 kg of working medium, performing a heat-absorption process
  • a single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M 1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (3) of the M 2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M 1 +M 2 ) kg of working medium, performing a depressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-absorption and
  • a single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M 1 +M) kg of working medium, performing a depressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (a) of the M 2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a
  • a single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M 1 +M) kg of working medium, performing a depressurization process to set the state (3) to (5) of the (M 1 +M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M 2 kg of working medium, performing a
  • a single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (5) of the (M 1 +M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M 2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a
  • a single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M 1 +M) kg of working medium, performing a depressurization process to set the state (3) to (7) of the (M 1 +M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M 2 kg of working medium, performing a
  • a single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M 1 +M) kg of working medium, performing a depressurization process to set the state (3) to (4) of the (M 1 +M) kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the (M 1 +M) kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium
  • a single-working-medium vapor combined cycle method consisting of sixteen processes which are conducted with M 1 kg of working medium, M 2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M 1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M 1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M 1 +M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M 1 +M 2 ) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M 2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a press
  • FIG. 1 is a type 1 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 2 is a type 2 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 3 is a type 3 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 4 is a type 4 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 5 is a type 5 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 6 is a type 6 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 7 is a type 7 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 8 is a type 8 example general flow chart of a 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 single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 11 is a type 11 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 12 is a type 12 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 1 works as follows:
  • the working medium conducts ten processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M 1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-6 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 6-3 of M 2 kg of working medium, a heat-absorption process 3-4 of (M 1 +M 2 ) kg of working medium, a depressurization process 4-5 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 5-6 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a depressurization process 6-7 of (M 1 +H) kg of working medium, a heat-releasing and condensation process 7-1 of (M 1 +H) kg of working medium.
  • Heat absorption processes the process 2-3 of M 1 kg of working medium and the process 3-4 of (M 1 +M 2 ) kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 6-3 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 4-5 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 6-7 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 2 works as follows:
  • the working medium conducts eleven processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M 1 kg of working medium, a depressurization process 3-5 of M 1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 7-4 of M 2 kg of working medium, a heat-absorption process 4-5 of M 2 kg of working medium, a depressurization process 5-6 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 6-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M 1 +H) kg of working medium, a heat-releasing and condensation process 8-1 of (M 1 +H) kg of working medium.
  • Heat absorption processes the process 2-3 of M 1 kg of working medium and the process 4-5 of M 2 kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 7-4 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 3-5 of M 1 kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 7-8 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 3 works as follows:
  • the working medium conducts eleven processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-5 of M 1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 7-3 of M 2 kg of working medium, a heat-absorption process 3-4 of M 2 kg of working medium, a depressurization process 4-5 of M 2 kg of working medium, a depressurization process 5-6 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 6-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M 1 +H) kg of working medium, a heat-releasing and condensation process 8-1 of (M 1 +H) kg of working medium.
  • Heat absorption processes the process 2-5 of M 1 kg of working medium and the process 3-4 of M 2 kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 7-3 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 4-5 of M 1 kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 7-8 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 4 works as follows:
  • the working medium conducts twelve processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M 1 kg of working medium, a depressurization process 3-7 of M 1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-4 of M 2 kg of working medium, a heat-absorption process 4-5 of M 2 kg of working medium, a depressurization process 5-6 of M 2 kg of working medium, a mixing heat-releasing process 6-7 of M 2 kg of working medium and H kg of working medium, a mixing heat-releasing process 7-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M 1 +H) kg of working medium, a heat-releasing and condensation process 9-1 of (M 1 +H) kg
  • Heat absorption processes the process 2-3 of M 1 kg of working medium and the process 4-5 of M 2 kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-4 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 3-7 of M 1 kg of working medium, the depressurization (and expansion) process 5-6 of M 2 kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 5 works as follows:
  • the working medium conducts twelve processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M 1 kg of working medium, a depressurization process 3-4 of M 1 kg of working medium, a mixing heat-releasing process 4-7 of M 1 kg of working medium and H kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-5 of M 2 kg of working medium, a heat-absorption process 5-6 of M 2 kg of working medium, a depressurization process 6-7 of M 2 kg of working medium, a mixing heat-releasing process 7-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M 1 +H) kg of working medium, a heat-releasing and condensation process 9-1 of (M 1 +H) kg
  • Heat absorption processes the process 2-3 of M 1 kg of working medium and the process 5-6 of M 2 kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-5 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 3-4 of M 1 kg of working medium, the depressurization (and expansion) process 6-7 of M 2 kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 6 works as follows:
