- 制氫工藝與技術(shù)
- 毛宗強(qiáng) 毛志明 余皓
- 4837字
- 2020-03-13 17:20:41
參 考 文 獻(xiàn)
[1]https://baike.baidu.com/item/%E4%B8%AD%E5%9B%BD%E7%85%A4%E7%82%AD%E5%88%86%E7%B1%BB/3214821?fr=aladdin.
[2] 李冬燕.制氫技術(shù)研究進(jìn)展[J].河北化工,2008,31(4):6-8.
[3] 謝繼東,李文華,陳亞飛.煤制氫發(fā)展現(xiàn)狀[J].煤質(zhì)技術(shù),2007,13(2):77-81.
[4] 任相坤,袁明,高聚忠.神華煤制氫技術(shù)發(fā)展現(xiàn)狀[J].煤質(zhì)技術(shù),2006,(1):4-7.
[5] 謝克昌.煤氣化設(shè)計[M].北京:化學(xué)工業(yè)出版社,2010.
[6] 毛宗強(qiáng).氫能——21世紀(jì)的綠色能源[M].北京:化學(xué)工業(yè)出版社,2005.
[7] 肖云漢.煤制氫零排放系統(tǒng)[J].工程熱物理學(xué)報,2001,22(1).
[8] 尤彪,詹俊懷.固定床煤氣化技術(shù)的發(fā)展及前景[J].中氮肥,2009,(5):1-7.
[9] 張震.幾種煤制氣方法的技術(shù)現(xiàn)狀及工藝比較[J].河北化工,2009,32(6):41-42.
[10] 陳寒石,徐奕豐.灰熔聚流化床粉煤氣化技術(shù)[J].石油和化工節(jié)能,2005,(4):15-20.
[11] 李瓊玖,鐘貽烈,廖宗富,等.四種煤氣化技術(shù)及其應(yīng)用[J].河南化工,2008,25:4-7.
[12] 鄭振安.Shell煤氣化技術(shù)(SCGP)的特點(diǎn)[J].煤化工,2003,(2):7-11.
[13] 萬保健.魯奇爐與常壓固定床、航天爐的比較[J].河北化工,2012,35(3):7-9.
[14] http://blog.sina.com.cn/s/blog_52f526870102e7ec.html.
[15] 王延坤,王偉.多噴嘴對置式水煤漿氣化技術(shù)及其優(yōu)勢[J].中氮肥,2008,1:21-23.
[16] 趙巖.煤制H2——當(dāng)今全加氫型煉油廠的發(fā)展方向[J].煉油技術(shù)與工程,2012,42(4):11-13.
[17] 閔劍.煤制氫在煉廠中應(yīng)用的技術(shù)經(jīng)濟(jì)分析[J].技術(shù)經(jīng)濟(jì),2010,9:27-29.
[18] 程一步.石化企業(yè)高硫石油焦利用途徑探討[J].煉油設(shè)計,1999,29(8):55-60.
[19] Coleman R Ferguson.Refining Gasification: Petroleum Coke to Fertilizer at Farmland's Coffeyville,KS Refinery.NPRA 1999 Annual Meeting,1999.
[20] GB/T 5751—2009 中國煤炭分類[S].
[21] http://wenku.baidu.com/view/066c4702de80d4d8d15a4f38.html.
[22] Jin H, Lu Y, Liao B, et al.Hydrogen production by coal gasification in supercritical water with a fluidized bed reactor[J].International Journal of Hydrogen Energy, 2010, 35(13):7151-7160.
[23] Korzh R, Bortyshevskyi V.Primary reactions of lignite-water slurry gasification under the supercritical conditions[J].Journal of Supercritical Fluids, 2016, 117:64-71.
[24] 姜煒, 程樂明, 張榮,等.連續(xù)式超臨界水反應(yīng)器中褐煤制氫過程影響因素的研究[J].燃料化學(xué)學(xué)報, 2008, 36(6):660-665.
[25] 左洪芳, 杜新, 呂永康,等.連續(xù)式超臨界水中褐煤-焦化廢水共氣化制氫[J].煤炭轉(zhuǎn)化, 2011, 34(2):46-50.
[26] http://www.cctd.com.cn/ 中國煤炭市場網(wǎng).
[27] 李奕陽.幾種制氫方法的生命周期評價研究[D].西安:西安建筑科技大學(xué), 2010.
[28] Stuart J Self, Bale V Reddy, Marc A Rosen.Review of underground coal gasification technologies and carbon capture[J].International Journal of Energy and Environmental Engineering,2012.
[29] Pei Peng.Study on underground coal gasification combined cycle coupled with on-site carbon capture and storage,Source: ProQuest Dissertations and Theses Global, 2012.
