FUEL GAS BOOSTER-GAS TURBINE INTEGRATION FOR ENERGY SAVING & OPTIMIZED OPERABILITY
20260049580 ยท 2026-02-19
Inventors
Cpc classification
F02C9/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/306
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/236
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02C9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel gas booster-gas turbine integration for energy saving & optimized operability. The fuel gas booster-gas turbine integration comprises an integrated system comprising a reciprocating compressor based fuel gas booster and a gas turbine wherein the gas turbine flow and pressure control system and the fuel gas booster pressure and capacity control system are synchronized to optimize the fuel gas booster power consumption or the fuel gas booster and gas turbine package power consumption, and wherein the gas turbine flow and pressure control system comprises at least one gas turbine fuel gas input control valve and the fuel gas booster control system comprises a gas turbine fuel gas input control valve position controller, associated to said at least one gas turbine fuel gas input control valve, and fuel gas booster capacity control devices, associated to said reciprocating compressor based fuel gas booster.
Claims
1. An integrated system comprising a reciprocating compressor based fuel gas booster, and a gas turbine wherein the gas turbine flow and pressure control system and the fuel gas booster pressure and capacity control system are synchronized to optimize the fuel gas booster power consumption or the fuel gas booster and gas turbine package power consumption, and wherein the gas turbine flow and pressure control system comprises at least one gas turbine fuel gas input control valve and the fuel gas booster pressure and capacity control system comprises a gas turbine fuel gas input control valve position controller, associated to said at least one gas turbine fuel gas input control valve, and fuel gas booster capacity control devices, associated to said reciprocating compressor based fuel gas booster
2. The system of claim 1, wherein the fuel gas booster capacity control devices are chosen amongst a cylinder valve unloader associated to each cylinder effect of the reciprocating compressor based fuel gas booster, an additional variable clearance pocket of each individual cylinder clearance pocket, a reciprocating compressor inlet valve or a variable frequency drive motor.
3. The system of claim 1, wherein the fuel gas booster pressure and capacity control system is a slow control system.
4. The system of claim 3, wherein the fuel gas booster pressure and capacity control system is a proportional control system.
5. The system of claim 3, wherein the fuel gas booster pressure and capacity control system is a proportional-integral control system.
6. The system of claim 1, wherein the gas turbine flow and pressure control system is a fast control system.
7. The system of claim 1, wherein the reciprocating compressor based fuel gas booster is integrally connected to the gas turbine casing.
8. The system of claim 1, comprising two reciprocating compressor based fuel gas boosters.
9. The system of claim 8, wherein each reciprocating compressor based fuel gas booster is designed to provide at least the pressure and capacity needed by the gas turbine.
10. The system of claim 8, wherein each reciprocating compressor based fuel gas booster is designed to provide a lower pressure and capacity than needed by the gas turbine, the overall pressure and capacity of the reciprocating compressor based fuel gas boosters being at least equal to that needed by the gas turbine.
11. A method of controlling operation of an integrated reciprocating compressor based fuel gas booster and gas turbine system as defined in claim 1, comprising the following steps: controlling the position of a gas turbine fuel gas input control valve; and if said position is less open than a set value (depending on the gas turbine), then reducing the fuel gas booster capacity.
12. The method of claim 11, wherein said step of reducing the fuel gas booster capacity is actuated slowly.
13. The method of claim 11, wherein, in case two reciprocating compressor based fuel gas booster are used, if the needed fuel gas pressure from the fuel gas boosters is equal to or lower than the pressure that can be provided by each one of the two reciprocating compressor based fuel gas boosters, then only one reciprocating compressor based fuel gas booster is used.
14. The method of claim 13, wherein while only one reciprocating compressor based fuel gas booster is used, the other is under maintenance.
15. The system of claim 2, wherein the fuel gas booster pressure and capacity control system is a slow control system.
16. The system of claim 15, wherein the fuel gas booster pressure and capacity control system is a proportional control system.
17. The system of claim 15, wherein the fuel gas booster pressure and capacity control system is a proportional-integral control system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] A more complete appreciation of the disclosed embodiments of the invention and many of the attended advantages thereof will be readily obtained as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
[0012]
DETAILED DESCRIPTION OF EMBODIMENTS
[0013] According to one aspect, the present subject matter is directed to an integrated system comprising a reciprocating compressor based fuel gas booster and a gas turbine wherein the fuel gas booster pressure and capacity control and the gas turbine flow and pressure control are controlled in order to optimize the reciprocating compressor based fuel gas booster operation.