  • the working medium conducts thirteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M 1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-3 of M 2 kg of working medium, a heat-absorption process 3-4 of (M 1 +M 2 ) kg of working medium, a depressurization process 4-7 of X kg of working medium, a heat-absorption and vaporization process 4-5 of (M 1 +M 2 ⁇ X) kg of working medium, a depressurization process 5-6 of (M 1 +M 2 ⁇ X) kg of working medium, a mixing heat-releasing process 6-7 of (M 1 +M 2 ⁇ X) kg of working medium and H kg of working medium, a mixing heat-releasing process 7-8 of (M 1 +M 2
  • Heat absorption processes the process 2-3 of M 1 kg of working medium, the process 3-4 of (M 1 +M 2 ) kg of working medium and the process 4-5 of (M 1 +M 2 ⁇ X) kg of working medium.
  • the absorbed heat is usually provided by an external heat source.
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-3 of M 2 kg of working medium is usually achieved by a compressor.
  • the depressurization (and expansion) process 4-7 of X kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ⁇ X) kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 7 works as follows:
  • the working medium conducts thirteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M 1 +M) kg of working medium, a depressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-6 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 6-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a depressurization process a-3 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 3-4 of (M 1 +M 2 ) kg of working medium, a depressurization process 4-5 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 5-6 of (M 1 +M 2 ) kg of working medium and H kg of working medium,
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 6-a of M 2 kg of working medium and the pressurization process a-3 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 4-5 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 6-7 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 8 works as follows:
  • the working medium conducts fourteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M 1 +M) kg of working medium, a depressurization process 3-5 of (M 1 +M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 7-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-4 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 4-5 of (M 2 ⁇ M) kg of working medium, a depressurization process 5-6 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 6-7 of
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 7-a of M 2 kg of working medium and the pressurization process a-4 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 3-5 of (M 1 +M) kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 7-8 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 9 works as follows:
  • the working medium conducts fourteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-5 of (M 1 +M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 7-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-3 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 3-4 of (M 2 ⁇ M) kg of working medium, a depressurization process 4-5 of (M 2 ⁇ M) kg of working medium, a depressurization process 5-6 of (M 1 +M 2 ) kg of working medium, a mixing heat-releasing process 6-7
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 7-a of M 2 kg of working medium and the pressurization process a-3 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 4-5 of (M 2 ⁇ M) kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ) kg of working medium and the depressurization (and expansion) process 7-8 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 10 works as follows:
  • the working medium conducts fifteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M 1 +M) kg of working medium, a depressurization process 3-7 of (M 1 +M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-4 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 4-5 of (M 2 ⁇ M) kg of working medium, a depressurization process 5-6 of (M 2 ⁇ M) kg of working medium, a mixing heat-releasing process 6-7 of (
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-a of M 2 kg of working medium and the pressurization process a-4 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 3-7 of (M 1 +M) kg of working medium, the depressurization (and expansion) process 5-6 of (M 2 ⁇ M) kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 11 works as follows:
  • the working medium conducts fifteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M 1 +M) kg of working medium, a depressurization process 3-4 of (M 1 +M) kg of working medium, a mixing heat-releasing process 4-7 of (M 1 +M) kg of working medium and H kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-5 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 5-6 of (M 2 ⁇ M) kg of working medium, a depressurization
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-a of M 2 kg of working medium and the pressurization process a-5 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 3-4 of (M 1 +M) kg of working medium, the depressurization (and expansion) process 6-7 of (M 2 ⁇ M) kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the T-s diagram of the single-working-medium vapor combined cycle in FIG. 12 works as follows:
  • the working medium conducts sixteen processes: a pressurization process 1-2 of M 1 kg of working medium, a heat-absorption process 2-b of M 1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M 1 +M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M 1 +M 2 ) kg of working medium and H kg of working medium, a pressurization process 8-a of M 2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-3 of (M 2 ⁇ M) kg of working medium, a heat-absorption process 3-4 of (M 1 +M 2 ) kg of working medium, a depressurization process 4-7 of X kg of working medium, a heat-absorption process 4-5 of (M 1 +M 2 ⁇ X) kg of working medium, a depressurization process 5-6 of
  • the pressurization process 1-2 of M 1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps.
  • the pressurization process 8-a of M 2 kg of working medium and the pressurization process a-3 of (M 2 ⁇ M) kg of working medium are usually achieved by compressors.
  • the depressurization (and expansion) process 4-7 of X kg of working medium, the depressurization (and expansion) process 5-6 of (M 1 +M 2 ⁇ X) kg of working medium and the depressurization (and expansion) process 8-9 of (M 1 +H) kg of working medium are usually achieved by expanders.
  • the total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • the technical effects of the present invention The single-working-medium vapor combined cycle proposed by the present invention has the following effects and advantages:
  • the present invention greatly reduces the amount of heat absorbed in the phase-change region, and correspondingly increases the amount of heat absorbed in the high-temperature region. Therefore, the single-working-medium vapor combined cycle can achieve high efficiency.
  • the present invention possesses simple methods, reasonable processes and good applicability. It is a common technology to realize the effective utilization of temperature differences.
  • 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.
  • the present invention adopts the low-pressure and high-temperature operation mode in the high-temperature region; therefore, the contradiction among thermal efficiency, the working medium's parameters and the material's temperature resistance and pressure resistance abilities, which is common in traditional vapor power devices, can be resolved.
  • the vapor power device provided in the present invention can operate at a low pressure.
  • the present invention provides theoretical support for improving the safety of device operation.
  • 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.
  • the present invention expands the range of thermodynamic cycles for temperature difference utilization, and contributes to a higher-efficiency power generation of high-temperature heat sources and variable-temperature heat sources.

