Evaporative gas reliquefaction system and ship including same

The evaporated gas reliquefaction system addresses the issue of evaporative gas generation by compressing, condensing, and reliquefying it, enhancing reliquefaction efficiency and preventing non-condensable gas formation, ensuring stable cargo transportation.

JP7729982B2Active Publication Date: 2025-08-26エイチディー コリア シップビルディング アンド オフショア エンジニアリング カンパニー リミテッド
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Patent Information

Application Number
JP2024516961
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-17
Filing Date
2022-07-18
Publication Date
2025-08-26
Estimated Expiration
2042-07-18

AI Technical Summary

Technical Problem

Liquefied gas carriers face issues with evaporative gas generation due to incomplete thermal insulation, leading to increased internal pressure and the need to discharge evaporative gas, which reduces cargo reliability.

Method used

An evaporated gas reliquefaction system utilizing a compressor, condenser, intercooler, and liquefied gas pump to compress, condense, and reliquefy evaporative gas, with a liquefied gas pump injecting liquefied gas into the intercooler to manage the ratio of non-condensable gases and enhance reliquefaction efficiency.

Benefits of technology

The system effectively prevents the generation of non-condensable gases during reliquefaction, improving reliquefaction performance by separating and treating these gases, thereby maintaining cargo reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to an evaporated gas reliquefaction system and a ship including the same, which is a system for treating liquefied gas, which is a heavy hydrocarbon, and includes a compressor that compresses evaporated gas generated in a liquefied gas storage tank in multiple stages, a condenser that condenses the evaporated gas compressed by the compressor, an intercooler that performs mutual heat exchange between a portion and the remainder of the liquid-phase evaporated gas condensed in the condenser, transfers the gas-phase evaporated gas generated by the heat exchange to the compressor and transfers the liquid-phase evaporated gas to the liquefied gas storage tank, and a liquefied gas pump that pressurizes the liquefied gas in the liquefied gas storage tank, and the liquefied gas pump transfers the liquefied gas to the intercooler to liquefy the gas-phase evaporated gas in the intercooler.
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Description

[Technical Field]

[0001] The present invention relates to an evaporation gas reliquefaction system and a ship including the same. [Background technology]

[0002] Among the ships that sail the ocean loaded with various types of cargo, liquefied gas carriers that transport liquefied gases such as liquefied natural gas and liquefied petroleum gas are equipped with storage tanks that forcibly liquefy gases with boiling points lower than room temperature and store them in a liquid state.

[0003] LNG is made by liquefying methane (CH4) extracted from natural gas extracted from gas fields through cooling. It is a colorless, transparent liquid with almost no pollutants and a high calorific value, making it an excellent fuel. LPG, on the other hand, is a liquid gas primarily composed of propane (C3H8) and butane (C4H10), which are extracted from oil fields along with petroleum. It is widely used as a fuel for households, businesses, industries, and automobiles. LNG is reduced to 1 / 600th of its original volume through liquefaction, while LPG is reduced to 1 / 260th of its original volume for propane and 1 / 230th of its original volume for butane, offering the advantage of high storage efficiency.

[0004] However, although storage tanks for such liquefied gases are equipped with thermal insulation, they cannot completely prevent the liquefied gas from evaporating. As a result, vaporized gas is generated inside the storage tank, and since the vaporized gas increases the internal pressure of the storage tank, it must be discharged from the storage tank for safety reasons.

[0005] The evaporative gas discharged from the storage tank to reduce the internal pressure is burned and disposed of in a gas combustion unit. However, since the evaporative gas is also part of the cargo carried by the ship, the discharge of the evaporative gas is problematic as it reduces the reliability of cargo transportation.

[0006] Therefore, in recent years, continuous research and development has been conducted into methods for effectively treating evaporative gases generated in storage tanks without discarding them. Summary of the Invention [Problem to be solved by the invention]

[0007] The present invention has been created to solve the problems of the prior art as described above, and an object of the present invention is to provide an evaporated gas reliquefaction system and a ship including the same, which can improve reliquefaction efficiency by utilizing liquefied gas to suppress the generation of non-condensable gas that is not condensed when reliquefying liquefied gas, or by separating and treating the non-condensable gas separately. [Means for solving the problem]

[0008] An evaporated gas re-liquefaction system according to one aspect of the present invention is a system for processing liquefied gas, which is a heavy hydrocarbon, and includes a compressor that compresses evaporated gas generated in a liquefied gas storage tank in multiple stages, a condenser that condenses the evaporated gas compressed by the compressor, an intercooler that performs mutual heat exchange between a portion of the liquid-phase evaporated gas condensed in the condenser and the remainder, and transfers the vapor-phase evaporated gas generated by the heat exchange to the compressor and transfers the liquid-phase evaporated gas to the liquefied gas storage tank, and a liquefied gas pump that pressurizes the liquefied gas in the liquefied gas storage tank, and the liquefied gas pump transfers the liquefied gas to the intercooler to liquefy the vapor-phase evaporated gas in the intercooler.

