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Title:
HIGH-PRESSURE GAS-TURBINE PLANT USING HIGH-PRESSURE PISTON-TYPE COMPRESSOR
Document Type and Number:
WIPO Patent Application WO/2001/004477
Kind Code:
A1
Abstract:
A power plant especially for the propulsion of waterborne vehicles, includes two prime movers, a gas turbine (1) and a diesel starting engine (3) for selectively driving, via a central gearbox (4) and clutches (7) and (9), a power output shaft (5) and a generator (6). The gas turbine (1) is driven by a piston-like compressor (2) via central gearbox (4) and clutches (7) and (8), and further includes a turbocharger (12) and an intercooler (13) connected between the outlet of turbine (1) and the inlet of compressor (2). The diesel engine (3) drives auxiliary electric generator (17). The power output shaft drives a propeller (19) through a bearing (11). The shaft generator (6) is stabilised by a flywheel (22).

Inventors:
BORIC MIROSLAV (HR)
Application Number:
PCT/HR1999/000013
Publication Date:
January 18, 2001
Filing Date:
July 07, 1999
Export Citation:
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Assignee:
BORIC MIROSLAV (HR)
International Classes:
B63H21/20; F01D15/10; F01D15/12; F02C3/055; F02C6/14; F02C6/20; F02C7/36; (IPC1-7): F02C6/20; F02C7/36; F02C3/055; F02C6/14; B63H21/20; F01D15/10; F01D15/04; F01D15/12
Foreign References:
DE3837736A11989-05-24
US4369630A1983-01-25
US3990242A1976-11-09
EP0593793A11994-04-27
EP0593793B11998-01-07
HRP920497A21995-04-30
HRP921016A21997-06-30
HRP931533A21997-06-30
Attorney, Agent or Firm:
Diatus (Poljicka cesta 31 21 000 Split, HR)
Download PDF:
Claims:
PATENT CLAIMS
1. Highpressure pistontype gasturbine plant, as shown in Fig. 1, characterised by comprising, highpressure gas turbine (1), highpressure pistontype air compressor (2), turbocharger (12), air cooler (13), lowpressure air pipes (14), shaft coupling clutches (7), (8) and (9), gear box (4), highpressure air pipes (15), highpressure fuel pipes (21), diesel engine (3), generator (17), shaft (5), trust bearing (11), propeller (19), shaft generator (6), with keyed flywheel (22), and kinetic shaft clutch (10).
2. Plant, as claimed in the Claim 1, w h e r e i n the highpressure gas turbine (1), multistage, with no turbocompressor on its rotor shaft, of strengthened casing and combustion chamber adapted to high operating pressure, of as many combustion chambers (18) thermally less loaded, as there are cylinders in the high pressure pistontype compressor (2), of larger gas expansion, larger heat fall and larger efficiency degree, equipped with fuel valve with combustion stimulators (EPO patent EP593793B1 and HP patent P920497) in every combustion chamber, which plant, when powered by own fuel, drives by means of the gear box (4) the highpressure pistontype compressor (2), the shaft (5), the propeller (19), the shaft generator (6), and whose combustion gases drive the turbocharger (12).
3. Plant, as claimed in the Claims 1 and 2, w h e r e i n it is equipped with singlestage, singleacting, multicylinder, highpressure pistontype air compressor (2) for highpressure compression, mediumor fastspeed, of"V"or other compact design, powered by the highpressure gas turbine (1) directiy or by means of the gearbox (4), connected to it by means of the shaft coupling clutch (8).
4. Plant, as claimed in the Claims 1 to 3, w h e r e i n it is equipped with the turbocharger (12), powered by combustion gases leaving the highpressure turbine (1), with the lowpressure compressor taking air from the atmosphere, the air being taken through the air cooler (13) into the highpressure compressor (2).
5. Plant, as claimed in the Claims 1 to 4, w h e r e i n the air cooler (13) cools the lowpressure compressed air and is connected to the turbocharger (12) at one end and to the highpressure compressor (2) at the other.
6. Plant, as claimed in the Claims 1 to 5, w h e r e i n the said air pipes (14) take air from the turbocharger (12), through the air cooler (13), to the highpressure air compressor (2).
7. Plant, as claimed in the Claims 1 to 6, w h e r e i n it is equipped with highpressure air pipes (15) that take air from the highpressure compressor (2) into the combustion chambers (18) of the highpressure gas turbine (1) and with as many pipes as there are highpressure compressor cylinders and highpressure turbine combustion chambers.
8. Plant, as claimed in the Claims 1 to 7, w h e r e i n it is equipped with highpressure fuel pipes (21) that take fuel from the highpressure fuel pumps, located on the highpressure pistontype compressor (2), separately to each of the highpressure turbine (1) combustion chambers (18).
9. Plant, as claimed in the Claims 1 to 8, w h e r e i n it is equipped with gearbox (4) that receives power, at a certain speed, from the highpressure gas turbine (1) and/or the diesel engine (3) by means of the shaft coupling clutches (6) and (7), transmitting the power over the trust bearing (11) to the shaft (5) and the propeller (19), and drives by means of the shaft coupling clutch (8) directly the high pressure pistontype air compressor (2), and by means of the kinetic shaft clutch (10) the shaft generator (6).
10. Plant, as claimed in the Claims 1 to 9, w h e r e i n it is equipped with a diesel engine (3) used for initial starting of the plant, for parallel working with the highpressure gas turbine (1) while under way with full power and for working as an auxiliary dieselgenerator set with the generator (17) if the diesel engine is of larger power, it can be used as a ship's emergency propulsion, for lower speeds, when the clutch (9) is connected and the clutches (7), (8) and (10) disconnected.
11. Plant, as claimed in the Claims 1 to 10, w h e r e i n it is equipped with the shaft generator (6) connected to the gearbox (4) by the kinetic shaft clutch (10) and equipped with the flywheel (22) for mechanical stabilisation of the produced electricity frequency.
12. Plant, as claimed in the Claims 1 to 11, w h e r e i n in order to double the plant power, another highpressure pistontype compressor can be connected instead of the shaft generator (6).
Description:
HIGH-PRESSURE GAS-TURBINE PLANT USING HIGH-PRESSURE PISTON-TYPE COMPRESSOR DESCRIPTION OF THE INVENTION 1. TECHNICAL DESCRIPTION The subject matter of the invention belongs to the field of machine engineering (international Patent Classification field F, sub-field : Engines or Motors, class F 02 comprising: combustion motors; hot gas and combustion products powered motor plants).