Landscapes

  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Engine Equipment That Uses Special Cycles (AREA)

Abstract

The single-working-medium vapor combined cycle is provided in this invitation and belongs to the field of energy and power technology. A single-working-medium vapor combined cycle consists of ten processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption and vaporization process 2-3 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-6 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 6-3 of M2 kg of working medium, a heat-absorption process 3-4 of (M1+M2) kg of working medium, a depressurization process 4-5 of (M1+M2) kg of working medium, a mixing heat-releasing process 5-6 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 6-7 of (M1+H) kg of working medium, a heat-releasing and condensation process 7-1 of (M1+H) kg of working medium.

Description

    FIELD
  • The present invention belongs to the flied of energy and power technology.
  • BACKGROUND
  • Cold demand, heat demand and power demand are common in human life and production. It is an important way to obtain and provide power by the conversion of thermal energy into mechanical energy. In general, the temperature of heat source reduces and varies with the release of heat. When fossil fuels are used as the primary energy, the heat source has the dual characteristics of both high temperature and variable temperature. Therefore, only one single thermodynamic cycle cannot achieve an ideal efficiency for refrigeration, heating or power generation.
  • Take the vapor power device with external combustion for example, its heat source has the dual characteristics of high temperature and variable temperature. For those vapor power devices based on the Rankine cycle, the material's temperature resistance and pressure resistance abilities and safety concerns limit the parameters of the cycle's working medium. Therefore, there is a big temperature difference between the working medium and the heat source, which leads to big irreversible loss and low efficiency.
  • Humans need new basic theory of thermal science to use fuel or other high temperature thermal energy simply, actively, efficiently for achieving refrigeration, heating or power. In the basic theory system of thermal science, thermodynamic cycles are the theoretical basis of thermal energy utilization devices, and the core of energy utilization systems. The establishment, development and application of thermodynamic cycles will play an important role in the rapid development of energy utilization and will promote actively for social progress and productivity development.
  • Based on the principles of simple, active and efficient utilization of temperature difference, aiming at the power generation application of high temperature heat sources or variable temperature heat sources, and striving to provide theoretical support for the simplification and high efficiency of thermo-power systems, the present invention proposes a single-working-medium vapor combined cycle.
  • THE CONTENTS OF THE PRESENT INVENTION
  • The single working-medium vapor combined cycle and the vapor power device for combined cycle are mainly provided in the present invention, and the specific content of the present invention is as follows:
  • 1. A single-working-medium vapor combined cycle method consisting of ten processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (5) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (6) to (7) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (7) to (1) of the (M1+H) kg of working medium.
  • 2. A single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (5) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (4) of the M2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
  • 3. A single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (5) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the M2 kg of working medium, performing a depressurization process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
  • 4. A single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (7) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (4) of the M2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the M2 kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • 5. A single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (4) of the M1 kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the M1 kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (5) of the M2 kg of working medium, performing a heat-absorption 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 (7) of the M2 kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • 6. A single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-absorption and vaporization process to set the state (4) to (5) of the (M1+M2−X) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2−X) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2−X) kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • 7. A single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a depressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (5) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (6) to (7) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (7) to (1) of the (M1+H) kg of working medium.
  • 8. A single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (5) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (4) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
  • 9. A single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (5) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M2−M) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
  • 10. A single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (7) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (4) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M2−M) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M2−M) kg of working medium and M kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • 11. A single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (4) of the (M1+M) kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the (M1+M) kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (5) of the (M2−M) kg of working medium, performing a heat-absorption 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 (7) of the (M2−M) kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • 12. A single-working-medium vapor combined cycle method consisting of sixteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M1+M2−X) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2−X) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2−X) kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