[0009] Specifically, the intercooler reduces the pressure of a portion of the liquid-phase evaporated gas condensed in the condenser using a pressure reducing valve and stores it therein, and passes the remainder through the interior to mutually exchange heat between the evaporated gases. The liquefied gas pump injects liquefied gas into the intercooler, causing the liquefied gas to lower the temperature of the portion of the evaporated gas stored therein and cool the remaining evaporated gas passing through the intercooler.

[0010] Specifically, the liquefied gas is a mixture of a first substance and a second substance having different boiling points, and the intercooler can transfer the first substance having a relatively low boiling point to the compressor as a vapor-phase evaporated gas during heat exchange between the evaporated gases.

[0011] Specifically, the liquefied gas pump may deliver the liquefied gas to the intercooler to limit the amount of evaporation of the first substance within the intercooler to a predetermined value or less.

[0012] Specifically, as the system operates over time, the ratio of the first substance in the evaporative gas flowing through the condenser increases as the first substance continuously circulates through the compressor, the condenser, and the intercooler, and the liquefied gas pump can deliver liquefied gas to the intercooler and reduce the flow rate of the first substance delivered from the intercooler to the compressor so that the ratio of the first substance in the evaporative gas flowing through the condenser is within a predetermined value.

[0013] Specifically, the liquefied gas pump may deliver the liquefied gas to the intercooler when the ratio of the first substance in the evaporated gas flowing through the condenser is equal to or greater than a predetermined value.

[0014] A ship according to one aspect of the present invention includes the above-described evaporated gas reliquefaction system. [Effects of the Invention]

[0015] The evaporated gas reliquefaction system and the ship including the same according to the present invention can innovatively improve reliquefaction performance by preventing the generation of non-condensable gas during the reliquefaction process of liquefied petroleum gas by utilizing low-temperature liquefied gas, or by separating, cooling, and liquefying the non-condensable gas. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a conceptual diagram of an evaporated gas reliquefaction system according to a first embodiment of the present invention. [Figure 2] FIG. 2 is a conceptual diagram of an evaporated gas reliquefaction system according to a second embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0017] The objectives, particular advantages, and novel features of the present invention will become more apparent from the following detailed description and preferred embodiments taken in conjunction with the accompanying drawings. In this specification, when referring to components in each drawing, please note that the same components are numbered as much as possible even if they appear in different drawings. Furthermore, when describing the present invention, if a detailed description of related prior art is deemed to unnecessarily obscure the gist of the present invention, such a detailed description will be omitted.

[0018] In this specification, liquefied gas is a heavy hydrocarbon and may be LPG (propane, butane, etc.), but is not limited thereto, and may include all substances (propylene, ammonia, hydrogen, etc.) that have a boiling point lower than room temperature, are forcibly liquefied for storage, and have a calorific value.

[0019] In addition, in this specification, liquefied gas / evaporated gas is classified based on the state inside the tank, and is not necessarily limited to the liquid phase or vapor phase depending on the name.

[0020] The present invention includes a ship equipped with the evaporated gas reliquefaction system described below. In this case, the ship is a concept that includes all of gas carriers, commercial ships carrying cargoes other than gas or passengers, FSRUs, FPSOs, bunkering vessels, and offshore plants, and may be, for example, a liquefied petroleum gas carrier.

[0021] Although not shown in the drawings of the present invention, it goes without saying that pressure sensors (PT), temperature sensors (TT), etc. may be installed at appropriate locations without limitation, and the measurement values ​​from each sensor can be used in a variety of ways without limitation in operating the configuration described below.

[0022] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings.

[0023] FIG. 1 is a conceptual diagram of an evaporated gas reliquefaction system according to a first embodiment of the present invention.

[0024] Referring to FIG. 1, an evaporated gas reliquefaction system 1 according to one embodiment of the present invention includes a liquefied gas storage tank 10, a buffer 20, a compressor 30, a condenser 40, a receiver 50, an intercooler 60, a pressure regulating valve 70, a liquefied gas pump 90, and a fuel supply unit 100.

[0025] The liquefied gas storage tank 10 stores liquefied gas such as liquefied petroleum gas or ammonia. One or more liquefied gas storage tanks 10 may be installed on or outside the ship, and can liquefy gases with boiling points lower than room temperature and store them at cryogenic temperatures.

[0026] The liquefied gas storage tank 10 may be of a membrane type, a stand-alone type, a pressure vessel type, or the like, but is not particularly limited thereto. However, regardless of the type, a portion of the liquefied gas naturally evaporates inside the liquefied gas storage tank 10, generating evaporated gas, which can be problematic because it causes an increase in the internal pressure of the liquefied gas storage tank 10. Therefore, in this embodiment, the evaporated gas is discharged to the outside of the liquefied gas storage tank 10, and the discharged evaporated gas can be re-liquefied and returned to the liquefied gas storage tank 10.

[0027] Alternatively, the present invention can use the evaporated gas as fuel for a consumer (symbol not shown), in which case the consumer may be an engine, turbine, boiler, fuel cell, burner, etc. installed on the ship, or may be a propulsion engine that propels the ship or a power generation engine that covers the power load inside the ship.

