...
首页> 外文期刊>Transactions of The Institution of Chemical Engineers. Process Safety and Environmental Protection, Part B >Science-based framework for ensuring safe use of hydrogen as an energy carrier and an emission-free transportation fuel
【24h】

Science-based framework for ensuring safe use of hydrogen as an energy carrier and an emission-free transportation fuel

机译:基于科学的框架,可确保安全使用氢作为能量载体和无排放的运输燃料

获取原文
获取原文并翻译 | 示例
           

摘要

The objective of this research is to examine the safety-related characteristics of candidate hydrogen storage materials being considered for use in light-duty fuel-cell vehicles (LD-FCV) under the U.S. Department of Energy (DOE) Hydrogen Program. This research aims to provide useful meaning to the general DOE safety target by establishing a link between the safety-related characteristics of candidate storage materials and satisfaction of DOE safety target. Accordingly, a science-based framework has been developed and consists of standardized materials tests (based on internationally accepted ASTM and United Nations testing protocols), novel risk mitigation strategies, and subscale system demonstration. The examined storage materials include NaAlH4, AlH3, 2LiBH4+MgH2, 3Mg(NH2)2·8LiH, NH3BH3, and activated carbon (Maxsorb AX-21). The scope of safety tests covers conditions that the storage material may encounter during postulated accident scenarios such as dust cloud explosion, materials reactivity in air and other fluids, hot-surface contact, mechanical impact, and fast depressurization. The generated results uncovered potential fire and explosion risks under accidental conditions. The generated insights can be useful for assigning realistic probability values needed for quantifying risk scenarios, characterizing material’s hazard class, and supporting current and new hydrogen safety codes and standards. For risk mitigation, this study showed that powder compaction could be effective in suppressing pyrophoricity of hydride powders such as NaAlH4. Also, the study has experimentally demonstrated that adding (NH4)H2PO4 as a flame retardant to the hydride powder before compaction could suppress sensitivity of hydrides like NaAlH4 to ignite due to mechanical impact. The results also revealed that Maxsorb AX-21 to be a safer hydrogen storage medium compared to the examined hydrides which exhibited potential safety concerns under certain accident conditions.
机译:本研究的目的是研究候选储氢材料的安全相关特征,被认为是在美国能源部(DOE)氢气计划下的轻型燃料 - 细胞车辆(LD-FCV)中使用。本研究旨在通过建立候选储存材料的安全相关特征与DOE安全目标的满意度之间的联系,为一般DOE安全目标提供有用的含义。因此,已经开发了一种基于科学的框架,包括标准化材料测试(基于国际公认的ASTM和联合国测试协议),新的风险缓解策略和次码系统示范。检查的储存材料包括NaalH4,AlH3,2LibH4 + MgH2,3mg(NH2)2·8LIH,NH 3B 3和活性炭(MAXSORB AX-21)。安全测试的范围涵盖了储存材料在假冒云爆炸,空气和其他流体中的材料反应性,热表面接触,机械冲击和快速减压期间储存材料可能遇到的条件。产生的结果在意外条件下未发现潜在的火灾和爆炸风险。所产生的见解对于分配量化风险场景,表征材料的危险类别和支持电流和新的氢气安全码和标准的实际概念可以是有用的。对于风险缓解,该研究表明,粉末压实可以有效地抑制氢化物粉体如NaalH4的热量。此外,该研究已经通过实验证明,在压实前将(NH 4)H 2 PO 4作为阻燃剂加入氢化物粉末可以抑制氢化物如Naalh4的敏感性,因为机械冲击引起的。结果还显示,与在某些事故条件下表现出潜在的安全性问题的潜在安全问题相比,MaxSorb Ax-21是更安全的储氢介质。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号