  • BRIEF DESCRIPTION OF THE FIGURES
  • FIG. 1 is a type 1 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 2 is a type 2 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 3 is a type 3 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 4 is a type 4 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 5 is a type 5 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 6 is a type 6 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 7 is a type 7 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 8 is a type 8 example general flow chart of a 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 single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 11 is a type 11 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • FIG. 12 is a type 12 example general flow chart of a single-working-medium vapor combined cycle provided in the present invention.
  • DETAILED DESCRIPTION
  • The first thing to note is that, when describing the cycle's structures and processes, the processes will not be repeatedly described if not necessary, and the obvious processes will not be described. The detailed description of the present invention is as follows:
  • The T-s diagram of the single-working-medium vapor combined cycle in FIG. 1 works as follows:
  • (1) From the perspective of the cycle's processes.
  • The working medium conducts ten processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-6 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 6-3 of M2 kg of working medium, a heat-absorption process 3-4 of (M1+M2) kg of working medium, a depressurization process 4-5 of (M1+M2) kg of working medium, a mixing heat-releasing process 5-6 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 6-7 of (M1+H) kg of working medium, a heat-releasing and condensation process 7-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-3 of M1 kg of working medium and the process 3-4 of (M1+M2) kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 6 points. The heat-releasing process 5-6 is completed. The heat released by (M1+H) kg of working medium in process 7-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 6-3 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 4-5 of (M1+M2) kg of working medium and the depressurization (and expansion) process 6-7 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M1 kg of working medium, a depressurization process 3-5 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 7-4 of M2 kg of working medium, a heat-absorption process 4-5 of M2 kg of working medium, a depressurization process 5-6 of (M1+M2) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M1+H) kg of working medium, a heat-releasing and condensation process 8-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-3 of M1 kg of working medium and the process 4-5 of M2 kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 6 points. The heat-releasing process 6-7 is completed. The heat released by (M1+H) kg of working medium in process 8-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 7-4 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 3-5 of M1 kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2) kg of working medium and the depressurization (and expansion) process 7-8 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-5 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 7-3 of M2 kg of working medium, a heat-absorption process 3-4 of M2 kg of working medium, a depressurization process 4-5 of M2 kg of working medium, a depressurization process 5-6 of (M1+M2) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M1+H) kg of working medium, a heat-releasing and condensation process 8-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-5 of M1 kg of working medium and the process 3-4 of M2 kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. The heat released by (M1+H) kg of working medium in process 8-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 7-3 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 4-5 of M1 kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2) kg of working medium and the depressurization (and expansion) process 7-8 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M1 kg of working medium, a depressurization process 3-7 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-4 of M2 kg of working medium, a heat-absorption process 4-5 of M2 kg of working medium, a depressurization process 5-6 of M2 kg of working medium, a mixing heat-releasing process 6-7 of M2 kg of working medium and H kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-3 of M1 kg of working medium and the process 4-5 of M2 kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: M2 kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of M2 kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 8 points. The heat-releasing process 7-8 is completed. The heat released by (M1+H) kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-4 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 3-7 of M1 kg of working medium, the depressurization (and expansion) process 5-6 of M2 kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M1 kg of working medium, a depressurization process 3-4 of M1 kg of working medium, a mixing heat-releasing process 4-7 of M1 kg of working medium and H kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-5 of M2 kg of working medium, a heat-absorption process 5-6 of M2 kg of working medium, a depressurization process 6-7 of M2 kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-3 of M1 kg of working medium and the process 5-6 of M2 kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: M1 kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of M2 kg of working medium is reduced to 7 points. The heat-releasing process 4-7 is completed. (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 8 points. The heat-releasing process 7-8 is completed. The heat released by (M1+H) kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-5 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 