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Ventilation Equations for Improved Exothermic Process Control

机译:改善散热过程控制的通风方程

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摘要

Exothermic or heated processes create potentially unsafe work environments for an estimated 5–10 million American workers each year. Excessive heat and process contaminants have the potential to cause acute health effects such as heat stroke, and chronic effects such as manganism in welders. Although millions of workers are exposed to exothermic processes, insufficient attention has been given to continuously improving engineering technologies for these processes to provide effective and efficient control. Currently there is no specific occupational standard established by OSHA regarding exposure to heat from exothermic processes, therefore it is important to investigate techniques that can mitigate known and potential adverse occupational health effects. The current understanding of engineering controls for exothermic processes is primarily based on a book chapter written by W. C. L. Hemeon in 1955. Improvements in heat transfer and meteorological theory necessary to design improved process controls have occurred since this time. The research presented involved a review of the physical properties, heat transfer and meteorological theories governing buoyant air flow created by exothermic processes. These properties and theories were used to identify parameters and develop equations required for the determination of buoyant volumetric flow to assist in improving ventilation controls. Goals of this research were to develop and describe a new (i.e. proposed) flow equation, and compare it to currently accepted ones by Hemeon and the American Conference of Governmental Industrial Hygienists (ACGIH). Numerical assessments were conducted to compare solutions from the proposed equations for plume area, mean velocity and flow to those from the ACGIH and Hemeon. Parameters were varied for the dependent variables and solutions from the proposed, ACGIH, and Hemeon equations for plume area, mean velocity and flow were analyzed using a randomized complete block statistical design (ANOVA). Results indicate that the proposed plume mean velocity equation provides significantly greater means than either the ACGIH or Hemeon equations throughout the range of parameters investigated. The proposed equations for plume area and flow also provide significantly greater means than either the ACGIH or Hemeon equations at distances >1 m above exothermic processes. With an accurate solution for the total volumetric flow, ventilation engineers and practicing industrial hygienists are equipped with the necessary information to design and size hoods, as well as place them at an optimal distance from the source to provide adequate control of the rising plume. The equations developed will allow researchers and practitioners to determine the critical control parameters for exothermic processes, such as the exhaust flow necessary to improve efficacy and efficiency, while ensuring adequate worker protection.
机译:放热或加热过程每年可能为约5–1000万美国工人创造潜在的不安全工作环境。过多的热量和过程污染物有可能导致急性健康影响,例如中暑,以及慢性影响,例如焊工中的锰。尽管数以百万计的工人处于放热过程中,但是对于这些过程不断改进工程技术以提供有效和有效的控制的关注不足。目前,OSHA没有针对放热过程中暴露的热量制定具体的职业标准,因此,研究能够减轻已知和潜在的有害职业健康影响的技术非常重要。当前对放热过程的工程控制的理解主要基于W. C. L. Hemeon在1955年撰写的一本书。自此以来,已经发生了设计改进的过程控制所必需的传热和气象理论的改进。提出的研究包括对控制由放热过程产生的漂浮气流的物理特性,传热和气象理论的综述。这些特性和理论用于确定参数并建立确定浮力体积流量所需的方程式,以帮助改善通风控制。这项研究的目的是开发和描述一个新的(即提出的)流量方程,并将其与Hemeon和美国政府工业卫生专家会议(ACGIH)目前接受的方程进行比较。进行了数值评估,以比较提出的羽面积,平均速度和流量方程与ACGIH和Hemeon方程的解决方案。使用随机完整块统计设计(ANOVA)对提出的ACGIH和羽烟面积,平均速度和流量的Hemeon方程的因变量和解决方案的参数进行了更改。结果表明,在研究的参数范围内,提出的羽流平均速度方程比ACGIH方程或Hemeon方程具有明显更大的均值。所提出的羽流面积和流量方程组比放热过程距离> 1 m时的ACGIH方程组或Hemeon方程组还提供了明显更多的均值。借助针对总体积流量的精确解决方案,通风工程师和专业的工业卫生师将获得必要的信息,以设计和定型抽油烟机,并将其与烟源保持最佳距离,以充分控制上升的烟羽。所开发的方程式将使研究人员和从业人员能够确定放热过程的关键控制参数,例如提高功效和效率所必需的排气流量,同时确保对工人的充分保护。

著录项

  • 来源
    《Annals of Occupational Hygiene》 |2007年第3期|269-279|共11页
  • 作者单位

    National Institute for Occupational Safety and Health Division of Surveillance Hazard Evaluation and Field Studies 4676 Columbia Parkway MS-R14 Cincinnati OH 45226 USA;

    Department of Work Environment University of Massachusetts Lowell One University Avenue Lowell MA 01854 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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