[0028] The liquefied gas storage tank 10 may be provided with an evaporated gas discharge line L10 for discharging evaporated gas, and the evaporated gas discharge line L10 may extend from the liquefied gas storage tank 10 and be connected to the evaporated gas re-liquefaction system 1.

[0029] The buffer 20 is connected to the evaporated gas discharge line L10 and temporarily stores the evaporated gas discharged from the liquefied gas storage tank 10. The buffer 20 is a separator that separates the evaporated gas into gas and liquid phases, and supplies only the evaporated gas in a gas state to the compressor 30, thereby preventing damage to the compressor 30.

[0030] The vapor phase evaporated gas separated in the buffer 20 can be transmitted to the compressor 30 via the evaporated gas liquefaction line L20. The evaporated gas liquefaction line L20 extends from the buffer 20 and transmits the evaporated gas to the liquefied gas storage tank 10 via the condenser 40. The evaporated gas liquefaction line L20 may be provided with the compressor 30, the condenser 40, a receiver 50, a pressure regulating valve 70, etc. The evaporated gas liquefaction line L20 may also be provided to pass through an intercooler 60.

[0031] The compressor 30 compresses the evaporated gas generated in the liquefied gas storage tank 10. The compressor 30 may be a centrifugal or reciprocating type, and may be provided in multiple stages including multiple compression stages. Additionally, the compressors 30 may be provided in parallel for backup or load sharing.

[0032] The compressor 30 can compress the evaporative gas flowing in at around 1 bar to 10 to 100 bar, and the boiling point of the evaporative gas increases when the evaporative gas is compressed by the compressor 30. Therefore, the compressed evaporative gas can be liquefied without being cooled to its boiling point at atmospheric pressure (e.g., -55°C for LPG).

[0033] The compressor 30 may be configured with three stages, and can compress the evaporated gas to about 4 bar in the first stage 30a, about 10 bar in the second stage 30b, and about 20 to 30 bar in the third stage 30c. Of course, the pressure of the evaporated gas compressed by the compressor 30 and the compression stages is not particularly limited.

[0034] The evaporative gas liquefaction line L20, which connects the buffer 20 to the condenser 40, can have multiple compression stages arranged in series to form a multi-stage compressor 30, but a first intercooler 60a and a second intercooler 60b may be connected as intercoolers 60 to intermediate stages between the compression stages on the evaporative gas liquefaction line L20.

[0035] The low-pressure evaporative gas leaving the first stage 30a of the compressor passes through the second intercooler 60b and is then transmitted to the second stage 30b of the compressor, and the medium-pressure evaporative gas leaving the second stage 30b of the compressor passes through the first intercooler 60a and is then transmitted to the third stage 30c of the compressor, and is then released from the third stage 30c of the compressor as high-pressure evaporative gas and transmitted to the condenser 40.

[0036] In this case, the intercooler 60, which will be described later, is a cooling device that uses decompressed evaporative gas as a refrigerant without a separate refrigerant, and can cool low-pressure evaporative gas or medium-pressure evaporative gas flowing in from the compressor 30. Therefore, the intercooler 60 can implement cooling at an intermediate stage of the compressor 30.

[0037] The compressor 30 may also allow the evaporative gas to be transmitted between the first stage 30a and the second stage 30b, and between the second stage 30b and the third stage 30c, bypassing the intercooler 60, and the bypassing of the intercooler 60 may be controlled in various ways depending on variables such as the internal pressure of the intercooler 60 and the temperature of the evaporative gas.

[0038] The evaporated gas is discharged from the liquefied gas storage tank 10 at around -50 degrees, and after passing through the buffer 20, the discharged evaporated gas can flow into the first stage 30a of the compressor at around 1 bar and around -20 degrees.

[0039] The evaporated gas is then discharged from the first stage 30a of the compressor at around 4 bar and around 40 degrees, flows into the second intercooler 60b, is cooled to around 30 degrees in the second intercooler 60b, and is then transmitted to the second stage 30b of the compressor.

[0040] The evaporated gas is then discharged from the second stage 30b of the compressor at around 10 bar and around 70 degrees, flows into the first intercooler 60a, where it is cooled to around 60 degrees, and then transmitted to the third stage 30c of the compressor. Finally, the evaporated gas is discharged from the third stage 30c of the compressor at around 20 to 30 bar and around 100 degrees, and then cooled to around 40 degrees in the condenser 40.

[0041] However, in situations where the temperature of the evaporative gas discharged from each compressor 30 is not relatively high or where it is necessary to discharge high-temperature evaporative gas, a bypass line (symbol not shown) may be provided in the evaporative gas liquefaction line L20 so that the evaporative gas can bypass the intercooler 60.

[0042] The bypass line is provided in the evaporative gas liquefaction line L20 so that the compressed evaporative gas bypasses the intercooler 60. For example, the bypass line can be provided so that the evaporative gas compressed in the second stage 30b bypasses the first intercooler 60a and flows into the third stage 30c of the compressor.

