HYDRAULIC CONDUCTIVITY AND DIFFUSION MONITORING OF THE KEELE VALLEY LANDFILL LINER, MAPLE, ONTARIO

被引:51
作者
KING, KS
QUIGLEY, RM
FERNANDEZ, F
READES, DW
BACOPOULOS, A
机构
[1] UNIV WESTERN ONTARIO,FAC ENGN SCI,GEOTECH RES CTR,LONDON N6A 5B9,ONTARIO,CANADA
[2] GOLDER ASSOCIATES INC,NAPERVILLE,IL 60563
[3] GOLDER ASSOCIATES,GEOANAL SRL CORSO GALILEO,I-10218 TURIN,ITALY
[4] METROPOLITAN TORONTO WORKS DEPT,DIV SOLID WASTE MANAGEMENT,TORONTO M5G 1V8,ON,CANADA
关键词
LANDFILL; CLAYEY LINER; FIELD HYDRAULIC CONDUCTIVITY; FIELD DIFFUSION; MUNICIPAL SOLID WASTE LEACHATE; FIELD LYSIMETER TEST; LABORATORY HYDRAULIC CONDUCTIVITY; LINER LEACHATE COMPATIBILITY;
D O I
10.1139/t93-011
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
The 99-ha Keele Valley Landfill is located in a former sand and gravel pit at Maple, Ontario. The base and sides of the pit are lined with a minimum of 1.2 m of excavated clayey silt till recompacted to achieve a design hydraulic conductivity of 1 x 10(-8) cm/s or less. Extensive construction controls and monitoring programs have been implemented to determine the hydraulic conductivity and advective performance of the liner. A total of 267 postcompaction laboratory hydraulic conductivity (k) tests indicated that the first two stages of the liner had a geometric mean k of 7.7 x 10(-9) cm/s. Calculations of in situ hydraulic conductivity based on lysimeter effluent collection rates show decreases in k to field values close to the laboratory values. In situ electrical conductivity sensors and lysimeter effluent chemistry measurements have monitored the advance of leachate-derived chemicals into the liner. Concurrent field verification by liner exhumation and chemical analysis has confirmed the importance of diffusion as the dominant migration mechanism through this low-k liner. Similar concentration trends for major ions have been observed in the field lysimeter effluents, effluents from laboratory liner-leachate compatibility tests, and pore water extracted from core samples of sections of exhumed liner exposed to leachate. The multicomponent field and laboratory testing and monitoring programs have shown good cross-agreement, and the actual performance of the liner has been close to preconstruction predictions.
引用
收藏
页码:124 / 134
页数:11
相关论文
共 14 条
[1]   HYDRAULIC CONDUCTIVITY OF 2 PROTOTYPE CLAY LINERS [J].
DAY, SR ;
DANIEL, DE .
JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1985, 111 (08) :957-970
[2]   CONTROLLING THE DESTRUCTIVE EFFECTS OF CLAY ORGANIC LIQUID INTERACTIONS BY APPLICATION OF EFFECTIVE STRESSES [J].
FERNANDEZ, F ;
QUIGLEY, RM .
CANADIAN GEOTECHNICAL JOURNAL, 1991, 28 (03) :388-398
[4]   HYDRAULIC CONDUCTIVITY OF 3 LANDFILL CLAY LINERS [J].
GORDON, ME ;
HUEBNER, PM ;
MIAZGA, TJ .
JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1989, 115 (08) :1148-1160
[5]  
KING KS, 1986, 6TH P NAT S EXP AQ R, P247
[6]  
LAHTI LR, 1987, P GEOTECHNICAL PRACT, P640
[7]   CLAYEY BARRIER ASSESSMENT FOR IMPOUNDMENT OF DOMESTIC WASTE LEACHATE (SOUTHERN ONTARIO) INCLUDING CLAY-LEACHATE COMPATIBILITY BY HYDRAULIC CONDUCTIVITY TESTING [J].
QUIGLEY, RM ;
FERNANDEZ, F ;
ROWE, RK .
CANADIAN GEOTECHNICAL JOURNAL, 1988, 25 (03) :574-581
[8]  
QUIGLEY RM, 1992, CHEM ASSESSMENT IN S
[9]  
QUIGLEY RM, 1990, 5 P FED EUR MICR SOC, P261
[10]  
QUIGLEY RM, 1978, RR215 ONT MIN TRANSP