3-4 of M1 kg of working medium, the depressurization (and expansion) process 6-7 of M2 kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 pressurization process 1-2 of M1 kg of working medium, a heat-absorption vaporization and superheating process 2-3 of M1 kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-3 of M2 kg of working medium, a heat-absorption process 3-4 of (M1+M2) kg of working medium, a depressurization process 4-7 of X kg of working medium, a heat-absorption and vaporization process 4-5 of (M1+M2−X) kg of working medium, a depressurization process 5-6 of (M1+M2−X) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2−X) kg of working medium and H kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: the process 2-3 of M1 kg of working medium, the process 3-4 of (M1+M2) kg of working medium and the process 4-5 of (M1+M2−X) kg of working medium. The absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2−X) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2−X) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. The heat released by (M1+H) kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-3 of M2 kg of working medium is usually achieved by a compressor. The depressurization (and expansion) process 4-7 of X kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2−X) kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 thirteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M1+M) kg of working medium, a depressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-6 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 6-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a depressurization process a-3 of (M2−M) kg of working medium, a heat-absorption process 3-4 of (M1+M2) kg of working medium, a depressurization process 4-5 of (M1+M2) kg of working medium, a mixing heat-releasing process 5-6 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 6-7 of (M1+H) kg of working medium, a heat-releasing and condensation process 7-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-3 of (M1+M) kg of working medium and the process 3-4 of (M1+M2) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 6 points. The heat-releasing process 5-6 is completed. The heat released by (M1+H) kg of working medium in process 7-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 6-a of M2 kg of working medium and the pressurization process a-3 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 4-5 of (M1+M2) kg of working medium and the depressurization (and expansion) process 6-7 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 fourteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M1+M) kg of working medium, a depressurization process 3-5 of (M1+M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 7-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-4 of (M2−M) kg of working medium, a heat-absorption process 4-5 of (M2−M) kg of working medium, a depressurization process 5-6 of (M1+M2) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M1+H) kg of working medium, a heat-releasing and condensation process 8-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-3 of (M1+M) kg of working medium and the process 4-5 of (M2−M) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. The heat released by (M1+H) kg of working medium in process 8-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 7-a of M2 kg of working medium and the pressurization process a-4 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 3-5 of (M1+M) kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2) kg of working medium and the depressurization (and expansion) process 7-8 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 fourteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-5 of (M1+M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-7 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 7-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-3 of (M2−M) kg of working medium, a heat-absorption process 3-4 of (M2−M) kg of working medium, a depressurization process 4-5 of (M2−M) kg of working medium, a depressurization process 5-6 of (M1+M2) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 7-8 of (M1+H) kg of working medium, a heat-releasing and condensation process 8-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-5 of (M1+M) kg of working medium and the process 3-4 of (M2−M) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. The heat released by M1 kg of working medium in process 8-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 7-a of M2 kg of working medium and the pressurization process a-3 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 4-5 of (M2−M) kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2) kg of working medium and the depressurization (and expansion) process 7-8 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the single-working-medium vapor combined cycle in FIG. 10 works as follows:
  • (1) From the perspective of the cycle's processes.
  • The working medium conducts fifteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M1+M) kg of working medium, a depressurization process 3-7 of (M1+M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-4 of (M2−M) kg of working medium, a heat-absorption process 4-5 of (M2−M) kg of working medium, a depressurization process 5-6 of (M2−M) kg of working medium, a mixing heat-releasing process 6-7 of (M2−M) kg of working medium and M kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-3 of (M1+M) kg of working medium and the process 4-5 of (M2−M) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M2−M) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M2−M) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 8 points. The heat-releasing process 7-8 is completed. The heat released by M1 kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-a of M2 kg of working medium and the pressurization process a-4 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 3-7 of (M1+M) kg of working medium, the depressurization (and expansion) process 5-6 of (M2−M) kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the single-working-medium vapor combined cycle in FIG. 11 works as follows:
  • (1) From the perspective of the cycle's processes.