[0043] A valve (not shown) may be provided in the bypass line, and the opening degree of the valve may be adjusted according to the load on the second stage 30b of the compressor, the temperature conditions of the evaporative gas, etc. However, it goes without saying that even when the evaporative gas compressed by the compressor 30 bypasses the intercooler 60 along the bypass line, the vapor-phase evaporative gas generated in the intercooler 60 may be transmitted toward the compressor 30.

[0044] In this embodiment, the compressor 30 is not limited to a three-stage compressor 30c, but may have a two-stage or a multi-stage structure of four or more stages. However, in this embodiment, the evaporative gas may pass through an intercooler 60 during compression.

[0045] The condenser 40 cools the compressed evaporated gas to re-liquefy at least a portion of it. Although the condenser 40 can re-liquefy the evaporated gas, this does not exclude the possibility that the evaporated gas may not be re-liquefied at all or may be only partially re-liquefied due to various factors during actual operation.

[0046] This is because the evaporated gas contains a mixture of substances with different boiling points. For example, in the case of LPG, which is mainly composed of propane and butane but also contains ethane, some components such as ethane may not be re-liquefied because the boiling point of ethane is lower than that of propane / butane.

[0047] The condenser 40 is provided downstream of the compressor 30, which is provided in multiple stages, and can cool the evaporated gas using various refrigerants (e.g., seawater, fresh water, glycol water, nitrogen, LNG, LPG, propane, R134a, CO2, etc.), without limitation.

[0048] The condenser 40 lowers the temperature of the evaporated gas compressed by the compressor 30 without lowering it to the boiling point of the evaporated gas at atmospheric pressure. This is because the boiling point of the evaporated gas increases as it is compressed by the compressor 30.

[0049] However, the condenser 40 can adjust the cooling temperature of the evaporated gas in consideration of the pressure of the evaporated gas discharged from the compressor 30 in the final stage (for example, the third stage 30c).

[0050] The receiver 50 temporarily stores the evaporated gas liquefied by the condenser 40. An evaporated gas liquefaction line L20 is provided between the condenser 40 and the liquefied gas storage tank 10 to transfer the cooled evaporated gas to the liquefied gas storage tank 10, and the receiver 50 may be disposed downstream of the condenser 40 and upstream of the intercooler 60 on the evaporated gas liquefaction line L20.

[0051] The receiver 50 may have a gas-liquid separation function similar to the buffer 20, and may transfer liquefied evaporative gas from the cooled evaporative gas to the intercooler 60. However, the receiver 50 may store unliquefied evaporative gas from the cooled evaporative gas without discharging it to the outside. In this case, the internal pressure of the receiver 50 increases, thereby improving the cooling effect of the evaporative gas when the pressure is reduced by the pressure reducing valve 61, which will be described later.

[0052] Of course, in this embodiment, the receiver 50 can transmit unliquefied evaporated gas (non-condensable gas) to the vent header or the liquefied gas storage tank 10 via the vent line L23, or various modifications are possible, such as transmitting the gas between the third stage 30c of the compressor and the condenser 40, etc.

[0053] However, the receiver 50 may be omitted, in which case the evaporated gas cooled in the condenser 40 may be transferred to the intercooler 60 without separate gas-liquid separation.

[0054] The intercooler 60 exchanges heat between a portion of the evaporated gas liquefied in the condenser 40 and the remainder. The intercooler 60 is connected to a first evaporated gas branch line L21a that branches off from the evaporated gas liquefaction line L20 upstream of the intercooler 60 and is provided with a pressure reducing valve 61, and is also provided with a cooling passage 62 through which the evaporated gas cooled in the condenser 40 passes.

[0055] The intercooler 60 has a space for accommodating evaporative gas decompressed by the pressure reducing valve 61, the first evaporative gas branch line L21a has an open form within the intercooler 60 and is arranged to fill the inside of the intercooler 60 with evaporative gas, and the cooling passage 62 is arranged so that the evaporative gas passes through the inside of the intercooler 60.

[0056] The pressure reducing valve 61 provided in the first evaporative gas branch line L21a reduces the pressure of the evaporative gas that is cooled by the condenser 40 and then branched upstream of the intercooler 60. The pressure reducing valve 61 is a Joule-Thomson valve or an expander, and reduces the pressure of the evaporative gas to cool it (Joule-Thomson effect), so the pressure reducing valve 61 can liquefy (or supercool) the evaporative gas at a higher ratio than the evaporative gas cooled by the condenser 40.

[0057] Therefore, the intercooler 60 allows the evaporative gas liquefied by decompression to pass through the cooling passage 62 of the evaporative gas liquefaction line L20, thereby enabling stable liquefaction through non-contact heat exchange between the evaporative gases without the need for a separate refrigerant. In this respect, the intercooler 60 can be referred to as a heat exchanger, for example, as a bath-type heat exchanger. In this case, the cooling passage 62 may be provided in a coil shape inside the liquefied evaporative gas to improve liquefaction efficiency.

[0058] When two or more intercoolers 60 are provided, a pressure reducing valve 61 may be provided for each first evaporative gas branch line L21a that branches off from the upstream of each intercooler 60 of the evaporative gas liquefaction line L20 and connects to the intercooler 60.