The invention belongs to the Intemational Patent Classification sub-class F 02 C, comprising gas-turbine plants.

2. TECHNICAL PROBLEM Because of its low degree of efficiency, classical gas turbine has never got widely applied, except with navy and emergency plants where economy is not a priority. The problem is about the gas turbines working with high air flow speeds and relatively low combustion pressures, being therefore no competition to diesel powered engines.

3. SITUATION IN TECHNOLOGY Gas turbines are subjected to high thermal and mechanical load. They are mostly applied in aeronautics, on navy and to a lesser degree on trains and road vehicles.

Due to low efficiency degree, with large plants, heat recuperation systems in steam turbine plant has been introduced.

4. ESSENCE OF THE INVENTION The essence of the invention is about increasing the efficiency of the gas-turbine plant by replacing the turbo-compressor at the high-pressure gas turbine shaft with a high-pressure piston-type air compressor, which enables expansion of the combustion mixture of high adiabatic fall.

Every four-stroke diesel engine can be turned into a high-pressure piston-type air compressor at a low cost and, theoretically, double the air intake for powering the high-pressure gas turbine.

High-pressure gas turbine that, according to this invention, has a piston-type compressor instead of a turbo-compressor on its rotor shaft, is particularly favourable for production of high powers in a single block, and is of: -higher efficiency degree, -high adiabatic fall, -lesser air/combustion-gases flow speeds and, therefore, lesser friction resistance, -lesser rotation speeds, -lesser plant weights, -significantly lesser noise.

