KR101189213B1 - Apparatus for generating electricity using cooling water - Google Patents

Apparatus for generating electricity using cooling water Download PDF

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KR101189213B1
KR101189213B1 KR1020100020871A KR20100020871A KR101189213B1 KR 101189213 B1 KR101189213 B1 KR 101189213B1 KR 1020100020871 A KR1020100020871 A KR 1020100020871A KR 20100020871 A KR20100020871 A KR 20100020871A KR 101189213 B1 KR101189213 B1 KR 101189213B1
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South Korea
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cooling water
turbine
reservoir
energy
discharged
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KR1020100020871A
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Korean (ko)
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KR20110101686A (en
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황규찬
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황규찬
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03BMACHINES OR ENGINES FOR LIQUIDS
    • F03B13/00Adaptations of machines or engines for special use; Combinations of machines or engines with driving or driven apparatus; Power stations or aggregates
    • F03B13/06Stations or aggregates of water-storage type, e.g. comprising a turbine and a pump
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03BMACHINES OR ENGINES FOR LIQUIDS
    • F03B17/00Other machines or engines
    • F03B17/06Other machines or engines using liquid flow with predominantly kinetic energy conversion, e.g. of swinging-flap type, "run-of-river", "ultra-low head"
    • F03B17/062Other machines or engines using liquid flow with predominantly kinetic energy conversion, e.g. of swinging-flap type, "run-of-river", "ultra-low head" with rotation axis substantially at right angle to flow direction
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2220/00Application
    • F05B2220/30Application in turbines
    • F05B2220/32Application in turbines in water turbines
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2220/00Application
    • F05B2220/70Application in combination with
    • F05B2220/706Application in combination with an electrical generator
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/20Hydro energy
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/16Mechanical energy storage, e.g. flywheels or pressurised fluids

Abstract

본 발명은 화력 발전소에서 냉각계통에 공급해주는 냉각수를 펌핑하여 저수조에 저장할 때 취수구에서 저수조로 배출되는 냉각수의 낙차와 수량을 이용하여 발전이 이루어지도록 하는 냉각수 낙차를 이용한 발전장치에 관한 것이다.
본 발명은 화력 발전소에 설치되고 측면 상측으로 취수관에서 펌핑된 냉각수가 배출되어 일정 높이로 채워지는 냉각수 저수조에 있어서, 상기 저수조의 배출구 입구에 냉각수의 배출 낙차와 수량을 이용하여 회전 동력을 발생시키는 터빈을 설치하고, 상기 터빈의 회전력을 받아 발전이 이루어지게 하는 발전기를 구비함으로써 이루어진다.
The present invention relates to a power generation apparatus using a coolant drop to generate power by using a drop and a quantity of coolant discharged from a water intake to a reservoir when pumping the coolant supplied to a cooling system in a thermal power plant.
The present invention is installed in a thermal power plant and the cooling water reservoir filled with a predetermined height by discharged cooling water pumped from the intake pipe to the upper side, generating rotational power by using the discharge drop and the quantity of cooling water at the inlet of the reservoir It is achieved by installing a turbine, and having a generator for generating power under the rotational force of the turbine.

Description

냉각수 낙차를 이용한 발전장치{APPARATUS FOR GENERATING ELECTRICITY USING COOLING WATER}Generator using cooling water drop {APPARATUS FOR GENERATING ELECTRICITY USING COOLING WATER}

본 발명은 화력 발전소에서 냉각계통에 공급해주는 냉각수를 펌핑하여 저수조에 저장할 때 취수구에서 저수조로 배출되는 냉각수의 낙차와 수량을 이용하여 발전이 이루어지도록 하는 냉각수 낙차를 이용한 발전장치에 관한 것이다.The present invention relates to a power generation apparatus using a coolant drop to generate power by using a drop and a quantity of coolant discharged from a water intake to a reservoir when pumping the coolant supplied to a cooling system in a thermal power plant.

