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首页> 外文期刊>Science of the total environment >Polyhydroxyalkanoates and biochar from green macroalgal Ulva sp. biomass subcritical hydrolysates: Process optimization and a priori economic and greenhouse emissions break-even analysis
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Polyhydroxyalkanoates and biochar from green macroalgal Ulva sp. biomass subcritical hydrolysates: Process optimization and a priori economic and greenhouse emissions break-even analysis

机译:聚羟基烷酸盐和生物炭来自绿色大甲杆菌Ulva sp。生物质亚临界水解产物:过程优化和先验经济和温室排放断裂分析

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摘要

Although macroalgae biomass is an emerging sustainable feedstock for biorefineries, the optimum process parameters for their hydrolysis and fermentation are still not known. In the present study, the simultaneous production of polyhydroxyalkanoates (PHA) and biochar from green macroalgae Ulva sp. is examined, applying subcritical water hydrolysis and Haloferax mediterranei fermentation. First, the effects of temperature, treatment time, salinity, and solid load on the biomass and PHA productivity were optimized following the Taguchi method. Hydrolysis at 170 °C, 20 min residence time, 38 g L~(-1) salinity with a seaweed solid load of 5% led to the maximum PHA yield of 0.104g g~(-1) Ulva and a biochar yield of 0.194 ± 1.23g g~(-1) Ulva. Second, the effect of different initial culture densities on the biomass and PHA productivity was studied. An initial culture density of 50 g L~(-1) led to the maximum volumetric PHA productivity of 0.024 ± 0.002 g L~(-1) h~(-1) with a maximum PHA content of 49.38 ± 0.3% w/w Sensitivity analysis shows that within 90% confidence, the annual PHA production from Ulva sp. is 148.14 g PHA m~(-2) year~(-1) with an annual biochar production of 42.6 g m~(-2) year~(-1). Priori economic and greenhouse gas break-even analyses of the process were done to estimate annual revenues and allowable greenhouse gas emissions. The study illustrates that PHA production from seaweed hydrolysate using extreme halophiles coupled to biochar production could become a benign and promising step in a marine biorefinery.
机译:虽然Macroalgae BioMass是用于生物档的新兴的可持续原料,但仍然未知为其水解和发酵的最佳过程参数。在本研究中,来自Green Macroalgae Ulva SP的多羟基烷烃(PHA)和生物炭的同时生产。检查,施用亚临界水水解和卤素地中霉素发酵。首先,在Taguchi方法之后优化了温度,处理时间,盐度和固体载荷对生物质和PHA生产率的影响。在170℃下水解,20分钟停留时间,38克升(-1)盐度,海藻固体载荷5%导致0.104gg〜(-1)ULVA的最大PHA产率为0.194± 1.23gg〜(-1)ULVA。其次,研究了不同初始培养密度对生物质和PHA生产率的影响。 50g L〜(-1)的初始培养密度导致最大体积PHA生产率为0.024±0.002g L〜(-1)H〜(-1),最大PHA含量为49.38±0.3%w / w敏感性分析表明,在90%的信心范围内,从ULVA SP的年度PHA生产。是148.14g pha m〜(-2)年〜(-1)年生物炭生产42.6 g m〜(-2)年〜(-1)。先验经济和温室气体破坏甚至分析该过程是为了估算年收入和允许的温室气体排放。该研究表明,使用与生物炭生产相连的极端卤素的海藻水解产物的PHA产生可能成为海洋生物料理的良性和有希望的步骤。

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  • 来源
    《Science of the total environment》 |2021年第20期|145281.1-145281.13|共13页
  • 作者单位

    Porter School of the Environment and Earth Sciences Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    Porter School of the Environment and Earth Sciences Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    Porter School of the Environment and Earth Sciences Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    Operations Research and Logistics Wageningen University & Research P.O. Box 8130 6700 EW Wageningen the Netherlands;

    School of Chemistry Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    Porter School of the Environment and Earth Sciences Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    School of Mechanical Engineering Tel Aviv University Tel Aviv Israel;

    School of Chemistry Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

    Center for Synthetic and Systems Biology School of Life Sciences Tsinghua University Beijing China;

    Porter School of the Environment and Earth Sciences Faculty of Exact Science Tel Aviv University Tel Aviv 69978 Israel;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biochar; Haloferax mediterranei; Polyhydroxyalkanoates; Subcritical hydrolysate; Ulva sp.;

    机译:生物炭;Haloferax Mediterranei;多羟基烷醇;亚临界水解产物;Ulva sp。;

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