Performance Estimation of a Louver Dust Collector Attached to the Bottom of a Subway Train Running in a Tunnel

Authors
Sim, Jung-BoWoo, Sang-HeeKim, Won-GeunYook, Se-JinKim, Jong BumBae, Gwi-NamYoon, Hwa Hyun
Issue Date
2017-08
Publisher
TAIWAN ASSOC AEROSOL RES-TAAR
Citation
AEROSOL AND AIR QUALITY RESEARCH, v.17, no.8, pp.1954 - 1962
Abstract
In underground tunnels, friction between the wheels and rails of subway trains creates particles, which are spread by the wind generated when trains pass by. A louver dust collector was attached to the bottom of a T-car of Seoul Subway Line 5 train in an effort to remove PM10 inside tunnels, and obtain data when it was in actual operation. It made several round trips during which differential pressure of the louver dust collector was measured in relation to train speed. By comparing and verifying the differential pressure estimated by simulation and that actually measured, it was possible to estimate average flow of air that went into the louver dust collector. Furthermore, by comparing and verifying the measurement results on collection efficiency of a lab-scale louver dust collector in a wind tunnel, along with the results of numerical analysis, it was possible to estimate the collection efficiency in relation to subway train speed. As a result, it was confirmed that higher running speeds of subway trains increased the flow of air going into the louver dust collector and subsequently decreased the particle size corresponding to 50% collection efficiency. In other words, the cut-off size was estimated to be 9.7 mu m at the lowest speed of 5 km h(-1), and 4.9 mu m at the top speed of 65 km h(-1), in normal speed range for the Seoul Subway Line 5 trains.
Keywords
PARTICULATE MATTER; STATIONS; SEOUL; PARTICLES; KOREA; PM2.5; SYSTEM; PM10; FLOW; PARTICULATE MATTER; STATIONS; SEOUL; PARTICLES; KOREA; PM2.5; SYSTEM; PM10; FLOW; Underground tunnel; Subway train; Louver dust collector; Collection efficiency
ISSN
1680-8584
URI
https://pubs.kist.re.kr/handle/201004/122451
DOI
10.4209/aaqr.2017.01.0043
Appears in Collections:
KIST Article > 2017
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