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首页> 外文期刊>Environmental Science & Technology >High-Gravity Carbonation Process for Enhancing CO_2 Fixation and Utilization Exemplified by the Steelmaking Industry
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High-Gravity Carbonation Process for Enhancing CO_2 Fixation and Utilization Exemplified by the Steelmaking Industry

机译:炼钢业示范的高重力碳化工艺,以增强CO_2的固定和利用

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摘要

The high-gravity carbonation process for CO_2 mineralization and product utilization as a green cement was evaluated using field operation data from the steelmaking industry. The effect of key operating factors, including rotation speed, liquid-to-solid ratio, gas flow rate, and slurry flow rate, on CO_2 removal efficiency was studied. The results indicated that a maximal CO_2 removal of 97.3% was achieved using basic oxygen furnace slag at a gas-to-slurry ratio of 40, with a capture capacity of 165 kg of CO_2 per day. In addition, the product with different carbonation conversions (i.e., 0%, 17%, and 48%) was used as supplementary cementitious materials in blended cement at various substitution ratios (i.e., 0%, 10%, and 20%). The performance of the blended cement mortar, including physicochemical properties, morphology, mineralogy, compressive strength, and autoclave soundness, was evaluated. The results indicated that the mortar with a high carbonation conversion of slag exhibited a higher mechanical strength in the early stage than pure portland cement mortar, suggesting its suitability for use as a high early strength cement. It also possessed superior soundness compared to the mortar using fresh slag. Furthermore, the optimal operating conditions of the high-gravity carbonation were determined by response surface models for maximizing CO_2 removal efficiency and minimizing energy consumption.
机译:使用炼钢行业的现场操作数据评估了CO_2矿化和产品用作绿色水泥的高重力碳化过程。研究了关键操作因素,包括转速,液固比,气体流速和浆液流速对CO_2去除效率的影响。结果表明,使用碱性氧气炉渣在气泥比为40的情况下,最大CO_2去除率为97.3%,每天的捕集能力为165 kg CO_2。另外,将具有不同碳酸化转化率(即0%,17%和48%)的产品以各种取代率(即0%,10%和20%)用作掺合水泥中的辅助水泥材料。评价了混合水泥砂浆的性能,包括理化性质,形态,矿物学,抗压强度和高压釜的安定性。结果表明,具有高炉渣碳化转化率的砂浆在早期具有比纯硅酸盐水泥砂浆更高的机械强度,表明其适合用作高早期强度水泥。与使用新鲜炉渣的砂浆相比,它还具有出色的稳固性。此外,通过响应表面模型确定了高重力碳酸化的最佳操作条件,以最大化CO_2去除效率和最小化能耗。

著录项

  • 来源
    《Environmental Science & Technology》 |2015年第20期|12380-12387|共8页
  • 作者单位

    Graduate Institute of Environmental Engineering, National Taiwan University, 71 Chou-Shan Road, Da-an District, Taipei City, 10673 Taiwan (R.O.C.);

    Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No. 1, Section 3, Zhongxiao E Road, Taipei City, Taiwan 10608, Taiwan (R.O.C.);

    China Steel Corporation, Kaohsiung, 1 Chung Kang Road, Hsiao Kang, Kaohsiung 81233, Taiwan (R.O.C.);

    China Steel Corporation, Kaohsiung, 1 Chung Kang Road, Hsiao Kang, Kaohsiung 81233, Taiwan (R.O.C.);

    Carbon Cycle Research Center, National Taiwan University, 71 Fan-Lan Road, Da-an District, Taipei City, 10672 Taiwan (R.O.C.);

    Graduate Institute of Environmental Engineering, National Taiwan University, 71 Chou-Shan Road, Da-an District, Taipei City, 10673 Taiwan (R.O.C.),Carbon Cycle Research Center, National Taiwan University, 71 Fan-Lan Road, Da-an District, Taipei City, 10672 Taiwan (R.O.C.);

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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