Figure 1.
Changes in permeability in relation to changes in the methane pressure based on the Palmer and Mansoori model [
1,
2].
Figure 1.
Changes in permeability in relation to changes in the methane pressure based on the Palmer and Mansoori model [
1,
2].
Figure 2.
Changes in permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 2.
Changes in permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 3.
Changes in permeability in relation to changes in the methane pressure based on the improved Shi-Durucan model.
Figure 3.
Changes in permeability in relation to changes in the methane pressure based on the improved Shi-Durucan model.
Figure 4.
Deformations caused solely by the geomechanical action of the pore pressure based on the Cui and Bustin model.
Figure 4.
Deformations caused solely by the geomechanical action of the pore pressure based on the Cui and Bustin model.
Figure 5.
Deformations caused solely by desorption based on the Cui and Bustin model.
Figure 5.
Deformations caused solely by desorption based on the Cui and Bustin model.
Figure 6.
Changes in the Mannville Group coal permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 6.
Changes in the Mannville Group coal permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 7.
Deformations in Mannville Group coal produced solely by the geomechanical action of the pore pressure based on the Cui and Bustin model.
Figure 7.
Deformations in Mannville Group coal produced solely by the geomechanical action of the pore pressure based on the Cui and Bustin model.
Figure 8.
Deformations in Mannville Group coal produced solely by desorption based on the Cui and Bustin model.
Figure 8.
Deformations in Mannville Group coal produced solely by desorption based on the Cui and Bustin model.
Figure 9.
Changes in the Mannville Group coal permeability depending on the extreme values of εl.
Figure 9.
Changes in the Mannville Group coal permeability depending on the extreme values of εl.
Figure 10.
Changes in the Mannville Group coal permeability depending on the extreme values of PL.
Figure 10.
Changes in the Mannville Group coal permeability depending on the extreme values of PL.
Figure 11.
Changes in the Cretaceous Mesaverde Group coal permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 11.
Changes in the Cretaceous Mesaverde Group coal permeability in relation to changes in the methane pressure based on the Cui and Bustin model [
3].
Figure 12.
Changes in the coal permeability of two types of coal from the San Juan basin, i.e., Northern and Northeast of Fairway in relation to changes in methane’s pore pressure based on the Cui and Bustin model [
3].
Figure 12.
Changes in the coal permeability of two types of coal from the San Juan basin, i.e., Northern and Northeast of Fairway in relation to changes in methane’s pore pressure based on the Cui and Bustin model [
3].
Figure 13.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Fruitland Boomer Well B-1 San Juan basin.
Figure 13.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Fruitland Boomer Well B-1 San Juan basin.
Figure 14.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Fruitland Boomer Well B-1 San Juan basin.
Figure 14.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Fruitland Boomer Well B-1 San Juan basin.
Figure 15.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Mannville Group basin, Lower Cretaceous, Western Canada.
Figure 15.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Mannville Group basin, Lower Cretaceous, Western Canada.
Figure 16.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Mannville Group basin, Lower Cretaceous, Western Canada.
Figure 16.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Mannville Group basin, Lower Cretaceous, Western Canada.
Figure 17.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Mesaverde Group, Piceance basin, Western Canada.
Figure 17.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Mesaverde Group, Piceance basin, Western Canada.
Figure 18.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Mesaverde Group, Piceance basin, Western Canada.
Figure 18.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Mesaverde Group, Piceance basin, Western Canada.
Figure 19.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Northern San Juan basin.
Figure 19.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the Northern San Juan basin.
Figure 20.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Northern San Juan basin.
Figure 20.
The variability in Prb and Prc as a function of the pressure PL for the coal from the Northern San Juan basin.
Figure 21.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the North-East of Fairway San Juan basin.
Figure 21.
Maps of: (a) the rebound pressure Prb; and (b) the recovery pressure Prc, as correlated with E and εl for the North-East of Fairway San Juan basin.
Figure 22.
The variability in Prb and Prc as a function of the pressure PL for the coal from the North-East of Fairway San Juan basin.
Figure 22.
The variability in Prb and Prc as a function of the pressure PL for the coal from the North-East of Fairway San Juan basin.
Table 1.
Boomer Well B-1 San Juan Basin [
1,
2].
Table 1.
Boomer Well B-1 San Juan Basin [
1,
2].
