SYSTEM FOR LIQUEFYING A GAS
20190056174 ยท 2019-02-21
Assignee
Inventors
Cpc classification
F25J1/0202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0277
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0037
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0294
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0279
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0296
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25J1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system (100) for liquefying a gas comprises a liquid piston gas multistage compressor (2). It can be arranged on-board a liquefied gas carrier for recycling boil-off gas. Such system may be easily adapted or controlled for matching wide requirement ranges for variations of the liquefaction capacity. In addition, at least part of the liquid piston gas multistage compressor can be shared between the gas liquefying system and an extra gas-fed device. Such extra gas-fed device may be in particular a gas-fuelled or hybrid fuel propulsion engine of the vessel.
Claims
1. System (100) for liquefying a gas comprising: a gas intake (1) for connection to a gas source (101); at least one gas compressor; a gas expansion device (3) connected for being fed with compressed gas produced by the at least one gas compressor, and adapted to produce both liquefied gas and expanded gas from the compressed gas; and a return duct (97) connected for driving the expanded gas from a gas outlet (33) of the gas expansion device (3) to a duct node (10) situated between the gas intake (1) and the at least one compressor, characterized in that the at least one gas compressor comprises a liquid piston gas multistage compressor (2) having at least two compressor stages (21-23; 21-25) connected serially in an ordered chain between the gas intake (1) and an end gas outlet (29), each compressor stage comprising at least one cylinder supplied with driving liquid, and also comprising a liquid high-pressure supply device arranged for alternately increasing and decreasing a driving liquid quantity contained within the cylinder, so as to load, compress and discharge gas at the compressor stage, each compressor stage (22-23; 22-25) other than the first one (21) in the chain, and called higher compressor stage, being connected to process gas which is outputted by a preceding compressor stage situated in the chain just before said higher compressor stage, through an intermediate gas duct (28) connecting said preceding compressor stage to said higher compressor stage, so that gas flowing from the gas intake (1) is pressure-increased each time it is processed by one of the compressor stages, and gas outputted at the end gas outlet (29) has been processed successively by all the compressor stages of the chain, the gas expansion device (3) being connected for receiving compressed gas from the end gas outlet (29) of the liquid piston gas multistage compressor (2), or from an intermediate gas outlet situated at one intermediate gas duct (28) between two compressor stages (21-23; 21-25) successive in the chain.
2. System according to claim 1, adapted for being on-board a liquefied gas carrier, in particular a liquefied gas carrier vessel, wherein the gas intake (1) is dedicated to be connected so as to receive boil-off gas originating from liquefied gas contained in tanks arranged on-board the carrier, said tanks forming at least part of the gas source (101), and a liquid outlet (34) of the gas expansion device (3) is connected to at least one of the tanks for discharging the liquefied gas produced by said gas expansion device.
3. System according to claim 1, adapted for processing gas containing methane, ethane, propane, butane and blends thereof, including natural gas and petroleum gas, in particular gas comprised of more than 80% in-weight of methane.
4. System according to claim 1, further adapted for delivering compressed gas processed by at least some of the compressor stages (21-23; 21-25) of the liquid piston gas multistage compressor (2), to a fuel gas intake of an engine (102; 102).
5. System according to claim 4, wherein said system is adapted for being on-board a liqufied gas carrier, in particular a liquefied gas carrier vessel, wherein the gas intake (1) is dedicated to be connected so as to receive boil-off gas originating from liquefied gas contained in tanks arranged on-board the carrier, said tanks forming at least part of the gas source (101), and a liquid outlet (34) of the gas expansion device (3) is connected to at least one of the tanks for discharging the liquefied gas produced by said gas expansion device, and wherein the engine (102; 102) is a propulsion engine of the carrier.
6. System according to claim 5, adapted so that the fuel gas intake of the carrier propulsion engine (102) is fed with compressed gas originating from the end gas outlet (29) of the liquid piston gas multistage compressor (2), with a gas pressure existing at the fuel gas intake of the carrier propulsion engine which is in the range of 100 bara to 450 bara.
7. System according to claim 6, further comprising a pre-compressor (80) arranged on a gas path between the gas intake (1) and the first compressor stage (21) of the liquid piston gas multistage gas compressor (2).
8. System according to claim 5, adapted so that the fuel gas intake of the carrier propulsion engine (102) is fed with compressed gas originating from an intermediate gas outlet situated at one intermediate gas duct (28) between two compressor stages (21-23; 21-25) which are successive in the chain of the liquid piston gas multistage gas compressor (2), with a gas pressure existing at the fuel gas intake of the carrier propulsion engine which is in the range of 61.5 bara or 164 bara, and the gas expansion device (3) is fed with compressed gas originating from the end gas outlet (29) of the liquid piston gas multistage compressor.
9. System according to claim 1, wherein the chain of the liquid piston gas multistage gas compressor (2) comprises between two and six compressor stages (21-23; 21-25), including two and six values.
10. System according to claim 1, further comprising intercooler devices arranged at the intermediate gas ducts (28) between two compressor stages (21-23; 21-25) which are successive in the chain of the liquid piston gas multistage gas compressor (2), and between the last compressor stage (23; 25) of the chain and the gas expansion device (3), for cooling down the gas flowing within said intermediate gas duct and to said gas expansion device.