[30] Shafirovich, Evgeny,Varma,et al.Underground coal gasification: A brief review of current status. Industrial and Engineering Chemistry Research,2009,48(17):7865-7875.
[31] Bhutto, Abdul Waheed,Bazmi, et al Underground coal gasification: From fundamentals to applications.Progress in Energy and Combustion Science,2013,39(1):189-214.
[32] Roddy, Dermot J,Younger,et al.Underground coal gasification with CCS: A pathway to decarbonising industry, Energy and Environmental Science,2010,3(4):400-407.
[33] Imran, Muhammad,Kumar,et al.Environmental concerns of underground coal gasification.Renewable and Sustainable Energy Reviews,2014,31:600-610.
[34] Yang, Dongmin, Koukouzas,et al.Recent development on underground coal gasification and subsequent CO2 storage. Journal of the Energy Institute,2016,89(4):469-484.
[35] Brown, Kristin M. In situ coal gasification: An emerging technology. 29th Annual National Conference of the American Society of Mining and Reclamation,2012:51-70.
[36] Prabu V, Mallick, Nirmal. Coalbed methane with CO2 sequestration: An emerging clean coal technology in India. Renewable and Sustainable Energy Reviews,2015,50:229-244.
[37] Agyarko,Barnie L.A review of non-renewable energy options in Illinois. International Journal of Oil, Gas and Coal Technology,2013,6(3): 288-347.
[38] Yang D, Sarhosis V,Sheng Y.Thermal-mechanical modelling around the cavities of underground coal gasification.J Energy Inst, (2014),87(4):321-329.
[39] Clean Energy in Australia: UCG Demonstration Facility, Queensland (2013) Available from: http://www.lincenergy.com/clean_energy_australia.php.
[40] Dongmin Yang, Nikolaos Koukouzas, Michael Green,et al.Recent development on underground coal gasification and subsequent CO2 storage.Journal of the Energy Institute,2016,89(4):469-484.
[41] Yang D,Sheng Y,Green M.UCG: where in the world?.Chem Eng, 2014, 872:38-41.
[42] http://wenku.baidu.com/link?url=SgVN9P1cQWxHPRIoF19j_TIutfjBdilm_e0ZZi9D7jglnQ1uMrYk9Fucsv17HXN_GR5sxtbtdkn0wHR7JD4ZhF9UtJ7E4KhF-XwNW_lMd4m.
[43] 馬曉飛,王永兵.地下煤氣化技術(shù)的發(fā)展與應(yīng)用[J].中國化工裝備 ,2013(02).
[44] http://www.ccin.com.cn/ccin/news/2012/10/23/243455.shtml.
[45] Coughlin R W,F(xiàn)arooque M.Hydrogen production from coal,water and electrons[J].Nature, 1979, 279: 301-303.
[46] Coughlin R W,F(xiàn)arooque M.Electrochemical gasification of coal-simultaneous production of hydrogen and carbondioxide by a single reaction involving coal water, and electrons[J].Ind Eng Chem Process Des Dev,1980,19(2):211-219.
[47] Coughlin R W, Farooque M. Consideration of electrodes and electrolytes for electrochemical gasification of coal by anodic oxidation [J].Journal of Applied Electrochemistry, 1980, 10(6): 729-740.
[48] Coughlin R W,F(xiàn)arooquc M.Hydrogen production from coal,water and electrons[J].Ind Eng Chem.Process, 1982, 21:559-564.
[49] Dhouge P M,SfilweH D E,Park Su-Moon.Electrochemical studies of coal slurry oxidation mechanisms[J].J Elecctrochem Soc,1982,129(8):1719-1724.
[50] Dhouge P M, Park S M.Electrochemistry of coal slurries - 2.Studies on various experimental parameters affecting oxidation of coal slurries[J].Journal of the Electrochemical Society,1983, 130(5):1029-1036.
[51] Dhouge P M,Park Su-Moon.Electrochemical studies of coal slurries Ⅲ.FTIR studies of coal oxidation mechanisms[J].J Electrochem Soc,1983,130(7):1539-1542.
[52] Okada G,Gxlmswamy V, Bockris J O M.On the electrolysis of coal slurries[J]. J Electrochem Soc,1981,128:2097-2102.
[53] Murphy O J,Bockris J O M.Int J Hydrogen Economy,1985(10):453-474.
[54] Ahn S,Tatarchuk B J, Kerby M C,et al.Selective electrochemical oxidation of coal in aqcous alkaline electrode[J].J Electrochem Soc,1995,142(3):782-787.
[55] Botte G G,et al.206th Electrochemical Society Meeting,Abstracts 559 and 565.
[56] Patil P,Abreu Y D,Botte G G J.Power Sources,2006, 158:368.