E (MPa) | v (-) | ϕo (-) | Po (MPa) | PL (MPa) | εl (-) | cf (1/MPa) |
---|
854 | 0.39 | 0.001 | 7.58 | 4.31 | 0.0128 | 0.582 |
854 | 0.005 | 0.116 |
3070 | 0.001 | 0.162 |
3070 | 0.005 | 0.032 |
Table 2.
Lower Cretaceous, Mannville Group, Western Canada [
18].
Table 2.
Lower Cretaceous, Mannville Group, Western Canada [
18].
E (MPa) | v (-) | ϕo (-) | Po (MPa) | PL (MPa) | εl (-) | cf (1/MPa) |
---|
500 | 0.25–0.47, aver. 0.36 | 0.006 | 7.6 | 3.8–7.6, aver. 5.7 | 0.0042–0.016, aver. 0.0101 | 0.198 |
500 | 0.03 | 0.039 |
4600 | 0.006 | 0.021 |
4600 | 0.03 | 0.004 |
Table 3.
Cretaceous Mesaverde Group, Western Canada [
3,
20].
Table 3.
Cretaceous Mesaverde Group, Western Canada [
3,
20].
E (MPa) | v (-) | ϕo (-) | Po (MPa) | PL (MPa) | εl (-) | cf (1/MPa) |
---|
1000 | 0.3 | 0.006 | 7.2 | 7.2 | 0.005–0.013, aver. 0.009 | 0.123 |
2750 | 0.045 |
4500 | 0.027 |
Table 4.
Northern San Juan Basin [
18,
22].
Table 4.
Northern San Juan Basin [
18,
22].
E (MPa) | v (-) | ϕo (-) | Po (MPa) | PL (MPa) | εl (-) | cf (1/MPa) |
---|
2411.5 | 0.29 | 0.0045 | 7.6 | 5.9 | 0.0098 | 0.07 |
Table 5.
Northeast of Fairway San Juan Basin [
23,
24].
Table 5.
Northeast of Fairway San Juan Basin [
23,
24].
E (MPa) | v (-) | ϕo (-) | Po (MPa) | PL (MPa) | εl (-) | cf (1/MPa) |
---|
2067 | 0.35 | 0.004 | 9.7 | 3.45 | 0.008 | 0.075 |
Table 6.
The rebound pressure Prb and recovery pressure Prc values for the Palmer and Mansoori, Cui and Bustin, and improved Shi-Durucan models, as obtained for the Boomer well B-1 San Juan basin.
Table 6.
The rebound pressure Prb and recovery pressure Prc values for the Palmer and Mansoori, Cui and Bustin, and improved Shi-Durucan models, as obtained for the Boomer well B-1 San Juan basin.
Pressure (MPa) | M (MPa) Equation (14) | Palmer and Mansoori, Equation (4) | Cui and Bustin, Equations (12) and (13) | Improved Shi-Durucan, Equations (8) and (9) |
---|
Prb | 1705.5 | 1.99 | 0.44 | 6.26 |
6123.9 | 7.64 | 4.70 | 15.7 |
Prc | 1705.5 | - | −2.4 | 5.09 |
6123.9 | - | 2.52 | 29.4 |
Table 7.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the Mannville Group basin, Lower Cretaceous, Western Canada.
Table 7.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the Mannville Group basin, Lower Cretaceous, Western Canada.
Pressure (MPa) | M (MPa) | Cui and Bustin |
---|
Prb | 840.3 | −1.94 |
7731.1 | 5.69 |
Prc | 840.3 | −4.64 |
7731.1 | 4.06 |
Table 8.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the Mesaverde Group basin, Western Canada.
Table 8.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the Mesaverde Group basin, Western Canada.
Pressure (MPa) | M (MPa) | Cui and Bustin |
---|
Prb | 1346.1 | −1.43 |
3701.9 | 2.35 |
6057.6 | 5.02 |
Prc | 1346.1 | −4.89 |
3701.9 | −0.85 |
6057.6 | 3.18 |
Table 9.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the San Juan-Northern basin.
Table 9.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the San Juan-Northern basin.
Pressure (MPa) | M (MPa) | Cui and Bustin |
---|
Prb | 3317.4 | 1.85 |
Prc | −1.30 |
Table 10.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the San Juan-Northeast of Fairway basin.
Table 10.
The rebound pressure Prb and recovery pressure Prc values for the Cui and Bustin model, as obtained for the coal from the San Juan-Northeast of Fairway basin.
Pressure (MPa) | M (MPa) | Cui and Bustin |
---|
Prb | 3160.1 | 2.58 |
Prc | −0.56 |