DOI QR코드

DOI QR Code

Pyrolysis of Quercus Variabilis in a Bubbling Fluidized Bed Reactor

기포 유동층 반응기에서 굴참나무의 열분해반응 특성 연구

  • Lim, Dong-Hyeon (Department of Chemical Engineering, Kangwon National University) ;
  • Sim, Jae-Wook (Department of Chemical Engineering, Kangwon National University) ;
  • Kim, Seung-Soo (Department of Chemical Engineering, Kangwon National University) ;
  • Kim, Jinsoo (Department of Chemical Engineering, Kyung Hee University)
  • 임동현 (강원대학교 삼척캠퍼스 화학공학과) ;
  • 심재욱 (강원대학교 삼척캠퍼스 화학공학과) ;
  • 김승수 (강원대학교 삼척캠퍼스 화학공학과) ;
  • 김진수 (경희대학교 화학공학과)
  • Received : 2016.02.26
  • Accepted : 2016.07.11
  • Published : 2016.10.01

Abstract

Biomass has been concerned as one of the alternative energy resources because it is renewable, abundant worldwide, eco-friendly, and carbon neutral. Quercus variabilis has been studied to understand pyrolysis reaction characteristics, and to evaluate the efficiency of bio-energy production from fast pyrolysis. Quercus variabilis were fast pyrolyzed in a bubbling fluidized bed reactor at various reaction conditions. The effects of pyrolysis temperature between $400^{\circ}C$ and $550^{\circ}C$ on product yields were investigated. The yield of bio-oil was changed between 36.98 wt% and 39.14 wt%, and those of gas yield was 33.40 and 36.96 wt% with increasing reaction temperature. The higher heating value (HHV) of bio-oil at $500^{\circ}C$ ($3.0{\times}U_{mf}$) was 20.18 MJ/kg. The gas compositions were similar for all reaction conditions such as CO, $CO_2$ and $CH_4$, and $CO_2$ selectivity was the highest (37.16~50.94 mol%). The bio-oil has high selectivities for furfural, phenol and their derivatives such as 1-hydroxy-2-propanone, 2-methoxy-phenol, 1,2-benzendiol, 2,6-dimethoxy-phenol.

바이오매스는 대체 에너지원으로서 재생가능하고 전 세계적으로 고르게 분포하고 있으며, 친환경적이고 탄소중립적이어서 많은 관심을 받고 있다. 굴참나무를 대상으로 바이오에너지 생산의 효용성을 알아보기 위해 기포 유동층 반응기를 이용하여 급속 열분해반응 특성 연구를 수행하였다. 반응 온도에 변화에 따른 생성물의 수율 변화를 확인하기 위해 $400{\sim}550^{\circ}C$의 온도범위에서 급속 열분해반응 실험을 진행하였고, 이때 바이오-오일의 수율은 36.98~39.14 wt%, 가스의 수율은 33.40~36.96 wt%의 값을 나타내었다. 바이오-오일의 발열량은 $500^{\circ}C$, $3.0{\times}U_{mf}$ 조건에서 20.18 MJ/kg을 나타내었다. 생성된 열분해 가스의 주 생성물은 $CO_2$, CO 및 $CH_4$이며 $CO_2$의 선택성이 37.16~50.94 mol%로 가장 높았다. 바이오-오일은 푸르푸랄, 페놀과 이들의 유도체인 1-hydroxy-2-propanone, 2-methoxy-phenol, 1,2-benzendiol, 2,6-dimethoxy-phenol에 대한 높은 선택성을 가지고 있었다.

