• Title/Summary/Keyword: LPG Gas

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A Study on Investigation of LPG Supply System by Bulk Lorry in Korea (벌크로리를 통한 국내 LPG 공급시스템 실태조사에 관한 연구)

  • Lee, Hwa-young;Lee, Min-kyung;Kim, Jeong-hwan;Kil, Seong-hee;Kim, Young-gyu;Kim, Hong-Chul
    • Journal of the Korean Institute of Gas
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    • v.24 no.1
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    • pp.10-16
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    • 2020
  • In the safety control and business of liquefied petroleum gas act, LPG supply using bulk lorry of liquefied petroleum gas dealer is possible only to small storage tanks of less than 3 tons in bulk lorry less 10 tons. The government has announced plans to extend the bulk lorry supply to storage tanks of less than 10 tons, reflecting improved safety management capabilities of liquefied petroleum gas dealer. Therefore, in order to supply LPG to the storage tank stably through the bulk lorry, the technical evaluation of the existing bulk lorry LPG supply system is needed. In this study, we will investigate the status of LPG supply system in Korea through bulk lorry and investigate safe LPG supply method. First, we conducted a survey on the supply of LPG storage tanks through bulk lorry to related companies to collect basic data. Based on the results of the surveys, we will conduct field surveys to provide basic data for stable LPG supply.

A Study on the Exhaust Emissions Characteristics of LPG Vehicle using LPG Fuel with Sulfur Free Odorant (비황분계 부취제를 혼합한 LPG 연료의 차량 배출가스 특성에 관한 연구)

  • Kim, Jae-Kon;Lee, Ho-Kil;Yim, Eui Soon;Jung, Choong-Sub
    • Journal of Korean Society for Atmospheric Environment
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    • v.30 no.6
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    • pp.545-554
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    • 2014
  • In general, odorant was added to fuel gases, such as LPG, LNG and city gas, to prevent gas poisoning, ignition, explosion, or other accident caused by fuel gases, and to enable immediate and easy detection of fuel-gas leakage by emitting an offensive smell. This study describes a study on the exhaust emissions characteristics and fuel economy of liquefied petroleum gas (LPG) vehicle using LPG fuel with new sulfur free odorant. New sulfur free odorant was added to LPG to reduce sulfur content of the LPG. Its performance and exhaust emission were compared to those of LPG with sulfur containing odorant (EM, ethyl mercaptan). Engine performance using LPG with sulfur free odorant was similar to that with sulfur-containing odorant. Exhaust emissions from the LPG vehicle with LPG including sulfur free odorant were also similar to those with LPG including sulfur containing odorant in the FTP 75 and NEDC mode. There experimental results suggest that the sulfur free odorant may substitute for the sulfur containing odorant in LPG fuel.

A Study on the Natural Evaporation Capacity of LPG Container (액화석유가스 용기의 자연 증발량에 관한 연구)

  • Jo Young-Do;Kim Ji-Yoon
    • Journal of the Korean Institute of Gas
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    • v.5 no.2 s.14
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    • pp.22-29
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    • 2001
  • The number of gas containers and the period of exchanging gas containers are vsy important in designing liquefied petroleum gas(LPG) supply system for small capacity domain. And also the evaluation of remaining LPG in containers to be exchanged is very useful information in commerce. However seldon has been studied on calculating method about those with respect to gas consumption pattern. In this study, a simulation method was developed to estimate the evaporation capacity of LPG container, the mass gas flow rate from LPG container, the temperature and vapor pressure of LPG, and the remained LPG at containers to be exchange by using LPG property equations, mass balance equation, and heat balance equation. The simulation results were correlated well with experimental data. The overall heat transfer coefficient from air to LPG is approximately $9{\~}13 kcal/m^2{\cdot}hr{\cdot}^{\circ}C$ and does not strongly affect on the evaporation capacity of LPG container. The mass gas flow rate from LPG container is constant when the vapor pressure of LPG is within pressure regulator's control range. While, out of range, it suddenly reduce to a evaporation rate which is balanced with heat transfer from air. The evaporation capacity of LPG container increased with surrounding temperature and the composition of propane, and decreased drastically with continuous gas consumption. The number of gas containers divided the number of houses using gas supply system was reduced by using automatic gas feeding device.

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Evaluation of Service Life of Low Pressure LP-Gas Regulators for Home Use (가정용 LPG 저압조정기의 사용수명 평가)

  • Kim Young-Gyu;Kim Pil-Jong;Cho Seok-Beom;Kwon Boo-Kil
    • Journal of the Korean Institute of Gas
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    • v.9 no.3 s.28
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    • pp.44-48
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    • 2005
  • Experimental works were carried out to evaluate the service life of low pressure LPG regulators for domestic use. Experimental results showed that the operating pressure of regulators used for 7 years notably deviated from the standard value of the adjusting pressure and the lock-up pressure. Thus, it is estimated that low pressure LPG regulators have approximately 6 years of service life.