[0059] In addition, the intercooler 60 may function as a cooler for the intermediate stage of the compressor 30, upstream of the condenser 40. The intercooler 60 is connected to the intermediate stage of the compressor 30 through the evaporation gas liquefaction line L20, and may cool the evaporation gas compressed by some of the compression stages of the compressor 30 using the reduced pressure evaporation gas, and may transfer the evaporation gas generated by heat exchange to the compressor 30.

[0060] The intercooler 60 may be provided with a compressed gas inlet (not shown) that is connected to the evaporative gas liquefaction line L20 upstream of the condenser 40 and that allows the evaporative gas compressed by at least one stage 30a of the compressor 30 to flow into the intercooler 60. The compressed gas inlet may be provided at a position higher than the level of the liquid-phase evaporative gas stored inside the intercooler 60 in order to prevent unnecessary evaporation of the liquefied evaporative gas.

[0061] In addition, the intercooler 60 is provided with a reduced pressure gas inlet (not shown) that is connected to the first evaporative gas branch line L21a and allows the liquefied evaporative gas to flow into the interior, but the reduced pressure gas inlet may be provided at a position higher than the level of the liquid phase evaporative gas within the intercooler 60.

[0062] Therefore, the evaporated gas flowing in through the compressed gas inlet can be cooled / liquefied while coming into contact with the evaporated gas liquefied by the pressure reduction. Through such contact-type heat exchange, cooling of the intermediate stage of the compressor 30 can be realized by the intercooler 60.

[0063] A partition wall (not shown) facing the compressed gas inlet may be provided inside the intercooler 60, and the partition wall can prevent the compressed evaporative gas from immediately escaping to the next compressor 30 without being cooled inside the intercooler 60.

[0064] In this embodiment, a total of two intercoolers 60 may be installed, but the first intercooler 60a may be installed upstream of the two intercoolers 60 based on the flow of evaporative gas downstream of the condenser 40, and may be installed so that evaporative gas flows in between the second compressor stage 30b and the third compressor stage 30c.

[0065] In addition, the second intercooler 60b can be installed downstream of the two intercoolers 60 based on the flow of evaporative gas downstream of the condenser 40, and can be installed so that evaporative gas flows in between the first compressor stage 30a and the second compressor stage 30b.

[0066] Therefore, the evaporated gas can flow along the evaporated gas liquefaction line L20 from the first stage 30a of the compressor to the second intercooler 60b, the second stage 30b of the compressor, the first intercooler 60a, the third stage 30c of the compressor, and the condenser 40 (or bypass the intercooler 60), and the evaporated gas cooled in the condenser 40 can return to the liquefied gas storage tank 10 along the evaporated gas liquefaction line L20 via the first intercooler 60a, the second intercooler 60b, and the pressure regulating valve 70.

[0067] In this case, the evaporated gas cooled in the condenser 40 to 20 to 30 bar and around 40 degrees can pass through the first intercooler 60a with almost no change in pressure and the temperature can drop to below 30 degrees, and then pass through the second intercooler 60b with almost no change in pressure and the temperature can drop below zero.

[0068] Then, when the pressure is reduced by the pressure regulating valve 70 to a level similar to the internal pressure of the liquefied gas storage tank 10, the evaporated gas can be cooled to a temperature lower than its boiling point at atmospheric pressure, and can eventually be re-liquefied and returned to the liquefied gas storage tank 10.

[0069] In this embodiment, a second evaporative gas branch line L21b can be used in place of or together with the first evaporative gas branch line L21a. The second evaporative gas branch line L21b differs from the first evaporative gas branch line L21a in the branching point at the evaporative gas liquefaction line L20.

[0070] That is, the second evaporative emission branch line L21b may be branched at a point downstream of the second intercooler 60b and branched and connected to the first intercooler 60a and the second intercooler 60b, respectively.

[0071] However, even in the case of the second evaporative gas branch line L21b, a pressure reducing valve 61 is provided, as in the first evaporative gas branch line L21a, so that the evaporative gas cooled while passing through the two intercoolers 60 can be further cooled by reducing the pressure before being transmitted to each intercooler 60.

[0072] This embodiment may include both of the evaporative gas branch lines L21, or may include at least one of the evaporative gas branch lines L21. When both of the evaporative gas branch lines L21 are included, the flow in each evaporative gas branch line L21 can be controlled according to various variables such as the temperature and flow rate of the evaporative gas.

[0073] The pressure regulating valve 70 is provided downstream of the second intercooler 60b of the evaporative gas liquefaction line L20 and upstream of the liquefied gas storage tank 10, and adjusts the pressure of the evaporative gas according to the internal pressure of the liquefied gas storage tank 10, for example, reducing the pressure of the evaporative gas.

[0074] The pressure regulating valve 70 can reduce the pressure of evaporated gas from 20 to 30 bar to around 1 bar to correspond to the internal pressure of the liquefied gas storage tank 10, and may be a Joule-Thomson valve or the like that is the same / similar to the pressure reducing valve 61.