화력발전은 화석연료를 연소시켜 발생하는 열로 물을 가열하여 고온 고압의 증기를 발생시킨 후 고압의 증기로 증기터빈을 회전시켜 동력인 전기를 발전하게 되고, 증기터빈을 통과한 증기는 복수기(復水器)에서 복수되며, 이때 많은 량의 냉각수가 지속적으로 필요하게 된다.Thermal power plants heat water with the heat generated by burning fossil fuels to generate high-temperature, high-pressure steam, and then rotate the steam turbine with high-pressure steam to generate electricity. The steam passed through the steam turbine is a condenser (復). It is plural in water, where a large amount of coolant is constantly needed.

따라서 화력 발전소에서는 발전 중 발생되는 열을 식히기 위해 해수나 강수를 이용하기 때문에 냉각수 취수를 위한 설비를 구비하게 되는 데, 이들 냉각수 취수 시설은 취수관에 설치된 펌프를 이용하여 냉각수(해수가 대부분임)를 지상의 저수조에 펌핑하여 채운 후 저수조에 채워진 냉각수를 사용하고 있다.Therefore, since thermal power plants use seawater or precipitation to cool down heat generated during power generation, they have facilities for cooling water intake. These cooling water intake facilities use a pump installed in the intake pipe to make the most of the cooling water (sea water). Is filled with water in the reservoir and then the coolant filled in the reservoir is used.

이러한 저수조(10)는 도 1에 도시된 바와 같이 상당한 면적을 갖게 되고, 상기 저수조(10)의 측면에서는 도 2와 같이 냉각수 배출구(20)를 형성하여 취수관에서 펌프에 의해 펌핑된 냉각수가 배출구(20)를 통하여 도 3과 같이 배출되어 저수조(10)에 채워지게 된다.The reservoir 10 has a considerable area as shown in FIG. 1, and on the side of the reservoir 10, a cooling water outlet 20 is formed as shown in FIG. 2 to discharge the cooling water pumped by the pump in the intake pipe. It is discharged as shown in Figure 3 through the 20 is filled in the reservoir (10).

상기 저수조(10)는 배출구(20)에서 배출되는 냉각수를 채운 후 발전소의 냉각설비에 사용하게 되며, 취수관에서 펌프에 의해 펌핑되는 냉각수는 배출구(20)에서 배출되어 저수조(10)에 채워지게 되나, 상기 배출구(20)에서 배출되는 냉각수는 높지는 않지만 일정한 낙차를 갖고 저수조(10)에 떨어지게 되는 한편 수량은 대단히 많다.The reservoir 10 is used in the cooling facility of the power plant after filling the cooling water discharged from the outlet 20, the cooling water pumped by the pump in the intake pipe is discharged from the outlet 20 to be filled in the reservoir 10 However, the cooling water discharged from the outlet 20 is not high, but falls in the reservoir 10 with a certain drop, while the quantity is very large.

현재의 화력 발전소에서는 냉각 기능을 마친 냉각수가 바다로 되돌아가게 하는 배출관에서는 낙차를 이용하여 발전을 하는 장치는 있으나, 냉각수가 저수조(10)에 채워질 때 배출구(20)에서 저수조(10)로 떨어질 때의 낙차를 이용하지는 않고 있다.In the current thermal power plant, there is a device that generates power by using a drop in the discharge pipe to return the cooling water to the sea after the cooling function, but when the cooling water is filled in the reservoir 10 when it falls from the outlet 20 to the reservoir 10 We do not use drop of.

본 발명은 화력 발전소에 설치된 저수조에 냉각수를 배출시키는 배출구에서 배출되는 냉각수의 낙차를 활용하지 못하는 문제를 해결하기 위한 것으로, 취수관에서 펌핑되어 저수조의 배출구에서 배출되는 냉각수의 낙차와 수량를 이용하여 발전이 이루어지도록 하는 것이다.The present invention is to solve the problem of not using the drop of the coolant discharged from the outlet for discharging the coolant in the reservoir installed in the thermal power plant, the power generation by using the drop and the amount of coolant discharged from the outlet of the reservoir pumped from the intake pipe To make this happen.