[57] 印仁和,呂士銀,姬學(xué)彬.電解煤漿制氫陽極的制備及電催化活性研究[J].化學(xué)學(xué)報,2007,65(24),2847-2852.
[58] 戴衡,趙永豐.固體燃料-水電解制氫的研究[J].燃料化學(xué)學(xué)報, 1984,12(4):289-296.
[59] 唐致遠(yuǎn),劉昭林,郭鶴桐.酸性介質(zhì)中鎂電化學(xué)氧化動力學(xué)的研究[J].天津大學(xué)學(xué)報,1992,1:31-37.
[60] Yin R H,Zhang L,Ji X B,et al.S Y 211th Electrochemical Society Meeting[C].2007:348.
[61] 劉歡,王志忠.煤電化學(xué)氣化的可能性[J].煤炭轉(zhuǎn)化,2000,23(4):11-14.
[62] Anthony K E, Linge H G.Oxidation of Coal Slurries in Acidified Ferric Sulfate[J].Journal of the Electrochemical Society, 1983,130 (11):2217-2219.
[63] Dhouge P M, Stilwell D E, Park S M. Electrochemical studies of coal slurry oxidation mechanisms [J].Journal of the Electrochemical Society, 1982, 129(10): 1719-1724.
[64] Baldwin R P, Jones K F, Joseph J T,et al. Voltammetry and electrolysis of coal slurries and H-coal liquids[J] .Fuel, 1981,60(8):739-743.
[65] Dhooge P M, Park S M. Electrochemistry of coal slurries .3. FTLR studies of electrolysis of coal [J].Journal of the Electrochemical Society ,1983,130(7) :1539-1542.
[66] Kreysa G, Kochanek W. Kinetic investigations of the primary step of electrochemical coal oxidation [J].Journal of the Electrochemical Society, 1985, 132:2084-2089.
[67] 郭鶴桐,劉昭林,唐致遠(yuǎn).煤炭有效利用的新方法——煤的電解氧化[J].化工進(jìn)展,1989,4:48-51.
[68] Baldwin R P, Jones K F, Joseph T T, et al.Voltammetry and Electrolysis of coal slurries and H-coal liquids.Fuel, 1981, 60(8): 739.
[69] 張玉萍,鞠鶴,武宏讓,等.鉑鈦不溶性陽極的研制[J].表面技術(shù),2002,31(4):37-39.
[70] 張磊.電解煤漿制取H2的工藝條件的研究[D].上海:上海大學(xué),2007.
[71] Hesenov A, Kinik H, Puli G,et al. Electrolysis of coal slurries to produce hydrogen gas: Relationship between CO2 and H2 formation [J].International journal of hydrogen energy, 2011, 36(9): 5361-5368.
[72] Hesenov A, Meryemoglu B, Icten O. Electrolysis of coal slurries to produce hydrogen gas: Effects of different factors on hydrogen yield. International journal of hydrogen energy, 2011, 36(19):12249-12258.
[73] Tomat R, Salmaso R, Zecchin S. Electrochemistry of carbonaceous materials 1: Oxidation of Sardinian coal by Fe(Ⅲ) ions [J] .Fuel ,1992,71(4):459-462.
[74] Tomat R, Salmaso R, Zecchin S. Electrochemistry of carbonaceous materials 2: Anodic electroactivity of coal slurries in 85% phosphoric acid media [J].Fuel, 1992, 71(4).
[75] Seehra M S, Ranganathan S, Manivannan A. Carbon-assisted water electrolysis:an energy-efficient process to produce pure hydrogen at room temperature [J].Applied Physics Letters, 2007,(90): 44-104.
[76] Seehra M S, Bollineni S. Nanocarbon boosts energy-efficient hydrogen production in carbon-assisted water electrolysis [J]. International Journal of Hydrogen Energy, 2009, 34(15): 6078-6084.
[77] Demoz A,Khulbe C,F(xiàn)airbridge C,et al. Iodide mediated electrolysis of acidic coke/coal suspension [J]. Journal of Applied Electrochemistry, 2008, 38(6):845-851.
[78] Jin X, Botte G G. Feasibility of hydrogen production from coal electrolysis at intermediate temperatures [J].Journal of Power Sources, 2007, 171(2): 826-834.
[79] 劉歡,王志忠. 煤電解氧化的伏安特性的研究[J].燃料化學(xué)學(xué)報,2002,30(2):182-185.
[80] Pmshanth Pati, Yolanda De Abreu,Botte G G.Electrooxidation of coal slurries on different electrode materials[J].Power Sources,2006, 158: 368-375.
[81] 程樂明,張榮,畢繼誠.KOH對低階煤在超臨界水中制取富H2體的影響[J].化工學(xué)報,2004,55(增刊).