Keywords

References

  1. Won, J. S., "The Study on Bio-oil Production from Biomass by Fast Pyrolysis," Master's Thesis, Hanyang University, Seoul, Korea (2010).
  2. Kim, D. H., "A Study on Biomass Renewable Energy Use Pig Farming Waste," Master's Thesis, Tongmyong University, Busan, Korea(2009).
  3. Amidon, T. E., Wood, C. D., Shupe, A. M., Wang, Y., Graves, M. and Liu, S. J., "Biorefinery: Conversion of Woody Biomass to Chemicals, Energy and Materials," Journal of Biobased Meterials and Bioenergy, 2(2), 100-120(2008). https://doi.org/10.1166/jbmb.2008.302
  4. Bridgwater, A. V., "Review of Fast Pyrolysis of Biomass and Product Upgrading," Biomass and Bioenergy, 38, 68-94(2012). https://doi.org/10.1016/j.biombioe.2011.01.048
  5. Nussbaumer, T., "Combustion and Co-combustion of Biomass: Fundamentals, Thchnologies, and Primary Measures for Emission Reduction," Energy & Fuels, 17, 1510-1521(2003). https://doi.org/10.1021/ef030031q
  6. Bridgwater, A. V. and Maniatis, K., "The Production of Biofuels by the Thermochemical Processing of Biomass," In: Archer, MD., Barber, J., editors. Molecular to global photosynthesis., IC Press, London, pp. 521-612(2004).
  7. Choi, G. H., "Pyrolysis Characteristics for the Production of Bio-energy from Hemp by-products," Master's Thesis, Kangwon University, Samcheok, Korea(2012).
  8. Chea, K. S., Jo, T. S., Choi, S. H., Lee, S. M., Hwang, H. W. and Choi, J. W., "Properties of Quercus variabilis Bio-oil Prepared by Sample Preparation," J. of Korean Oil Chemists' Soc., 32, 148-156(2015). https://doi.org/10.12925/jkocs.2015.32.1.148
  9. Kang. H. K., Lee, I. G., Lee, K. H., Kim, B. S., Jo, T. S., Chae K. S., Park, S. H., Jung, S. C. and Park, Y. K., "Catalytic Rapid Pyrolysis of Quercus variabilis Over Nanoporous Catalyst," Journal of nanomaterials, Article ID 251974, 6(2015).
  10. Annual Book of ASTM Standards(1997).
  11. Park, J. M., "Combustion and Pyrolysis of Pine and Conifer for the Prevention of Forest Fire," Master's Thesis, Kangwon University, Samcheok, Korea(2011).
  12. Demirbas, A., "Calculation of Higher Heating Value of Biomass Fuels," Fuel, 76(5), 431-434(1997). https://doi.org/10.1016/S0016-2361(97)85520-2
  13. Carrier, M., Joubert, J.-E., Danje, S., Hugo, T., Gorgens, J. and Knoetze, J., "Impact of the Lignocellulosic Material on Fast Pyrolysis Yields and Product Quality," Bioresource Technology, 150, 129-138(2013). https://doi.org/10.1016/j.biortech.2013.09.134
  14. Czernik, S. and Bridgwater, A., "Overview of Applications of Biomass Fast Pyrolysis oil," Energy & Fuels, 18(2), 590(2004). https://doi.org/10.1021/ef034067u
  15. Mohan, D., Pittman C. U. Jr. and Steele, P. H., "Pyrolysis of Wood/Biomass for Bio-oil: A Critical Review," Energy & Fuels, 20(3), 848(2006). https://doi.org/10.1021/ef0502397
  16. Kim, S.-S. and Agblevor, F. A., "Thermogravimetric Analysis and Fast Pyrolysis of Milkweed," Bioresources Technology, 169, 367-373(2014). https://doi.org/10.1016/j.biortech.2014.06.079
  17. Yathavan, B. and Agblevor, F. A., "Catalytic Pyrolysis of Pinyonjuniper using Red mud and HZSM-5," Energy Fuels, 27(11) 6858-6865(2013). https://doi.org/10.1021/ef401853a
  18. Sanchez-Silva, L., Lopez-Gonzalez, D., Villasenor, J., Sanchez, P. and Valverde, J. L., "Thermogravimetric-mass Spectrometric Analysis of Lignocellulose and Marine Biomass Pyrolysis," Bioresource Technology, 109, 163-172(2012). https://doi.org/10.1016/j.biortech.2012.01.001
  19. Choi, J. W., Choi, D. H., Cho, T. S. and Meier, D., "Characterization of Bio-oils Produced by Fluidized Bed Type Fast Pyrolysis of Woody Biomass," Mokchae Konghak, 34(6) 36-43(2006).
  20. Ngo, T. A., Kim, J. S. and Kim, S.-S., "Fast Pyrolysis of Palm Kernel Cake Using a Fluidized Bed Reactor: Design of Experiment and Characteristics of Bio-oil," JIEC, 19, 137-143(2013).

Cited by

  1. Fast pyrolysis of pitch pine biomass in a bubbling fluidized-bed reactor for bio-oil production vol.98, pp.None, 2016, https://doi.org/10.1016/j.jiec.2021.04.005