  • The working medium conducts fifteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M1+M) kg of working medium, a depressurization process 3-4 of (M1+M) kg of working medium, a mixing heat-releasing process 4-7 of (M1+M) kg of working medium and H kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-5 of (M2−M) kg of working medium, a heat-absorption process 5-6 of (M2−M) kg of working medium, a depressurization process 6-7 of (M2−M) kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-3 of (M1+M) kg of working medium and the process 4-5 of (M2−M) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M) kg of working medium is reduced to 7 points. The heat-releasing process 4-7 is completed. (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2) kg of working medium is reduced to 8 points. The heat-releasing process 7-8 is completed. The heat released by M1 kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-a of M2 kg of working medium and the pressurization process a-5 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 3-4 of (M1+M) kg of working medium, the depressurization (and expansion) process 6-7 of (M2−M) kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The T-s diagram of the 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 sixteen processes: a pressurization process 1-2 of M1 kg of working medium, a heat-absorption process 2-b of M1 kg of working medium, a heat-absorption vaporization and superheating process b-3 of (M1+M) kg of working medium, a pressurization process 1-e of H kg of working medium, a mixing heat-absorption process e-8 of (M1+M2) kg of working medium and H kg of working medium, a pressurization process 8-a of M2 kg of working medium, a heat-releasing and condensation process a-b of M kg of working medium, a pressurization process a-3 of (M2−M) kg of working medium, a heat-absorption process 3-4 of (M1+M2) kg of working medium, a depressurization process 4-7 of X kg of working medium, a heat-absorption process 4-5 of (M1+M2−X) kg of working medium, a depressurization process 5-6 of (M1+M2−X) kg of working medium, a mixing heat-releasing process 6-7 of (M1+M2−X) kg of working medium and H kg of working medium, a mixing heat-releasing process 7-8 of (M1+M2) kg of working medium and H kg of working medium, a depressurization process 8-9 of (M1+H) kg of working medium, a heat-releasing and condensation process 9-1 of (M1+H) kg of working medium.
  • (2) From the perspective of energy conversion.
  • {circle around (1)} Heat absorption processes: The heat to be absorbed by M1 kg of working medium in process 2-b is released by M kg of superheated vapor during the mixing process. As for the process b-3 of (M1+M) kg of working medium, the process 3-4 of (M1+M2) kg of working medium and the process 4-5 of (M1+M2−X) kg of working medium, the absorbed heat is usually provided by an external heat source.
  • {circle around (2)} Heat-releasing processes: (M1+M2−X) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2−X) kg of working medium is reduced to 7 points. The heat-releasing process 6-7 is completed. (M1+M2) kg of working medium mixes with H kg of working medium and releases heat to it. The temperature of (M1+M2)kg of working medium is reduced to 8 points. The heat-releasing process 7-8 is completed. The heat released by M1 kg of working medium in process 9-1 is usually released to the low-temperature heat sink, or be supplied to the heat user when cogeneration is applicable.
  • {circle around (3)} Energy conversion processes. The pressurization process 1-2 of M1 kg of working medium and the pressurization process 1-e of H kg of working medium are usually achieved by pumps. The pressurization process 8-a of M2 kg of working medium and the pressurization process a-3 of (M2−M) kg of working medium are usually achieved by compressors. The depressurization (and expansion) process 4-7 of X kg of working medium, the depressurization (and expansion) process 5-6 of (M1+M2−X) kg of working medium and the depressurization (and expansion) process 8-9 of (M1+H) kg of working medium are usually achieved by expanders. The total expansion work output is greater than the total pressurization work input; therefore, thermal energy is converted into power (the cycle's net work), and the single-working-medium vapor combined cycle is completed.
  • The technical effects of the present invention: The single-working-medium vapor combined cycle proposed by the present invention has the following effects and advantages:
  • (1) A basic theory of thermal energy (temperature difference) utilization has been created.
  • (2) The present invention greatly reduces the amount of heat absorbed in the phase-change region, and correspondingly increases the amount of heat absorbed in the high-temperature region. Therefore, the single-working-medium vapor combined cycle can achieve high efficiency.
  • (3) The present invention possesses simple methods, reasonable processes and good applicability. It is a common technology to realize the effective utilization of temperature differences.
  • (4) 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.
  • (5) The processes in the present invention are shared and reduced, which provides a theoretical basis for reducing equipment investment and improves efficiency.
  • (6) In the high temperature region or the variable temperature region, both the cycle's working medium and the heat source medium conduct vapor. Therefore, the temperature difference loss is reduced and the efficiency is improved.
  • (7) The present invention adopts the low-pressure and high-temperature operation mode in the high-temperature region; therefore, the contradiction among thermal efficiency, the working medium's parameters and the material's temperature resistance and pressure resistance abilities, which is common in traditional vapor power devices, can be resolved.
  • (8) Under the precondition of achieving a high thermal efficiency, the vapor power device provided in the present invention can operate at a low pressure. The present invention provides theoretical support for improving the safety of device operation.
  • (9) 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.
  • (10) The present invention expands the range of thermodynamic cycles for temperature difference utilization, and contributes to a higher-efficiency power generation of high-temperature heat sources and variable-temperature heat sources.