[82] 閆秋會,郭烈錦,梁興,等.煤與生物質(zhì)共超臨界水催化氣化制氫的實(shí)驗(yàn)研究[J].西安交通大學(xué)學(xué)報,2005,39(5):454-457.
[83] 程樂明,姜煒,張榮,等.超臨界水中褐煤制氫過程分析[C]:第七屆全國氫能學(xué)術(shù)會議論文集.武漢:2006.
[84] 孫冰潔, 杜新, 張榮,等.Ca(OH)2對褐煤在連續(xù)式超臨界水反應(yīng)器中制氫的影響[C]:第九屆全國氫能學(xué)術(shù)會議.長沙:2008.
[85] 姜煒,程樂明,張榮,等.Ca基CO2吸收劑再生次數(shù)對超臨界水中褐煤制氧過程的影響[C]:第七屆全國氫能學(xué)術(shù)會議論文集,武漢:2006.
[86] 姜煒,程樂明,張榮,等.連續(xù)式超臨界水反應(yīng)器中褐煤制氫過程影響因素的研究[J].燃料化學(xué)學(xué)報,2008-12-15.
[87] 孫冰潔,杜新,張榮,等.KOH對超臨界水中褐煤連續(xù)制氫的影響[J].燃料化學(xué)學(xué)報,2010-10-15.
[88] 孫冰潔,杜新,張榮,等.鈣基固定劑對制氫和污染性氣體減排的影響[J].電力科技與環(huán)保,2010-12-15.
[89] 孫冰潔,杜新,張榮,等.雙氧水對超臨界水中褐煤制氫過程的影響[J].石油煉制與化工,2011-02-12.
[90] 孫冰潔,杜新,張榮,等.Ca(OH)2對褐煤在連續(xù)式超臨界水反應(yīng)器中制氫的影響[J].International Hydrogen Forum Programme and Abstract,2008-08-03, 中國北京.
[91] 張喆,胡瑞生,武君,等.煤超臨界水氣化制氫的影響因素分析[J].煤化工 , 2011,(04).
[92] 王宏那.超臨界水中煤氣化關(guān)鍵設(shè)備的數(shù)值模擬研究[D].天津:天津大學(xué), 2014.
[93] 翁曉霞.超臨界水中煤熱解及催化氣化機(jī)理研究[D]. 天津:天津大學(xué), 2013.
[94] 張倩倩.新型超臨界水中煤氣化制氫產(chǎn)物的CO2分離研究[D].西安:西安建筑科技大學(xué), 2014.
[95] 苗海軍.超臨界水中煤氣化制氫熱力發(fā)電系統(tǒng)的構(gòu)建以及能量轉(zhuǎn)化機(jī)理分析[D].西安:西安建筑科技大學(xué),2014.
[96] 左洪芳.連續(xù)式超臨界水中褐煤/焦化廢水共氣化制氫研究[D].太原:太原理工大學(xué),2011.
[97] 郭烈錦,趙亮,呂友軍,等.煤炭超臨界水氣化制氫發(fā)電多聯(lián)產(chǎn)技術(shù)[J].工程熱物理學(xué)報 , 2017,(03).
[98] Modell M, Reid R C, Amin S I.Gasification Process:US, 4113446[P].1978-09-12.
[99] Demirbas A.Biodiesel Production from VegetableOils Via Catalytic and Noncatalytic Supercritical Methanol Transesterification Methods[J].Progress in Energy and Combustion Science, 2005, 31(5-6): 466-487.
[100] Balat M.Potential Importance of Hydrogen as a Future Solution to Environmental and Transportation Problems [J].International Journal of Hydrogen Energy, 2008, 33(15): 4013-4029.
[101] Wang J, Ta Karada T.Role of Calcium Hydroxide in Supercritical Water Gasification of Low-rank Coal [J].Energy & Fuel, 2001, 15(2): 356-362.
[102] Lin S, Suzuki Y, Hatano H, et al.Hydrogen Production from Hydrocarbon by Integration of Water carbon Reaction and Carbon Dioxide Removal (Hy Pr-RING method) [J].Energy & Fuels, 2001, 15(2): 339-343.
[103] Sinag A, Kruse A, Schwarzkopf V.Key Compounds ofthe Hydropyrolysis of Glucose in Supercritical Water in the Presence of K2CO3 [J].Industrial & Engineering Chemistry Research,2003,42(15):3516-3521.
[104] Antal M J, Allen S G, Schulman D, et al.Biomass Gasification in Supercritical Water [J].Industrial & Engineering Chemistry Research, 2000, 39(11): 4040-4053.
[105] 陳會會.褐煤亞/超臨界水液化轉(zhuǎn)化研究[D].昆明:昆明理工大學(xué),2014.
[106] 王敏麗.褐煤在亞/超臨界水中催化加氫液化升級的研究[D].昆明:昆明理工大學(xué),2015.
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