본 발명은 화력 발전소에 설치되고 측면 상측으로 취수관에서 펌핑된 냉각수가 배출되어 일정 높이로 채워지는 냉각수 저수조에 있어서, 상기 저수조의 배출구 입구에 냉각수의 배출 낙차와 수량을 이용하여 회전 동력을 발생시키는 터빈을 설치하고, 상기 터빈의 회전력을 받아 발전이 이루어지게 하는 발전기를 구비함으로써 이루어지는 것으로, 냉각수가 배출구에서 떨어지는 낙차와 배출되는 수량을 이용하여 발전을 하게 되어 그린 에너지를 생산하는 한편 에너지를 절약할 수 있게 된다.The present invention is installed in a thermal power plant and the cooling water reservoir filled with a predetermined height by discharged cooling water pumped from the intake pipe to the upper side, generating rotational power by using the discharge drop and the quantity of cooling water at the inlet of the reservoir By installing a turbine, and having a generator for generating power under the rotational force of the turbine, the cooling water is generated by using the falling water falling from the discharge and discharged water to produce green energy while saving energy It becomes possible.

본 발명은 취수관에서 펌핑되어 저수조의 배출구에서 배출되는 냉각수의 낙차 에너지를 기존에 활용하지 못하였던 문제를 배제하고, 배출구의 하측으로 터빈을 설치하여 저수조에 배출되는 냉각수의 낙차 에너지를 전기에너지로 전환시켜 활용하도록 함으로써, 에너지를 절약할 수 있음은 물론 그린 에너지의 생산이 가능한 효과가 있다.The present invention eliminates the problem of the conventional use of the free energy of the cooling water discharged from the outlet of the water tank pumped in the intake pipe, install the turbine to the lower side of the discharge port to the free energy of cooling water discharged to the reservoir as electrical energy By converting and using, not only energy saving but also green energy production is possible.

특히, 냉각수의 배출에 따른 낙차 에너지와 수량 에너지는 현재 활용하지 못하고 있는 것으로, 본 발명은 새로운 에너지를 이용하는 효과가 있다. In particular, the free fall energy and water energy according to the discharge of the cooling water is not currently utilized, the present invention has the effect of using the new energy.

도 1은 기존 저수조 사진
도 2는 저수조의 배출구 사진
도 3은 저수조의 배출구로 냉각수가 배출되는 사진
도 4는 본 발명의 설치상태 측면도
1 is a conventional reservoir photo
Figure 2 is a photo of the outlet of the reservoir
Figure 3 is a photograph of the cooling water discharged to the outlet of the reservoir
Figure 4 is a side view of the installation state of the present invention

본 발명은 화력 발전소에 필수적으로 구비되어야 하는 냉각수를 저장하는 저수조에 냉각수를 채울 때 냉각수가 배출되는 낙차와 수량 에너지를 이용하여 발전이 이루어지도록 하는 것으로, 본 발명은 저수조의 배출구 하측으로 터빈을 설치하여 낙차와 수량 에너지를 회전에너지로 변환시키고, 상기 터빈의 회전에너지로 발전기를 구동시켜 전기에너지로 변환시킴으로써 이루어지게 된다.The present invention is to ensure that the power generation is made by using the drop of water and the quantity of energy discharged when the coolant is filled in the reservoir to store the coolant which must be provided in the thermal power plant, the present invention is to install the turbine below the outlet of the reservoir By converting the free fall and water energy into rotational energy, by driving the generator to the rotational energy of the turbine is made by converting into electrical energy.

본 발명의 터빈은 저수조의 배출구 하측에 설치되어 취수관을 통하여 펌핑된 후 배출구를 통하여 배출되는 냉각수에 의해 터빈의 임펠러가 회전되게 하고, 상기 터빈의 회전력은 동력전달 수단을 거쳐 발전기로 전달됨으로써 발전기에서 발전이 이루어지도록 한다.The turbine of the present invention is installed below the outlet of the reservoir and pumped through the intake pipe so that the impeller of the turbine is rotated by the cooling water discharged through the outlet, and the rotational force of the turbine is transmitted to the generator through a power transmission means to the generator To make progress.