5. FIGURE DESCRIPTION Figure 1. shows block-diagram of a high-pressure piston-type gas-turbine plant.

The block-diagram in Fig 1. shows the structure and operating principe of a plant designed for fitting on board of ships.

6. DETAILED DESCRIPTION OF A POSSIBLE INVENTION EMBODIMENT As shown in Fig. 1, the high-pressure gas-turbine plant comprises: high-pressure gas turbine 1 of reinforced sides due to high pressures, thermally and mechanically lesser loaded, supplied on its rotor with a high-pressure piston-type compressor 2, connected directly or indirectly through the gear-box 4, and with as many combustion chambers 18 as there are cylinders in the high-pressure piston-type compressor; each combustion chamber supplie with a fuel valve with combustion stimulators (EPO patent EP593793B1 and HP patent P920497) and one high-pressure pipe 15 connection from every high-pressure compressor 2 cylinder, of better efficiency degree and better useful power; combustion chambers being thermally lesser loaded; high-pressure piston-type air compressor 2, of high-pressure compression, multi-cylinder, supercharged, single-stage, single-acting,"V", or other compact design, high-speed or medium-speed engine; whereby every four-stroke diesel engine can be turned into a high-pressure piston-type compressor of the following characteristics: -equipped with camshaft powered by crankshaft by means of a gear-box of the rotation speed ratio 1: 1; -equipped with intake and output pressure valves in baskets located in the cylinder covers; valve opening and closing being controlled by valve camshaft, like with engines, according to a given cam timing; -equipped with high-pressure fuel pump, cams for operating pump pistons with mechanism for control of intake and of fuel pre-injection angle into the combustion chamber 18 of the high-pressure turbine 1, connected to the control levers; -equipped with control stand 20 from where the entire plant is controlled, -equipped with safety equipment and WOODWOORD or other rotation speed regulator, -equipped with safety valves located in the cylinder covers, -possibly equipped with compressor-starting decompressors; turbocharger 12, whose low-pressure turbo-compressor takes air from the atmosphere, compresses it to higher pressure, takes it through the air cooler 13 and pressures it to the high-pressure piston-type compressor 2; low-pressure compression air cooler 13, connected with pipes 14 to the turbocharger 12 and the high-pressure piston-type compressor 2; high-pressure air pipes 15, connecting each high-pressure piston-type compressor 2 valve with the corresponding combustion chamber 18 at the high-pressure gas- turbine 1 front side; high-pressure fuel pipes 21, taking fuel from the high-pressure fuel pump, located on the high-pressure compressor 2, to the fuel valves located in the combustion chambers 18 in the high-pressure turbine 1; connection 16 for ship service air; gear-box 4, consisting of the following gears: gear for taking power from the high- pressure gas turbine 1, gear for taking power from the diesel engine 3, gear for powering the high-pressure piston-type compressor 2, gear for powering the shaft generator 6, and the central propulsion or generator gear 19; engine 3 for starting of the plant from resting; it can be electric, hydraulic, pneumatic or diesel powered ; which engine has generator 17 at one end and the shaft coupling clutch 9 at the other; whereby more powerful engine act as spare propulsion drive in emergency ; power output shaft 5, connected to the central gear 4, and through the trust bearing 11 to the propulsion propeller 19 or the generator; shaft generator 6, with the kinetic shaft clutch 10 connected to the gear-box 4 at one end, and the electricity frequency stabilising flywheel 22 at the other; whereby in stead of the generator there can be fitted another high-pressure piston-type compressor 2 for doubling the turbine plant power; shaft coupling clutches 7,8 and 9, which can be hydraulic, electromagnetic or pneumatic designed, and serve for coupling the high-pressure gas turbine 1, the high-pressure piston-type compressor 2, the engine 3, to and off the gear-box 4; kinetic shaft clutch 10, which can be pneumatic (patent application HP P921016A) or electromagnetic (patent application HP P931533A); trust bearing 11 fitted between the gear-box 4 and the shaft 5 and the propulsion propeller 19; auxiliary generator 17 for generating electricity for the ship and plant requirements; propulsion propeller 19 with mobile blades.

