Equivalence of elemental carbon by thermal/optical reflectance and transmittance with different temperature protocols

被引:573
作者
Chow, JC
Watson, JG
Chen, LWA
Arnott, WP
Moosmüller, H
Fung, K
机构
[1] Desert Res Inst, Reno, NV 89512 USA
[2] Atmoslyt Inc, Calabasas, CA 91302 USA
关键词
D O I
10.1021/es034936u
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Charring of organic carbon (OC) during thermal/optical analysis is monitored by the change in a laser signal either reflected from or transmitted through a filter punch. Elemental carbon (EC) in suspended particulate matter collected on quartz-fiber filters is defined as the carbon that evolves after the detected optical signal attains the value it had prior to commencement of heating, with the rest of the carbon classified as organic carbon (OC). Heretofore, operational definitions of EC were believed to be caused by different temperature protocols rather than by the method of monitoring charring. This work demonstrates that thermal/optical reflectance (TOR) corrections yield equivalent OC/EC splits for widely divergent temperature protocols. EC results determined by simultaneous thermal/optical transmittance (TOT) corrections are 30% lower than TOR for the same temperature protocol and 70-80% lower than TOR for a protocol with higher heating temperatures and shorter residence times. This is true for 58 urban samples from Fresno, CA, as well as for 30 samples from the nonurban IMPROVE network that are individually dominated by wildfire, vehicle exhaust, secondary organic aerosol, and calcium carbonate contributions. Visual examination of filter darkening at different temperature stages shows that substantial charring takes place within the filter, possibly due to adsorbed organic gases or diffusion of vaporized particles. The filter transmittance is more influenced by the within-filter char, whereas the filter reflectance is dominated by charring of the near-surface deposit that appears to evolve first when oxygen is added to helium in the analysis atmosphere for these samples. The amounts of charred OC (POC) and EC are also estimated from incremental absorbance. Small amounts of POC are found to dominate the incremental absorbance. EC estimated from absorbance are found to agree better with EC from the reflectance charring correction than with EC from the transmittance charring correction.
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页码:4414 / 4422
页数:9
相关论文
共 58 条
[31]   SOOT OXIDATION IN FIBROUS FILTERS .2. EFFECTS OF TEMPERATURE, OXYGEN PARTIAL-PRESSURE, AND SODIUM ADDITIVES [J].
LIN, C ;
FRIEDLANDER, SK .
LANGMUIR, 1988, 4 (04) :898-903
[32]   ABSORPTION-COEFFICIENT OF ATMOSPHERIC AEROSOL - A METHOD FOR MEASUREMENT [J].
LIN, C ;
BAKER, M ;
CHARLSON, RJ .
APPLIED OPTICS, 1973, 12 (06) :1356-1363
[33]   Atmospheric particulate absorption and black carbon measurement [J].
Lindberg, JD ;
Douglass, RE ;
Garvey, DM .
APPLIED OPTICS, 1999, 38 (12) :2369-2376
[34]   OPTICAL AND THERMAL MEASUREMENTS OF BLACK CARBON AEROSOL CONTENT IN DIFFERENT ENVIRONMENTS - VARIATION OF THE SPECIFIC ATTENUATION CROSS-SECTION, SIGMA (SIGMA) [J].
LIOUSSE, C ;
CACHIER, H ;
JENNINGS, SG .
ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS, 1993, 27 (08) :1203-1211
[35]   Sampling methods used for the collection of particle-phase organic and elemental carbon during ACE-Asia [J].
Mader, BT ;
Schauer, JJ ;
Seinfeld, JH ;
Flagan, RC ;
Yu, JZ ;
Yang, H ;
Lim, HJ ;
Turpin, BJ ;
Deminter, JT ;
Heidemann, G ;
Bae, MS ;
Quinn, P ;
Bates, T ;
Eatough, DJ ;
Huebert, BJ ;
Bertram, T ;
Howell, S .
ATMOSPHERIC ENVIRONMENT, 2003, 37 (11) :1435-1449
[36]   Gas/solid partitioning of semivolatile organic compounds (SOCs) to air filters. 3. An analysis of gas adsorption artifacts in measurements of atmospheric SOCs and organic carbon (OC) when using Teflon membrane filters and quartz fiber filters [J].
Mader, BT ;
Pankow, JF .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2001, 35 (17) :3422-3432
[37]  
MIZOHATA A, 1985, Annual Report of the Radiation Center of Osaka Prefecture, V26, P51
[38]  
Novakov T., 1982, PARTICULATE CARBON A, P19, DOI DOI 10.1007/978-1-4684-4154-3
[39]   Oxalic acid in PM2.5 particulate matter in California [J].
Poore, MW .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2000, 50 (11) :1874-1875
[40]   Levoglucosan in PM2.5 at the Fresno supersite [J].
Poore, MW .
JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 2002, 52 (01) :3-4