11. System according to claim 1, wherein the gas expansion device (3) comprises and expansion valve (31) and a flash drum (32) provided with the gas outlet (33) for discharging the expanded gas, and with a liquid outlet (34) for discharging the liquefied gas produced by the gas expansion device, the compressed gas produced by the gas compressor being admitted into the flash drum through the expansion valve.
12. System according to claim 1, further comprising a turbo-compressor (4) arranged between the gas expansion device (3) and the end gas outlet (29) of the liquid piston gas multistage compressor (2), or the intermediate gas outlet (28) from which said gas expansion device is fed with compressed gas, the turbo-compressor being arranged for compressing the compressed gas delivered to the gas expansion device (3) in addition to compression by the liquid piston gas multistage compressor before delivery of said compressed gas to the gas expansion device.
13. System according to claim 1, further comprising a heat exchanger (5) arranged for transferring heat from the compressed gas delivered to the gas expansion device (3), to the expanded gas produced by said gas expansion device.
14. Liquefied gas carrier, comprising at least one liquefied gas tank on-board said carrier, and also comprising a system (100) for liquefying a gas in accordance with claim 1, the gas intake (1) of said system being connected for receiving boil-off gas originating from the at least one liquefied gas tank, and a liquid outlet (34) of the gas expansion device (3) being connected to said least one liquefied gas tank for discharging the liquefied gas produced by said gas expansion device.
15. Liquefied gas carrier carrier according to claim 14, further comprising a gas-fuelled carrier propulsion engine or a hybrid fuel carrier propulsion engine (102; 102), and wherein the chain of compressor stages (21-23; 21-25) of the liquid piston gas multistage compressor (2) is provided with at least one gas outlet for outputting gas processed by at least one of the compressor stages, and said gas outlet is connected to a gas fuel intake of the engine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] The invention is now described in detail for several embodiment examples, but without inducing any limitation with respect to the claim scope. In particular, natural gas processing and application to liquefied natural gas carrier vessels will be described, but other gases and applications are encompassed as well by the claims, with identical implementation features or gas-adapted and/or application-adapted implementation features.
[0031] In the figures, the following reference numbers have the meanings now listed:
[0032] 100 gas liquefying system
[0033] 101 gas source
[0034] 102, 102 gas-fuelled or hybrid fuel vessel propulsion engines
[0035] 1 gas intake of the gas liquefying system
[0036] 10 duct node
[0037] 2 liquid piston gas multistage compressor
[0038] 21-23 or 21-25 three or five compressor stages of the liquid piston gas multistage compressor, numbers three and five being only for illustration purpose
[0039] 27 source of high-pressure driving liquid
[0040] 28 intermediate gas ducts of the liquid piston gas multistage compressor
[0041] 29 end gas outlet of the liquid piston gas multistage compressor
[0042] 3 gas expansion device
[0043] 31 expansion valve
[0044] 32 flash drum
[0045] 33 gas outlet of the flash drum
[0046] 34 liquid outlet of the flash drum
[0047] 4 turbo-compressor
[0048] 41 centrifugal type booster
[0049] 42 radial inflow gas expander
[0050] 43 driving shaft
[0051] 44 gas cooler
[0052] 5 heat exchanger
[0053] 60 gas cooler
[0054] 80 pre-compressor
[0055] 97 return gas duct
[0056] 98 liquefied gas pump
[0057] 99 return liquid duck
[0058] The gas source 101 may comprise a tank or several tanks (only one tank is represented in the figures) containing liquefied natural gas, from which originates boil-off gas. Such gas tank(s) may be arranged on-board a liquefied natural gas carrier vessel, for example. In such case, the gas which is processed by a system according to the invention may be the boil-off gas, but it may be also vaporized liquid of natural gas, or a combination of boil-off gas and vaporized liquid of natural gas. This gas processed by the invention system may be comprised of more than 80% in-weight of methane.
[0059] The gas intake 10 may be connected for receiving the boil-off gas which originates from the liquefied natural gas, or the vaporized liquid of natural gas.
[0060] The gas liquefying system 100 comprises the liquid piston gas multistage compressor 2, the gas expansion device 3, the return gas duct 97, and optionally at least one of the following additional components: the turbo-compressor 4, the multi-stream heat exchanger 5, the gas cooler 60, the pre-compressor 80, the pump for liquefied gas 98, and control valves arranged on the return gas duct 97 and return liquid duck 99.