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A Study on the Combustion and Explosion Characteristics According to Mixing Ratio of Gas (가연성 가스의 혼합비에 따른 연소 및 폭발특성에 관한 연구)

  • Oh Kyu-hyung
    • Journal of the Korean Institute of Gas
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    • v.9 no.4 s.29
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    • pp.50-56
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    • 2005
  • Liquefied Petroleum 6aso-PG) is combustible gas which used for fuel for domestic and automobiles. A research for adjust a component of LPG to improve the fuel characteristics and control the manufacturing process of that is carrying in petrochemical industry. Some kinds of LPG blending is considered as a adjusting method to control component of LPG. LPG is mainly propane for domestic use and butane for automobile use but propylene and butylene also a kind of LPG Change of explosion characteristic and combustion gas component by mixing of propylene in propane and butane was measured and analysed in this research. Based on the result of experiment, it was found that explosion pressure and pressure rise rate was slightly increased with mixing rate of propylene and it was considered the possibility of increasing the CO concentration in combustion gas with increase the mixing rate of propylene.

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A Study on the Performance of an LPG (Liquefied Petroleum Gas) Engine Converted from a Compression Ignition Engine

  • Choi, Gyeung-Ho;Kim, Tae-Kwon;Cho, Ung-Lae;Chung, Yon-Jong;Caton, Jerald;Han, Sung-Bin
    • Journal of Energy Engineering
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    • v.16 no.1 s.49
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    • pp.1-6
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    • 2007
  • The purpose of this study was to investigate the reduction of exhaust gas temperature in a LPG engine that had been converted from a diesel engine. A conventional diesel engine was modified to a LPG (Liquefied Petroleum Gas) engine by replacing the diesel fuel injection pump with a LPG fuel system. The research was performed by measuring the exhaust gas temperature upon varying spark ignition timing, airfuel ratio, compression ratio, and different compositions of butane and propane. Engine power and exhaust temperature were not influenced by various butane/propane fuel compositions. Finally, among the parameters studied in this investigation, spark ignition timing is one of the most important in reducing exhaust gas temperature.

A Study on the development of gas metering valve system (가스 계량 밸브 시스템의 개발에 관한 연구)

  • Choi, Young-Gyu
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.7 no.4
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    • pp.200-204
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    • 2014
  • LPG is used in the home would have to depend on the provider, because there is no method for measuring the capacitance. In addition, by measuring the gas capacities can not be known because of the LPG gas replacement time and requires an alarm for replacement. In this study, and that the gas capacities to the trusted user and the supplier, in order to know when it is time to change to LPG gas by applying a Hall effect sensor developed a gas capacities measurement the valve system.

The use of liquefied petroleum gas (lpg) and natural gas in gas turbine jet engines

  • Koc, Ibrahim
    • Advances in Energy Research
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    • v.3 no.1
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    • pp.31-43
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    • 2015
  • This paper compares the performance of JP-8(Jet Propellant) fuel and liquefied petroleum gas (LPG) and natural gas in the F110 GE100 jet engine. The cost of natural gas usage in gas turbine engines is lower than JP-8 and LPG. LPG cost is more than JP-8. LPG volume is bigger than JP-8 in the same flight conditions. Fuel tank should be cryogenic for using natural gas in the aircraft. Cost and weight of the cryogenic tanks are bigger. Cryogenic tanks decrease the move capability of the aircraft. The use of jet propellant (JP) is the best in available application for F110 GE 100 jet engine.

Development of Performance Test Procedure for the Excess Flow Valve for Buried Piping for the Domestic LPG Mass Supply System (국내 LPG 집단공급시설 환경에 적합한 매몰배관용 과류차단밸브 성능시험 절차 개발)

  • Jang, Chanyeong;Lee, Ugwiyeon;Lee, Jinhan
    • Journal of the Korean Institute of Gas
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    • v.22 no.6
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    • pp.16-27
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    • 2018
  • Since 2014, the Korean government has begun distributing LPG pipelines and LPG tankers to mountainous or island areas where it is difficult to open urban gas supply chains. When installing LPG supply facilities at village level and county level, it supplied consumers with 10 times higher quasi-low pressure (25 kPa to 100 kPa) than conventional gas supply pressure, increasing the risk of gas accident. Due to the pressure that is 10 times higher than the conventional gas supply pressure, large amounts of gas are released at a faster rate when leaked. In order to secure safety of quasi-low-pressure gas pipes, excess flow valves for quasi-low-pressure gas pipes are not developed and are not supplied in Korea. Therefore, Korea Gas Safety Corporation is investigating the performance standards and products of the excess flow valves in order to localize the excess flow valves.