[0075] When the pressure regulating valve 70 reduces the pressure of the evaporative gas, the temperature of the evaporative gas decreases. For example, the evaporative gas that passes through the intercooler 60 twice along the evaporative gas liquefaction line L20 has a temperature below zero (e.g., around -4°C), but the temperature of the evaporative gas that passes through the pressure regulating valve 70 can decrease to around -40°C.

[0076] The pressure regulating valve 70 may be provided singly or in series, and this may vary depending on the final compression pressure of the multi-stage compressor 30.

[0077] The liquefied gas pump 90 pressurizes the liquefied gas in the liquefied gas storage tank 10. The liquefied gas storage tank 10 may be provided with a liquefied gas supply line L31 for supplying the liquefied gas to a consumer (such as an engine), and the liquefied gas pump 90 transmits the liquefied gas to the liquefied gas supply line L31.

[0078] The liquefied gas pump 90 not only supplies liquefied gas to the demand destination, but also to the intercooler 60. This is to prevent the generation of non-condensable gas, but the generation of non-condensable gas and the problems caused by it will first be explained below.

[0079] As described above, the evaporative gas may be LPG, but in this case, the evaporative gas may be a mixture of a first substance and a second substance with different boiling points. For example, the evaporative gas may be a mixture of ethane, propane, butane, etc., in descending order of boiling point.

[0080] The evaporated gas is compressed by the compressor 30, condensed by the condenser 40, and then passes through the receiver 50 and is divided and flows into the intercooler 60, but the vapor-phase evaporated gas generated in the intercooler 60 is circulated back to the compressor 30. That is, substances that are not liquefied in the intercooler 60 (especially the first substances with relatively low boiling points, such as ethane) are continuously circulated.

[0081] As the system continues to operate, the first substance repeatedly circulates through the compressor 30, the condenser 40, the receiver 50, and the intercooler 60, and the ratio of the first substance to the evaporated gas flowing through the condenser 40, etc., can become high, which can significantly reduce the liquefaction efficiency in the condenser 40.

[0082] To prepare for this, it is necessary to shut off the discharge of the receiver 50 at a certain point in time depending on the ratio of the first substance in the evaporated gas, forcibly increase the discharge pressure of the compressor 30 to allow the first substance to be sufficiently liquefied in the condenser 40, and then allow the flow of the evaporated gas, thereby lowering the ratio of the first substance in the vapor-phase evaporated gas transferred from the intercooler 60 to the compressor 30 again. This operation can be called a non-condensable gas treatment mode.

[0083] Since the non-condensable gas treatment mode can be a factor in rapidly reducing the re-liquefaction efficiency, this embodiment transmits the liquefied gas into the intercooler 60 to prevent the first substance from evaporating within the intercooler 60, thereby eliminating the need to operate the non-condensable gas treatment mode.

[0084] Specifically, the liquefied gas pump 90 can supply liquefied gas through a liquefied gas transmission line L30 that branches off from the liquefied gas supply line L31 and is connected to the intercooler 60, and transmits the liquefied gas to the intercooler 60 to liquefy the vapor phase evaporated gas within the intercooler 60.

[0085] A portion of the liquid-phase evaporative gas condensed in the condenser 40 is decompressed by the pressure reducing valve 61 and then stored inside the intercooler 60, and the remaining condensed liquid-phase evaporative gas passes through the intercooler 60 to allow mutual heat exchange between the evaporative gases. At this time, the liquefied gas pump 90 injects liquefied gas into the intercooler 60, thereby lowering the temperature of the portion of the evaporative gas stored inside the intercooler 60.

[0086] In addition, by injecting liquefied gas into the intercooler 60, the remaining evaporated gas passing through the inside of the intercooler 60 is stored in the intercooler 60 and is cooled by some of the evaporated gas that has been further cooled by mixing with the liquefied gas, thereby increasing the cooling effect during heat exchange between evaporated gases performed by the intercooler 60.

[0087] In other words, the intercooler 60 can use the liquefied gas transmitted by the liquefied gas pump 90 to cool (prevent evaporation of) some of the evaporated gas injected into the intercooler 60, and can also use it as a refrigerant for the evaporated gas flowing in the cooling passage 62.

[0088] In particular, this embodiment has the effect of suppressing continuous circulation of the first substance in that the liquefied gas pump 90 delivers liquefied gas to the intercooler 60, thereby limiting the amount of evaporation of the first substance within the intercooler 60 to within a predetermined value.

[0089] Specifically, the liquefied gas pump 90 can transfer liquefied gas to the intercooler 60 to reduce the flow rate of the first substance transferred from the intercooler 60 to the compressor 30 so that the ratio of the first substance in the evaporated gas flowing through the condenser 40 is within a predetermined value.

[0090] Since the liquefied gas pump 90 can operate continuously to supply liquefied gas to the consumer through the liquefied gas supply line L31, the transmission of the liquefied gas to the intercooler 60 can be controlled by opening and closing a valve (not shown) installed in the liquefied gas transmission line L30.

