Research on the relationship between the centerline velocity, aspect ratio and exhaust airflow rate for a slot and a rectangular capture hood in an local exhaust ventilation system

被引:0
作者
Tian, Boyuan [1 ]
Kubota, Yuji [2 ]
Murata, Masaru [1 ]
机构
[1] Waseda Univ, Fac Sci, Engn Sch Creat Sci & Engn, Dept Resources & Environm Engn, Tokyo, Japan
[2] Waseda Univ, Fac Sci & Engn, Tokyo, Japan
关键词
Slot capture hood; Centerline velocity; Computational fluid dynamics (CFD); Aspect ratio; Dimensionless; Local exhaust ventilation; LATERAL EXHAUST; EFFICIENCY; EXPOSURE;
D O I
10.2486/indhealth.2022-0045
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
When using a local exhaust hood to remove harmful substances from the production process, the exhaust airflow rate must be calculated according to the capturing velocity specified by the relevant regulations. The Numano and American Conference of Governmental Industrial Hy-gienists (ACGIH) equations are used in Japan and the US, respectively, for estimating the exhaust airflow rate of slot hoods. However, these equations differ from each other, and when using these equations to calculate the exhaust airflow rate of the capture hood, whether using Japan's equation or ACGIH, the hood type (slot or rectangular hood) should be distinguished at first. Therefore, this study performs experiments and a computational fluid dynamics (CFD) simulation to investigate the relationship between the centerline velocity and the aspect ratio for five types of capture hoods. The results showed good agreement between simulated and experimental centerline velocities when the distance from the hood face. A dimensionless velocity was introduced and a significant differ-ence in the relationship between the centerline velocity and the distance from the hood face with different aspect ratios was found. A unified equation was obtained that can express the relationship between exhaust airflow rate and centerline velocity regardless of the aspect ratio of the hood face of the free-standing capture hood.
引用
收藏
页码:222 / 231
页数:10
相关论文
共 14 条
[1]  
ACGIH, 2019, IND VENT MAN REC PRA
[2]   Challenges of using CFD simulation for the design and online control of ventilation systems [J].
Cao, Shi-Jie .
INDOOR AND BUILT ENVIRONMENT, 2019, 28 (01) :3-6
[3]   Research on the axial velocity change rule of desktop slot exhaust hood [J].
Chen, Jianwu .
INDUSTRIAL HEALTH, 2018, 56 (04) :278-284
[4]  
Fletcher B, 1977, Ann Occup Hyg, V20, P141, DOI 10.1093/annhyg/20.2.141
[5]   Local Exhaust Ventilation for the Control of Welding Fumes in the Construction Industry-A Literature Review [J].
Flynn, Michael R. ;
Susi, Pam .
ANNALS OF OCCUPATIONAL HYGIENE, 2012, 56 (07) :764-776
[6]   Influence of exhaust hood geometry on the capture efficiency of lateral exhaust and push-pull ventilation systems in surface treatment tanks [J].
Gonzalez, Enrique ;
Marzal, Francisco ;
Minana, Agustin ;
Minarro, Marta Doval .
ENVIRONMENTAL PROGRESS, 2008, 27 (03) :405-411
[7]   Predicting worker exposure - The effect of ventilation velocity, free-stream turbulence and thermal condition [J].
Li, Jun ;
Yavuz, Ibrahim ;
Celik, Ismail ;
Guffey, Steve .
JOURNAL OF OCCUPATIONAL AND ENVIRONMENTAL HYGIENE, 2007, 4 (11) :864-874
[8]  
Logachev IN, 2016, LOCAL EXHAUST VENTIL, P1
[9]  
Logachev IN, 2014, INDUSTRIAL AIR QUALITY AND VENTILATION: CONTROLLING DUST EMISSIONS, P1
[10]  
Ojima Jun, 2012, Sangyo Eiseigaku Zasshi, V54, P108