[0014] According to one aspect, the reciprocating compressor based fuel gas booster is integrally connected to the gas turbine casing and the booster compressor boosts the pressure and gas fuel. It is used to increase internal energy and generate more power with a smaller gas fuel flow rate.
[0015] According to one aspect, the fuel gas booster control system and the gas turbine control system are integrated to automatically synchronize the reciprocating compressor based fuel gas booster and the gas turbine package at the minimum absorbed power operating point regardless ambient and fuel gas pressure, temperature, composition change.
[0016] According to a specific aspect, the fuel gas booster control system is operated to reduce capacity in case the gas turbine control system, to optimize the gas turbine operation, sets gas turbine control valves at not fully open position. As a consequence of the fuel gas booster reduced capacity, fuel gas from the reciprocating compressor based fuel gas booster has a lower pressure, allowing the gas turbine control system to set the gas turbine control valves at a fully open position, reducing pressure drop through the gas turbine control valves.
[0017] According to one aspect, the fuel gas booster is a reciprocating compressor based fuel gas booster including a plurality of cylinders, each cylinder comprising at least one cylinder effect and the fuel gas booster capacity is controlled by equipping each cylinder effect with a cylinder valve unloader that allows efficient step control (e.g: 4 cylinders compressor with 2 effect per cylinder can managed by 12.5% capacity step regulation).
[0018] According to an aspect, the fuel gas booster capacity control can be achieved through an additional variable clearance pocket that can manage capacity variation by increasing and decreasing the individual cylinder clearance pocket with an actuator.
[0019] According to other aspects, other devices can be used to manage the compressor valve opening and closing in a way to manage efficient capacity control.
[0020] Alternatively, to manage the reciprocating compressor based fuel gas booster capacity, the motor driving the compressor can be equipped with a variable speed system.
[0021] Other fuel gas booster pressure and capacity control devices can be used, the technical and commercial effectiveness of different solutions having to be evaluated according to the specific service of the individual reciprocating compressor based fuel gas booster.
[0022] According to another aspect, the fuel gas booster control system is configured as a slow control system, in order to minimize any interference with the gas turbine control system. As a consequence, pressure drops through the gas turbine control valves and hence boost power requirements are minimized by driving these valves to a fully open position under normal operating conditions, and the gas turbine control valves are still used to regulate the gas turbine operation in their normal control mode.
[0023] According to a specific aspect, the gas turbine control valves are used to regulate the gas turbine operation during start ups and sudden load rejection.
[0024] According to another aspect, optimization of the reciprocating compressor based fuel gas booster operation leads to important energy & opex saving.
[0025] Reference now will be made in detail to embodiments of the disclosure, one or more examples of which are illustrated in the drawings. Each example is provided by way of explanation of the disclosure, not limitation of the disclosure. In fact, it will be apparent to those skilled in the art that various modifications and variations can be made in the present disclosure without departing from the scope or spirit of the disclosure. Reference throughout the specification to one embodiment or an embodiment or some embodiments means that the particular feature, structure or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrase in one embodiment or in an embodiment or in some embodiments in various places throughout the specification is not necessarily referring to the same embodiment(s). Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
[0026] When introducing elements of various embodiments the articles a, an, the, and said are intended to mean that there are one or more of the elements. The terms comprising, including, and having are intended to be inclusive and mean that there may be additional elements other than the listed elements.
[0027] Referring now to the drawings,
[0028] A fuel gas booster control system 20 is also present, input to the fuel gas booster control system 20 comprising a gas turbine control valve position indicator line 21. The fuel gas booster control system 20 controls the capacity of the reciprocating compressor based fuel gas booster 10, by means of specific pressure and capacity control devices selected for the specific service amongst, for example: a cylinder valve unloader of any cylinder effect of a plurality of cylinders of the reciprocating compressor, additional variable clearance pocket that can manage capacity variation by increasing and decreasing the individual cylinder clearance pocket with an actuator, a reciprocating compressor inlet valve or a variable frequency drive motor 23, connected to the fuel gas booster control system 20 through a fuel gas booster control system output line 22.
[0029] The integrated system of the present invention operates as follows. The fuel gas booster control system 20 continuously detects the position of the gas turbine control valve 14. When the gas turbine control system 15, to optimize the gas turbine operation, sets the gas turbine control valve 14 at not fully open position, then the fuel gas booster control system 20 reduces the capacity of the fuel gas booster, through one of the capacity control devices selected for the specific service. Following the reciprocating compressor based fuel gas booster 10 reduced capacity, fuel gas from the reciprocating compressor based fuel gas booster 10 has a lower pressure, allowing the gas turbine control system 15 to set the gas turbine control valve 14 at a fully open position, reducing pressure drop through the gas turbine control valve 14. As a consequence, the power absorbed by the reciprocating compressor based fuel gas booster 10 is lowered without reducing the gas turbine operability.
