HR: 17:15h
AN: GC54A-06 [Abstracts]
TI: Measuring Water in Bioreactor Landfills
AU: Han, B
EM: grage@copland.udel.edu
AF: University of Delaware, Department of Civil and Environmental Engineering, Newark, DE 19716
United States
AU: Gallagher, V N
EM: nikkeyg@copland.udel.edu
AF: University of Delaware, Department of Civil and Environmental Engineering, Newark, DE 19716
United States
AU: * Imhoff, P T
EM: imhoff@udel.edu
AF: University of Delaware, Department of Civil and Environmental Engineering, Newark, DE 19716
United States
AU: Yazdani, R
EM: ramin.yazdani@yolocounty.org
AF: Yolo County Department of Public Works, 292 West Beamer Street, Woodland, CA 95695
United States
AU: Chiu, P
EM: pei@ce.udel.edu
AF: University of Delaware, Department of Civil and Environmental Engineering, Newark, DE 19716
United States
AB:
Methane is an important greenhouse gas, and landfills are the largest anthropogenic source in many developed countries.
Bioreactor landfills have been proposed as one means of abating greenhouse gas emissions from landfills. Here, the
decomposition of organic wastes is enhanced by the controlled addition of water or leachate to maintain optimal conditions
for waste decomposition. Greenhouse gas abatement is accomplished by sequestration of photosynthetically derived carbon in
wastes, CO2 offsets from energy use of waste derived gas, and mitigation of methane emission from the wastes.
Maintaining optimal moisture conditions for waste degradation is perhaps the most important operational parameter in
bioreactor landfills. To determine how much water is needed and where to add it, methods are required to measure water
within solid waste. However, there is no reliable method that can measure moisture content simply and accurately in the
heterogeneous environment typical of landfills. While well drilling and analysis of solid waste samples is sometimes used to
determine moisture content, this is an expensive, time-consuming, and destructive procedure.
To overcome these problems, a new technology recently developed by hydrologists for measuring water in the vadose zone ---
the partitioning tracer test (PTT) --- was evaluated for measuring water in solid waste in a full-scale bioreactor landfill
in Yolo County, CA. Two field tests were conducted in different regions of an aerobic bioreactor landfill, with each test
measuring water in $\approx$ 250 ft$^3$ of solid waste. Tracers were injected through existing tubes inserted in the
landfill, and tracer breakthrough curves were measured through time from the landfill's gas collection system. Gas samples
were analyzed on site using a field-portable gas chromatograph and shipped offsite for more accurate laboratory analysis. In
the center of the landfill, PTT measurements indicated that the fraction of the pore space filled with water was 29%, while
the moisture content, the mass of water divided by total wet mass of solid waste, was 28%. Near the sloped sides of the
landfill, PTT results indicated that only 7.1% of the pore space was filled with water, while the moisture content was
estimated to be 6.9%. These measurements are in close agreement with gravimetric measurements made on solid waste samples
collected after each PTT: moisture content of 27% in the center of the landfill and only 6% near the edge of the landfill.
We discuss these measurements in detail, the limitations of the PTT method for landfills, and operational guidelines for
achieving unbiased measurements of moisture content in landfills using the PTT method.
DE: 1694 Instruments and techniques
DE: 1699 General or miscellaneous
SC: Global Climate Change [GC]
MN: 2004 AGU Fall Meeting