Claims (12)

What is claimed is:
1. A single-working-medium vapor combined cycle method consisting of ten processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (5) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (6) to (7) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (7) to (1) of the (M1+H) kg of working medium.
2. A single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (5) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (4) of the M2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
3. A single-working-medium vapor combined cycle method consisting of eleven processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (5) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the M2 kg of working medium, performing a depressurization process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
4. A single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (7) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (4) of the M2 kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the M2 kg of working medium, performing a depressurization process to set the state (5) to (6) of the M2 kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the M2 kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
5. A single-working-medium vapor combined cycle method consisting of twelve processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a depressurization process to set the state (3) to (4) of the M1 kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the M1 kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (5) of the M2 kg of working medium, performing a heat-absorption 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 (7) of the M2 kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
6. A single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (2) to (3) of the M1 kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (3) of the M2 kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-absorption and vaporization process to set the state (4) to (5) of the (M1+M2−X) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2−X) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2−X) kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
7. A single-working-medium vapor combined cycle method consisting of thirteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (6) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a depressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (5) to (6) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (6) to (7) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (7) to (1) of the (M1+H) kg of working medium.
8. A single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (5) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (4) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
9. A single-working-medium vapor combined cycle method consisting of fourteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (5) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (7) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M2−M) kg of working medium, performing a depressurization process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (7) to (8) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (8) to (1) of the (M1+H) kg of working medium.
10. A single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (7) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (4) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M2−M) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M2−M) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M2−M) kg of working medium and M kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
11. A single-working-medium vapor combined cycle method consisting of fifteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a depressurization process to set the state (3) to (4) of the (M1+M) kg of working medium, performing a mixing heat-releasing process to set the state (4) to (7) of the (M1+M) kg of working medium and H kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (5) of the (M2−M) kg of working medium, performing a heat-absorption 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 (7) of the (M2−M) kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium.
12. A single-working-medium vapor combined cycle method consisting of sixteen processes which are conducted with M1 kg of working medium, M2 kg of working medium and H kg of working medium separately or jointly: performing a pressurization process to set a state (1) to (2) of the M1 kg of working medium, performing a heat-absorption process to set the state (2) to (b) of the M1 kg of working medium, performing a heat-absorption and vaporization process to set the state (b) to (3) of the (M1+M) kg of working medium, performing a pressurization process to set a state (1) to (e) of the H kg of working medium, performing a mixing heat-absorption process to set the state (e) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a pressurization process to set the state (8) to (a) of the M2 kg of working medium, performing a heat-releasing and condensation process to set the state (a) to (b) of the M kg of working medium, performing a pressurization process to set a state (a) to (3) of the (M2−M) kg of working medium, performing a heat-absorption process to set the state (3) to (4) of the (M1+M2) kg of working medium, performing a depressurization process to set the state (4) to (7) of the X kg of working medium, performing a heat-absorption process to set the state (4) to (5) of the (M1+M2−X) kg of working medium, performing a depressurization process to set the state (5) to (6) of the (M1+M2−X) kg of working medium, performing a mixing heat-releasing process to set the state (6) to (7) of the (M1+M2−X) kg of working medium and H kg of working medium, performing a mixing heat-releasing process to set the state (7) to (8) of the (M1+M2) kg of working medium and H kg of working medium, performing a depressurization process to set the state (8) to (9) of the (M1+H) kg of working medium, performing a heat-releasing and condensation process to set the state (9) to (1) of the (M1+H) kg of working medium
US17/604,396 2019-04-18 2020-04-16 Single-working-medium vapor combined cycle Abandoned US20220381159A1 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
CN201910349000.5 2019-04-18
CN201910349000 2019-04-18
PCT/CN2020/000073 WO2020211475A1 (en) 2019-04-18 2020-04-16 Single working medium steam combined circulation

