首页> 外文期刊>Science and Technology for the Built Environment >Comparison of simple and complex methods for determining refrigerant/air laminar burning velocities from the pressure rise in constant-volume experiments
【24h】

Comparison of simple and complex methods for determining refrigerant/air laminar burning velocities from the pressure rise in constant-volume experiments

机译:从恒定体积实验中的压力升高测定制冷剂/空气层层燃烧速度的简单和复杂方法的比较

获取原文
获取原文并翻译 | 示例
           

摘要

Laminar burning velocity is currently one of the metrics for differentiating refrigerant flammability risk per ANSI/ASHRAE Standard 34-2019, Designation and Safety Classification of Refrigerants. Several methods exist for determining laminar burning velocity, and the HVAC&R industry is currently evaluating whether the constant-volume method (CVM) is appropriate for measuring the burning velocity of refrigerants. This study focuses specifically on the different data reduction techniques that can be applied to yield the laminar burning velocity from the pressure rise in CVM experiments. More specifically, simple analytical expressions and more complex numerical models are applied to estimate the mass fraction of burned gas from the pressure rise x(P), which is a requisite for determining burning velocity from the measure pressure. When following the experimental and post-processing recommendations outlined in this paper, one of the simpler methods of estimating x(P) yields R32/air burning velocities that are within 5% of those deduced using the more complex methods of estimating x(P). The method presented can be applied to experimental pressure rise data obtained in both normal gravity and microgravity.
机译:Laminar燃烧速度目前是每个ANSI / ASHRAE标准34-2019的用于区分制冷剂可燃性风险的度量标准之一,制冷剂的指定和安全分类。存在用于确定层状燃烧速度的几种方法,HVAC&R工业目前正在评估恒定体积法(CVM)是否适合测量制冷剂的燃烧速度。本研究专注于可以应用的不同数据降低技术,以产生来自CVM实验中的压力升高的层状燃烧速度。更具体地,施加简单的分析表达和更复杂的数值模型来估计来自压力升高X(P)的燃烧气体的质量分数,这是用于从测量压力确定燃烧速度的必要条件。在本文中概述的实验和后处理建议之后,估计X(P)的更简单方法之一产生R32 /空气燃烧速度,其在使用更复杂的估计X(P)所推断的那些中的5%内。呈现的方法可以应用于在正常重力和微匍匐中获得的实验压力上升数据。

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