본 발명은 저수조의 배출구에서 저수조로 떨어지는 냉각수의 낙차와 수량을 이용하여 발전이 이루어지는 것으로, 기존에 아무도 활용하지 않았던 냉각수의 위치와 수량 에너지를 이용하는 것이다.The present invention is to generate power by using the drop and the amount of cooling water falling from the outlet of the reservoir to the reservoir, it is to use the position and quantity energy of the cooling water that no one has used before.

이러한 본 발명은 취수관을 통하여 바다 또는 강에서 펌핑되어 공급되는 냉각수는 저수조(10)의 측면 상측으로 형성된 배출구(20)를 통하여 배출되게 되고, 상기 저수조(10)의 측면에는 배출구(20)의 하측으로 터빈(30)을 설치하여 배출구(20)에서 배출되는 냉각수로 터빈(30)에서 회전에너지를 얻도록 하며, 터빈(30)은 배출구(20)에서 배출되는 냉각수의 수량과 위치에너지에 따라 회전에너지를 얻게 되고, 터빈(30)의 회전에너지는 발전기(50)로 전달되어 발전이 이루어지게 된다.In the present invention, the cooling water pumped from the sea or river through the intake pipe is discharged through the outlet 20 formed above the side of the reservoir 10, the side of the reservoir 10 of the outlet 20 Install the turbine 30 to the lower side to obtain the rotational energy from the turbine 30 with the cooling water discharged from the outlet 20, the turbine 30 according to the quantity and potential energy of the cooling water discharged from the outlet 20 The rotation energy is obtained, and the rotation energy of the turbine 30 is transmitted to the generator 50 to generate power.

본 발명의 배출구(20)는 화력 발전소에 설치되는 저수조(10)의 측면에 형성되는 것으로, 취수관을 통하여 펌핑되는 냉각수가 배출구(20)에서 저수조(10)로 떨어져 저수조(10)의 수위를 유지하게 된다.The outlet 20 of the present invention is formed on the side of the reservoir 10 is installed in the thermal power plant, the cooling water pumped through the intake pipe from the outlet 20 to the reservoir 10 to drop the water level of the reservoir (10) Will be maintained.

본 발명은 상기 배출구(20)에서 배출되는 냉각수의 수량과 위치에너지를 가장 잘 활용할 수 있는 터빈(30)을 배출구(20)의 전방 하측으로 설치하여, 배출구(20)에서 배출되는 냉각수의 에너지를 터빈(30)에서 회수할 수 있도록 한다.The present invention installs the turbine 30 that can best utilize the quantity and the potential energy of the cooling water discharged from the discharge port 20 to the front lower side of the discharge port 20, the energy of the cooling water discharged from the discharge port 20 It is possible to recover from the turbine (30).

여기서 배출구(20)로 배출되는 냉각수는 펌프에 의해 취수관을 타고 배출구(20)까지 이동하여 배출되는 에너지를 받게 되므로, 본 발명에서는 상기 냉각수가 갖고 있는 에너지를 터빈(30)으로 회수하여 이용하도록 하는 것이다.Here, the coolant discharged to the discharge port 20 receives the energy discharged by moving up to the discharge port 20 through the intake pipe by the pump. In the present invention, the energy of the coolant is recovered and used by the turbine 30. It is.

본 발명의 터빈(30)은 배출구(20)에서 배출되는 냉각수가 임펠러를 회전시켜 회전에너지를 발생시키게 되는 것으로, 배출구(20)에서 배출되는 상당한 량의 냉각수와 최소한의 높이에 의해 터빈(30)에서 회수되는 에너지가 상당하다.In the turbine 30 of the present invention, the cooling water discharged from the outlet 20 generates the rotating energy by rotating the impeller, and the turbine 30 is discharged by the considerable amount of the coolant discharged from the outlet 20 and the minimum height. The energy recovered from is considerable.