Publications (1)

Publication Number Publication Date
US20220381159A1 true US20220381159A1 (en) 2022-12-01

Family

ID=72194905

Family Applications (1)

Application Number Title Priority Date Filing Date
US17/604,396 Abandoned US20220381159A1 (en) 2019-04-18 2020-04-16 Single-working-medium vapor combined cycle

Country Status (3)

Country Link
US (1) US20220381159A1 (en)
CN (1) CN111608754A (en)
WO (1) WO2020211475A1 (en)

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2002285907A (en) * 2001-03-27 2002-10-03 Sanyo Electric Co Ltd Recovery refrigeration system of exhaust heat for micro gas turbine
JP2009191762A (en) * 2008-02-15 2009-08-27 Panasonic Corp Combined cycle device
CN101614139A (en) * 2009-07-31 2009-12-30 王世英 Multicycle power generation thermodynamic system
CN102679611B (en) * 2012-04-24 2014-07-30 李华玉 Multi-end heat supply first kind absorption type heat pump
CN105041472A (en) * 2014-06-09 2015-11-11 李华玉 Combined cycle energy supply system
US11008898B2 (en) * 2016-10-12 2021-05-18 Huayu Li Single working-medium vapor combined cycle and vapor power device for combined cycle
CN108119196B (en) * 2017-12-07 2020-05-01 李华玉 Combined cycle power plant

Also Published As

Publication number Publication date
WO2020211475A1 (en) 2020-10-22
CN111608754A (en) 2020-09-01

Similar Documents

Publication Publication Date Title
WO2020220727A1 (en) Combined-cycle power device
US20220213816A1 (en) Single-working-medium vapor combined cycle
US20220213812A1 (en) Single-working-medium vapor combined cycle
US20220381159A1 (en) Single-working-medium vapor combined cycle
US20220213817A1 (en) Single-working-medium vapor combined cycle
US20220372894A1 (en) Single-working-medium vapor combined cycle
US20220290582A1 (en) Single-working-medium vapor combined cycle
US20220178277A1 (en) Single-working-medium vapor combined cycle
US20220195895A1 (en) Single-working-medium vapor combined cycle
US20240018885A1 (en) Single-working-medium vapor combined cycle
US20220213814A1 (en) Single-working-medium vapor combined cycle
WO2021042649A1 (en) Single working medium steam combined cycle
WO2021042647A1 (en) Single working medium steam combined cycle
WO2021036153A1 (en) Single working fluid steam combined cycle
WO2021042646A1 (en) Single working medium steam combined cycle
WO2021042648A1 (en) Single working medium-vapor combined cycle
US20220252307A1 (en) Reversed single-working-medium vapor combined cycle
US20220364774A1 (en) Reversed single-working-medium vapor combined cycle
WO2021036152A1 (en) Single working medium steam combined cycle
US20220260285A1 (en) Reversed single-working-medium vapor combined cycle
US20220282890A1 (en) Reversed single-working-medium vapor combined cycle
US20220316766A1 (en) Reversed single-working-medium vapor combined cycle
WO2019113721A1 (en) Combined cycle power device

Legal Events

Date Code Title Description
STPP Information on status: patent application and granting procedure in general

Free format text: APPLICATION UNDERGOING PREEXAM PROCESSING

STCB Information on status: application discontinuation

Free format text: ABANDONED -- INCOMPLETE APPLICATION (PRE-EXAMINATION)