[0061] The liquid piston gas multistage compressor 2 comprises several compressor stages 21-23 or 21-25 which are serially connected in a chain, so that each compressor stage processes gas outputted by the compressor stage just before in the chain, except the compressor stage 21 which processes gas originating from the gas intake 10. In the examples represented, compressor stage 21 is the first one in the chain, and compressor stage 23 in
[0062] Advantageously within such compressor based on liquid pistons, there is no direct contact between the driving liquid and the gas to compress within each cylinder, for avoiding that the compressed gas is polluted with vapour of the driving liquid or vapours produced by this latter. In particular, document US 2012/0134851 proposes arranging a dummy solid piston between the driving liquid and the gas being compressed. During an operation cycle of the compressor stage, the dummy piston remains on top of the driving liquid within the cylinder, and moves up and down due to the alternating variation in the level of the driving liquid. Dummy pistons within separate cylinders are independent from each other, without solid-based interconnections. A fixed amount of an additional liquid is further provided for producing peripheral sealing between the dummy piston and the inner surface of the cylinder. This amount of additional liquid remains comprised between the peripheral surface of the dummy piston and the inner surface of the cylinder whatever the instant level of the driving liquid by moving together with the dummy piston. This additional liquid is selected for not producing polluting vapours and so that the gas to be compressed does not dissolve into it and does not produce any chemical reaction with it. Liquid of ionic type have been implemented for this purpose, or any other liquid capable of producing the functions of gas-sealing and lubricating. Intercooler devices may be arranged at the intermediate gas ducts 28 between two compressor stages which are successive in the chain of the liquid piston gas multistage gas compressor 2, and between the last compressor stage of the chain and the gas expansion device 3. In this way, the gas flowing within each intermediate gas duct 28 and to the gas expansion device 3 can be cooled down. Thus, the liquid piston gas multistage compressor 2 runs a near-isothermal process which minimizes energy lost to heat generation in comparison with a conventional reciprocating compressor. For clarity sake, the figures only represent such gas cooler device at the gas outlet of the last compressor stage 23 or 25, with reference number 60.
[0063] One of the compressor stages 21-23 or 21-25 outputs compressed gas to the gas expansion device 3.
[0064] The gas expansion device 3 may comprise and the expansion valve 31 and the flash drum 32. This latter is provided with the gas outlet 33 for discharging the expanded gas, and also with the liquid outlet 34 for discharging the liquefied gas which is produced by the gas expansion device 3. The compressed gas originating from the liquid piston gas multistage compressor 2 and possibly further compressed by centrifugal booster 41 is admitted into the flash drum 32 through the expansion valve 31. The expanded gas is driven to the duct node 10 for being recycled, through the return gas duct 97. Simultaneously, the liquefied gas may be driven back to the gas source 101 if this latter is comprised of at least one tank of liquefied gas, through the return liquid duck 99. Depending on the pressure of the liquefied gas at the liquid outlet 34, the return liquid duck 99 may be provided with the liquefied gas pump 98 or not, and also possibly with a by-pass for temporarily avoiding such pump. The liquefied gas may be thus delivered back to the liquid tank of the gas source 101, with a pressure of about 3.5 bara and a temperature between 140 C. and 150 C.
[0065] According to
[0066] The heat exchanger 5 produces a second stage in the cooling down of the compressed gas which is delivered to the gas expansion device 3. It may be arranged for transferring heat from the compressed gas which is delivered to the gas expansion device 3, to the expanded gas which is produced by this latter. Preferably, the heat exchanger 3 may be of multi-stream type, so as to transfer additionally heat from the expanded gas outputted by the expander 42 to the expanded gas which is produced by the gas expansion device 3. The heat exchanger 5 may be alternatively of several types known in the art.
[0067] Generally for the invention, at least some of the compressor stages of the liquid piston gas multistage compressor 2 of the gas liquefying system 100 may also be used for supplying compressed gas to an extra gas-fed device. Such gas-fed device may be any, for example a gas burner, or an electrical power generator, or a gas-fuelled engine, namely an engine to be supplied only with gas as fuel, or a hybrid fuel engine. In this latter case, only the fuel gas supply of the vessel propulsion engine is concerned with the present description. In particular, the engine may be a propulsion engine of a liquefied gas carrier vessel, equipped with the system 100 for re-liquefying boil-off gas.
[0068] In the first implementation example represented in
[0069] Similar arrangement may be implemented for supplying gas to an engine which has pressure requirement at the fuel gas intake of this engine, in the range of 61.5 bara.
[0070] The second implementation example represented in
[0071] The third implementation example represented in
[0072] Thus, one main advantage of the invention results from the fact that the liquid piston technology allows supplying fuel gas to engines which have very different requirements for the gas pressure at their fuel gas intakes, while sharing the gas compressor with a gas liquefying system. Only the number of compressor stages is to be adapted. As a result, a shipyard can have a practical and standardized design for the combined gas liquefying system and fuel gas supply system, whatever the vessel propulsion engine type.
[0073] It must be understood that the invention may be reproduced while adapting some implementation details with respect from the description here-above provided with reference to the figures. In particular, the invention may be implemented whatever the number of compressor stages within the liquid piston gas multistage compressor, and whatever the position of the gas outlet along the chain of the compressor stages which supplies the gas expansion device with compressed gas. Also, the numeral values which have been cited for the gas pressures have only been provided for illustrative purpose.
[0074] Also, the invention system may be used for supplying compressed gas to a gas-fed device having limited gas consumption, whereas the gas, for example boil-off gas, may exist initially in excess with respect to the consumption of the gas-fed device. The gas liquefying system of the invention allows recycling the excess of boil-off gas without gas loss and with minimum additional components and minimum energy consumption.