The high-pressure gas turbine, according to this invention and the block diagram presented in Fig. 1, functions in the following way: INITIAL STARTING The plant is initially started from resting by means of the diesel engine 3. The generator 17 is to be switched off the network while the plant is being started. After starting of the diesel engine 3, the shaft coupling clutches 7,8 and 9 are connected, and the shaft clutch 10 is disconnected. By means of the gear-box 4, the high-pressure gas turbine 1, the high-pressure piston-type compressor 2, the propeller shaft 5 and the propulsion propeller 19 are started simultaneously. Rotation of the high-pressure piston-type compressor 2 pumps air from the atmosphere through the turbocharger 12 turbo-compressor, the air cooler 13 and pipes 14 into the high-pressure compressor 2 where it is being compressed and taken by high- pressure pipes 15 to the high-pressure gas turbine 1 combustion chambers 18, where it expands and drives the high-pressure turbine rotor. After exiting the turbine 1, the air drives the turbocharger 12 gas turbine, that starts low-pressure compression of the atmosphere air in the turbo-compressor. This idle rotation can last a longer period of time.

PERMANENT RUNNING By moving the fuel handle and the high-pressure fuel pump levers located at the high- pressure compressor 2 into the position RUNNING, high-pressure fuel is driven through the high-pressure fuel pipes 21 into the fuel valves located in the combustion chambers 18 in the high-pressure gas turbine 1.

Combustion gases produced by the fuel combustion expand in the high-pressure gas turbine 1. Here commences transformation of the fuel energy into mechanical work and rotation of the high-pressure gas turbine 1. When leaving the high-pressure gas turbine 1, the combustion gases enter the turbocharger 12 gas turbine, where expansion and driving of the turbocharger turbine is continued. After this, the combustion gases go into economiser and the atmosphere.

Energy of the gases leaving the high-pressure turbine 1 drive the turbocharger 12 which takes air from the atmosphere, compresses it to a higher pressure, drives it through the air cooler 13 and the pipes 14 to the high-pressure piston-type compressor 2 cylinder inlet valves, where the air is compressed to high pressure and, through valves, taken by the pipes 15 into the combustion chambers 18 of the high- pressure gas turbine 1. In the combustion chamber, the fuel is ignited aided by the combustion stimulator that is intended to increase the plant efficiency degree.

After the initial start, the diesel engine 3 is disconnected from the gear box 4, when the generator 17 can be connected to the network.

Permanent running is continued by the high-pressure gas turbine 1, by the produced power and by means of the gear box 4, drives independently the piston-type compressor 2, the shaft 5 with the propeller 19 or the power-plant generator.

Rotation and production of power in the high-pressure gas turbine is modified by changing of charging of the high-pressure fuel pumps located at the high-pressure compressor 2. The entire plant is controlled manually or automatically from the control stand 20. Power and rotation stabilisation of the propelier 19 is obtained by known rotation and power regulators such as WOODWOORD or others.

Low-cost electricity can be used while the ship is under way by starting the shaft generator 6 by means of the kinetic shaft clutch 10. The generator 6, at the other end of the rotor shaft, is equipped with the flywheel 22 that stabilises the produced electricity frequency in conditions of storm, pitching, etc.

The engine 3 and the generator 17 produce electricity when the ship is in port or under way with the shaft coupling clutch 9 disconnected. The engine 3 can be used as an emergency auxiliary propulsion. In such case, the shaft coupling clutches 7,8 and 10 are disconnected, and the clutch 9 is connected. The generator 17 is switched off the network.

7. INVENTION EMPLOYMENT High-pressure gas turbines, equipped with high-pressure piston-type compressor on the rotor shaft will have a wide employment, for their increasing the efficiency degree.

Thanks to their small weight, decreased noise and simplicity, they can be fitted into: -passenger cars, -sport cars, -all other road-going vehicles, -stable and mobile power-supply plants, -nautics, for obtaining from the smallest to the highest powers in a single block, on board civil and navy alike, -rail traffic, from cargo to super-fast trains, -air trafic, in large capacity aeroplanes.