[0091] Alternatively, the liquefied gas pump 90 may be controlled to deliver liquefied gas to the intercooler 60 when the ratio of the first substance in the evaporated gas flowing through the condenser 40 is equal to or greater than a predetermined value. Such control can be utilized when liquefied gas is not supplied as fuel (e.g., when the ship is at anchor).

[0092] The fuel supply unit 100 processes the liquefied gas supplied from the liquefied gas pump 90 to the demand destination in accordance with the demand conditions of the demand destination. The fuel supply unit 100 may include a high-pressure pump (not shown), a heat exchanger (not shown), etc., and may also be provided with various other components for adjusting the temperature, pressure, flow rate, etc. of the liquefied gas to the demand conditions of the demand destination.

[0093] The fuel supply unit 100 can deliver liquefied gas to a consumer through the liquefied gas supply line L31, or can deliver re-liquefied evaporated gas to a consumer. To this end, the evaporated gas liquefaction line L20 can be branched at an appropriate point and connected to the liquefied gas supply line L31, and the evaporated gas can be supplied to a consumer together with the liquefied gas or alone.

[0094] Furthermore, the demand destination can discharge any surplus liquefied gas that has not been consumed from the supplied liquefied gas, and the surplus liquefied gas discharged from the demand destination can be recovered in the fuel supply unit 100 (particularly upstream of the high-pressure pump). For this reason, a liquefied gas recovery line (not shown) may be provided from the demand destination to the liquefied gas supply line L31.

[0095] In this way, in this embodiment, in order to prevent the problem of a first substance with a low boiling point, such as ethane, continuously circulating between the intercooler 60 and the compressor 30 and condenser 40 during the re-liquefaction of evaporated gas, which reduces liquefaction efficiency, liquefied gas is injected into the intercooler 60 to effectively suppress the evaporation of the first substance, thereby ensuring sufficient re-liquefaction efficiency.

[0096] FIG. 2 is a conceptual diagram of an evaporated gas reliquefaction system according to a second embodiment of the present invention.

[0097] The following description will focus on the differences between this embodiment and the above-described embodiment, and the omitted parts will be replaced with the above content.

[0098] Referring to FIG. 2, an evaporated gas reliquefaction system 1 according to a second embodiment of the present invention is different from the above-described embodiments in that it has a configuration in which non-condensable gas is separated and treated separately.

[0099] That is, in this embodiment, in order to improve the problem of the first substance continuously circulating between the intercooler 60 and the compressor 30 and the condenser 40, which causes a decrease in liquefaction efficiency, the non-condensable gas separated in the receiver 50 is separately treated, thereby reducing the ratio of the first substance transferred from the intercooler 60 to the compressor 30, and preventing a decrease in re-liquefaction efficiency due to the non-condensable gas.

[0100] Specifically, in this embodiment, the non-condensable gas separated and discharged in the receiver 50 can be cooled in an additional intercooler 60c (which can also be called a heat exchanger). The additional intercooler 60c will be described in detail below, and a non-condensable gas treatment line L22 through which the non-condensable gas flows may be provided from the receiver 50 to the additional intercooler 60c.

[0101] The additional intercooler 60c cools the non-condensable gas separated from the receiver 50 using at least a portion of the liquid-phase evaporative gas transferred from the receiver 50. While the intercooler 60 described above reduces the pressure of a portion of the evaporative gas condensed in the condenser 40 and cools the remaining evaporative gas, the additional intercooler 60c can cool the non-condensable gas separated in the receiver 50 using at least a portion of the condensed evaporative gas.

[0102] In this case, the additional intercooler 60c may be provided to replace the first intercooler 60a, or the additional intercooler 60c may be provided together with the first and second intercoolers 60. However, the following description will be made assuming the former case.

[0103] The additional intercooler 60c is provided so that the liquid-phase evaporative gas transferred from the receiver 50 can be decompressed by a pressure reducing valve 61 and then stored therein, and the non-condensable gas exchanges heat with the liquid-phase evaporative gas while passing through an internal cooling passage 62. In this case, the non-condensable gas passing through the interior of the additional intercooler 60c may be cooled by the liquid-phase evaporative gas and then transferred to the liquefied gas storage tank 10.

[0104] Similarly to the first intercooler 60a, the additional intercooler 60c can transfer vapor-phase evaporative gas generated therein during heat exchange to the compressor 30. Therefore, the additional intercooler 60c can be used to implement intercooling of the compressor 30.

[0105] And / or the additional intercooler 60c may transfer the vapor phase evaporated gas generated by heat exchange to the liquid phase evaporated gas flowing from the intercooler 60 to the liquefied gas storage tank 10. That is, the additional intercooler 60c may allow the vapor phase evaporated gas to be injected into the evaporated gas liquefaction line L20, and in this case, the vapor phase evaporated gas transferred from the additional intercooler 60c to the evaporated gas liquefaction line L20 may merge near the point where the liquid phase flows into the evaporated gas liquefaction line L20 from the gas-liquid separator 80 described below.