[0030] In particular, if the fuel gas pressure and/or flow from the reciprocating compressor based fuel gas booster 10 is higher than the pressure and flow actually needed by the gas turbine 11, for example as a consequence of high ambient temperature or reduced turbine load, then the gas turbine control system 15 operates the gas turbine control valve 14 to a not fully open position. The partial closure of the gas turbine control valve 14 causes a pressure drop of the fuel gas before the fuel gas from the reciprocating compressor based fuel gas booster 10 reaches the gas turbine inlet. This implies that part of the compression of the fuel gas operated by the reciprocating compressor based fuel gas booster 10 is lost and, from a different point of view, that the reciprocating compressor based fuel gas booster 10 operates a compression of the fuel gas in excess with respect to the pressure needed by the gas turbine 11. At the same time, the reciprocating compressor based fuel gas booster 10 is absorbing an amount of power in excess with respect to the need. According to the present disclosure, such an amount of absorbed power is saved by reducing the capacity of the reciprocating compressor based fuel gas booster 10 by allowing the reciprocating compressor based fuel gas booster 10 to compress the fuel gas at the pressure required by the gas turbine and minimizing any possible subsequent pressure drop. In fact, within certain limits, a reduction of the pressure of the fuel gas at the inlet of the gas turbine 11 does not negatively affect the operability of the gas turbine 11, in particular in case of reduced load or high temperature. In general, a fuel gas booster is designed to work at 30 bara, but can also work at a lower pressure (down to about 26-27 bara) when the temperature is high (tipically in summertime) or the load is low.
[0031] Importantly, according to the present disclosure, since the fuel gas booster control system 20 is used as an additional control system with respect to the gas turbine control system 15, care must be given to avoid interferences between the systems, which could cause instability. In this regard, the fuel gas booster control system 20 is configured as a slow control system, while the gas turbine control system 15 is a fast control system. More in particular, the regulators of the fuel gas booster control system 20 are proportional regulators or proportional-integral regulators with a low proportional gain value. As a consequence, the gas turbine operation and transitory conditions are still controlled by the gas turbine control system 15 without any interference from the fuel gas booster control system 20, while the fuel gas booster control system 20 is only used to regulate the capacity of the reciprocating compressor based fuel gas booster 10.
[0032] In particular, the integration of the fuel gas booster control system 20 and the gas turbine control system 15 according to the present disclosure can be used to automatically synchronize the reciprocating compressor based fuel gas booster and the gas turbine package at the minimum absorbed power operating point.
[0033] Alternatively, the integration of the fuel gas booster control system 20 and the gas turbine control system 15 according to the present disclosure can be used to minimize the fuel gas booster absorbed power operating point.
[0034] In particular, the integration of the fuel gas booster control system 20 and the gas turbine control system 15 according to the present disclosure can be used to reduce the settle-out pressure of a closed circuit in a thermodynamic system following shut-down of a pressure boosting apparatus, such as a compressor, to facilitate startup of the system.
[0035] According to a specific implementation of the integration of the fuel gas booster control system 20 and the gas turbine control system 15 of the present disclosure, two fuel gas boosters can be used, the fuel gas boosters being designed to provide a lower pressure and flow than needed by the gas turbine, even down to 50% of the pressure and flow than needed by the gas turbine. This configuration ensures increased availability and reliability in particular conditions, without negatively affect the system in normal operating conditions. For example, since in summertime a gas turbine can operate at full load with a reduced pressure of the fuel gas pressure from the reciprocating compressor based fuel gas booster than only one reciprocating compressor based fuel gas booster of a redundant configuration can be used, while the other is under maintenance).
[0036] Finally, the integration of the fuel gas booster control system 20 and the gas turbine control system 15 according to the present disclosure allows for fuel gas booster electric power saves up to 30% (site dependent) and increases reliability and availability to the reciprocating compressor based fuel gas booster minimum load operating in every condition and automatically follow up of ambient and fuel gas booster condition.
[0037] While aspects the invention has been described in terms of various specific embodiments, it will be apparent to those of ordinary skill in the art that many modifications, changes, and omissions are possible without departing form the spirt and scope of the claims. In addition, unless specified otherwise herein, the order or sequence of any process or method steps may be varied or re-sequenced according to alternative embodiments.