이러한 터빈(30)에서 회수된 에너지는 터빈(30)의 상부 공간에 일반적인 고정 프레임(40)을 이용하여 고정 설치되는 발전기(50)에 동력전달장치를 이용하여 전달되게 되고, 상기 발전기(50)는 터빈(30)의 회전력을 전달받아 발전을 하게 되며, 발전기(50)에서 회전 동력을 받아 발전이 이루어지는 기능은 일반적인 사항이며, 상기 발전기(50)에 냉각수의 낙차 에너지를 회전에너지로 변환시켜 전달하는 터빈(30)도 그 구조는 일반화되어 있다.The energy recovered from the turbine 30 is transferred to the generator 50 fixedly installed in the upper space of the turbine 30 using the general fixed frame 40 by using a power transmission device, and the generator 50 The power generation is received by receiving the rotational force of the turbine 30, the power generation is generated by receiving the rotational power from the generator 50 is a general matter, and converts the falling energy of the coolant to the rotational energy to the generator 50 is transmitted to the rotational energy The structure of the turbine 30 is also generalized.

본 발명에서 동력전달장치는 베벨기어와 동력전달축(41)등을 이용하게 되고, 상기 동력전달축(41)은 축 커플링(42)으로 결합되게 함으로써, 터빈(30)의 교체 수리와 발전기(50)의 교체 수리가 용이하게 이루어지도록 하며, 상기 발전기(50)는 터빈(30)의 회전력에 의해 발전을 하게 된다.In the present invention, the power transmission device uses a bevel gear, a power transmission shaft 41, and the like, and the power transmission shaft 41 is coupled to the shaft coupling 42, thereby replacing and repairing the turbine 30 and the generator. The replacement and repair of the 50 is to be made easily, the generator 50 is to generate power by the rotational force of the turbine (30).

본 발명은 냉각수가 취수된 후 취수관에서 펌핑되어 배출구(20)에서 배출되는 구조는 일반적인 구조이고, 저수조(10)는 상기 배출구(20)에서 배출되는 냉각수를 저장하여 발전소에서 사용하게 하는 일반적인 구조이며, 배출구(20)로 배출되는 냉각수에 의해 회전에너지를 얻게 되는 터빈(30)과, 상기 터빈(30)의 회전에너지를 받아 전기에너지로 변환시키는 발전기(50)도 일반적인 구조이다.The present invention is a structure that is pumped from the intake pipe after the cooling water is taken out and discharged from the outlet 20 is a general structure, the reservoir 10 is a general structure for storing the cooling water discharged from the outlet 20 for use in a power plant In addition, the turbine 30 to obtain the rotational energy by the cooling water discharged to the discharge port 20, and the generator 50 for receiving the rotational energy of the turbine 30 is converted into electrical energy is also a general structure.

본 발명은 상기 된 구조를 조합하여 화력발전소의 저수조(10)에 배출구(30)로 배출되는 냉각수의 수량과 위치 에너지를 회수하여 전기에너지로 변환시켜 사용할 수 있도록 하는 것으로, 본 발명의 저수조(10)의 배출구(20)에 터빈(30)을 설치하는 한편 발전기(50)를 설치하는 구조는 신규의 구성이며, 냉각수의 위치에너지를 전기에너지로 변환시켜 사용하는 진보성을 갖추고 있다.The present invention is to combine the above-described structure to recover the quantity and potential energy of the cooling water discharged to the discharge port 30 in the water storage tank 10 of the thermal power plant to be converted into electrical energy, the water storage tank 10 of the present invention The turbine 30 is installed at the outlet 20 of the crankshaft, while the generator 50 is provided in a novel structure, and has an advance in converting the potential energy of the coolant into electrical energy.