[0106] In some cases, the non-condensable gas separated in the receiver 50 may not be completely re-liquefied even when cooled by the evaporated gas while passing through the interior of the additional intercooler 60c. To address this, a gas-liquid separator 80 may be provided, and the non-condensable gas treatment line L22 may extend from the receiver 50, pass through the additional intercooler 60c, and then be connected to the gas-liquid separator 80. The gas-liquid separator 80 will be described later.

[0107] The gas-liquid separator 80 separates the cooled non-condensable gas into gas and liquid. The gas-liquid separator 80 is provided on the non-condensable gas treatment line L22 and may be provided between the additional intercooler 60c and the liquefied gas storage tank 10 based on the flow of the non-condensable gas.

[0108] As described above, the non-condensable gas separated in the receiver 50 is at least partially liquefied by the evaporated gas in the additional intercooler 60c, but some vapor phase may remain, and if the vapor phase is injected into the liquefied gas storage tank 10, the effect of reducing the ratio of the first substance in the condenser 40 may be reduced.

[0109] Therefore, the gas-liquid separator 80 can transfer only the liquid phase of the cooled non-condensable gas to the liquefied gas storage tank 10, and the gas phase can be discharged to the outside (such as a vent header) via the vent line L23 or supplied to another demand destination.

[0110] As described above, this embodiment solves the problem of reduced liquefaction efficiency in the condenser 40 due to continuous circulation of the first substance during the re-liquefaction of liquefied gas by cooling the non-condensable gas separated in the receiver 50 with the evaporated gas. Therefore, this embodiment can omit or reduce the need to operate a separate non-condensable gas treatment mode, and can maintain stable liquefaction performance.

[0111] In addition to the above-mentioned embodiments, the present invention encompasses all embodiments that are generated by combining the above-mentioned embodiments and by combining at least one of the above-mentioned embodiments with known technology.

[0112] The present invention has been described in detail above through specific examples. However, these examples are for the purpose of specifically explaining the present invention, and the present invention is not limited thereto. It is clear that modifications and improvements can be made by a person having ordinary skill in the art within the technical spirit of the present invention.

[0113] Any simple variations or modifications of the present invention fall within the scope of the present invention, and the specific scope of protection of the present invention will be made clear by the appended claims.

Claims

1. 1. A system for processing liquefied gas that is a heavy hydrocarbon, comprising: a compressor that compresses evaporated gas generated in a liquefied gas storage tank in multiple stages; a condenser that condenses the evaporated gas compressed by the compressor; an intercooler disposed between the compressors, for mutually exchanging heat between a portion of the liquid-phase evaporated gas condensed in the condenser and the remainder, for transferring the vapor-phase evaporated gas generated by the heat exchange to the compressor, and for transferring the liquid-phase evaporated gas to the liquefied gas storage tank; a liquefied gas pump that pressurizes the liquefied gas in the liquefied gas storage tank, The liquefied gas pump comprises: an evaporative gas re-liquefaction system that delivers liquefied gas to the intercooler to liquefy vapor phase evaporative gas within the intercooler;

2. The intercooler is A part of the liquid phase evaporated gas condensed in the condenser is decompressed by a pressure reducing valve and then stored inside, and the rest is passed through the inside to mutually exchange heat with the evaporated gas; The liquefied gas pump comprises:

2. The evaporated gas re-liquefaction system according to claim 1, wherein liquefied gas is injected into the intercooler so that the liquefied gas lowers the temperature of a portion of the evaporated gas stored inside the intercooler and cools the remaining evaporated gas passing through the intercooler.

3. Liquefied gas is a mixture of a first substance and a second substance with different boiling points, The evaporated gas reliquefaction system according to claim 1 , wherein the intercooler transfers a first substance having a relatively low boiling point to the compressor as a vapor-phase evaporated gas during heat exchange with the evaporated gas.

4. The liquefied gas pump comprises: The evaporated gas reliquefaction system according to claim 3 , wherein the liquefied gas is transmitted to the intercooler to limit the amount of evaporation of the first substance within the intercooler to within a predetermined value.

5. As the system operates over time, the first substance continuously circulates through the compressor, the condenser, and the intercooler, and the ratio of the first substance in the evaporative gas flowing through the condenser increases; The liquefied gas pump comprises:

4. The evaporative gas reliquefaction system according to claim 3, wherein liquefied gas is transferred to the intercooler to reduce the flow rate of the first substance transferred from the intercooler to the compressor so that the ratio of the first substance in the evaporative gas flowing through the condenser is within a predetermined value.

6. The liquefied gas pump comprises: The evaporated gas reliquefaction system according to claim 3 , wherein when a ratio of the first substance in the evaporated gas flowing through the condenser is equal to or greater than a predetermined value, liquefied gas is transferred to the intercooler.

7. A ship comprising the evaporative gas reliquefaction system according to claim 1.

Citation Information

Patent Citations

  • Method and apparatus for reeliquefying gas in liquefied petroleum gas storing installation

    JP1979163783A

  • Method and system for handling warm LPG loads

    JP2013514944A

  • Method and apparatus for reliquefying natural gas

    JP2016505784A

  • ship

    JP2017088153A

  • Ships

    JP2019509929A