본 발명에서 적은 낙차에너지를 유용하게 회수하는 터빈(30)을 활용하는 경우 발전기(50)에서 얻게 되는 전기에너지를 늘릴 수 있는 한편 냉각수의 수량에너지도 효율적으로 터빈(30)에서 회수하여 전기에너지로 변환시킬 경우 전기에너지의 생산량을 늘리게 된다.In the present invention, when utilizing the turbine 30 which recovers little free fall energy usefully, the electric energy obtained from the generator 50 can be increased, while the water energy of the coolant can be efficiently recovered from the turbine 30 to the electric energy. The conversion increases the production of electrical energy.

본 발명의 발전기(50)에서 생산하는 전기에너지는 별도의 동력을 사용하지 않고, 기존의 사용하지 않았던 냉각수의 위치에너지를 이용하게 되므로, 무공해 에너지를 생산함과 동시에 에너지 생산 비용을 줄일 수 있는 것이다.The electrical energy produced by the generator 50 of the present invention is to use the potential energy of the cooling water, which is not used conventionally, without using a separate power, thereby producing pollution-free energy and simultaneously reducing energy production costs. .

특히, 본 발명은 저수조(10)에 냉각수를 채우기 위하여 취수관에서 펌핑되어 배출구(20)로 배출되는 냉각수를 이용하여 발전을 하게 되므로, 새로운 에너지의 활용을 할 수 있는 것이다.In particular, the present invention is to generate power by using the cooling water discharged to the outlet 20 is pumped from the intake pipe to fill the cooling water in the reservoir 10, it is possible to utilize the new energy.

10 : 저수조 20 : 배출구
30 : 터빈 40 : 프레임
41 : 동력전달축 42 : 축커플링
50 : 발전기
10: reservoir 20: outlet
30 turbine 40 frame
41: power transmission shaft 42: shaft coupling
50: generator

Claims (2)

화력 발전소에 설치된 저수조(10)의 측면 상측으로 배출구(20)를 형성하여 취수관에서 펌핑되는 냉각수가 배출구(20)에서 배출되어 저수조(10)에 모아지게 함에 있어서,
상기 저수조(10)에 냉각수를 공급하는 배출구(20)의 하측으로 프레임(40)을 고정시켜 냉각수의 낙차와 수량 에너지를 회전에너지로 변환시키는 터빈(30)을 설치하고,
상기 터빈(30)의 상측으로 회전 에너지를 전기 에너지로 변환시키는 발전기(50)를 설치하되 상기 터빈(30)의 회전력은 축커플링(42)으로 결합되는 동력전달축(41)을 통하여 전달되게 하는 것을 특징으로 하는 냉각수 낙차를 이용한 발전장치.
In forming the outlet 20 to the upper side of the reservoir 10 installed in the thermal power plant so that the cooling water pumped from the intake pipe is discharged from the outlet 20 is collected in the reservoir 10,
By installing the turbine 30 to fix the frame 40 to the lower side of the discharge port 20 for supplying the cooling water to the water storage tank 10 to convert the free fall and the water energy of the cooling water into rotational energy,
The generator 50 is installed above the turbine 30 to convert rotational energy into electrical energy, but the rotational force of the turbine 30 is transmitted through the power transmission shaft 41 coupled to the shaft coupling 42. The generator using the coolant drop characterized in that the.
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KR20200079102A (en) 2018-12-24 2020-07-02 주식회사 금성이앤씨 Detachable generator

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KR101320044B1 (en) * 2012-02-06 2013-10-18 주식회사 한국피이엠 Power generating apparatus using cooling tower
KR101393854B1 (en) * 2012-12-21 2014-05-12 한국남부발전 주식회사 Power generation system using the cooling water discharged from the power plant
CN107401474A (en) * 2017-07-24 2017-11-28 于茜雯 A kind of method that cooling water using in cooling tower is generated electricity

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US4359868A (en) 1981-06-10 1982-11-23 Slonim David Meir Ocean wave energy converter

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US4359868A (en) 1981-06-10 1982-11-23 Slonim David Meir Ocean wave energy converter

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Publication number Priority date Publication date Assignee Title
KR20200079102A (en) 2018-12-24 2020-07-02 주식회사 금성이앤씨 Detachable generator

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