421
Loulou, R., Goldstein, G., & Noble, K. (2004). Documentation for the MARKAL Family of Models.
ETSAP.
Loulou, R., Remne, U., Kanudia, A., Lehtila, A., & Goldstein, G. (2005). Documentation for the
TIMES Model—Part I (pp. 1–78). ETSAP.
Mirchi, A., Madani, K., Watkins, D., & Ahmad, S. (2012). Synthesis of system dynamics tools
for holistic conceptualization of water resources problems. Water Resources Management, 26,
2421–2442.
Rodriguez, D., Delgado, A., Bazilian, M., Ahjum, F., Cullis, J., Delaquil, P., Goldstein, G., Liden,
R., Merven, B., Miralles-Wilhelm, F., Sohns, A., Stone, A., & Toman, M. (2017). Water
Contrains South Africa’s Energy Future: A Case Study on Integrated Energy-Water Nexus
Modeling and Analysis, International Journal of Engineering Science, 6(10), 1–25.
Yates, D., & Miller, K. (2013). Integrated decision support for energy/water planning in California
and the southwest. International Journal of Climate Change: Impacts and Responses, 4(1),
49–63.
Water-Centric Approaches to FEWS Modeling
Ahmad, S., & Simonovic, S. (2004). Spatial system dynamics: New approach for simulation of
water resources systems. Journal of Computing in Civil Engineering ASCE, 18(4), 331–340.
Arnold, J. G., Srinivasan, R., Muttiah, R. S., & Williams, J. R. (1998). Large area hydrologic modeling and assessment Part I: Model development. Journal of the American Water Resources
Association, 34(1), 73–89.
Comín, F. A., Sorando, R., Darwiche-Criado, N., García, M., & Masip, A. (2014). A protocol to
prioritize wetland restoration and creation for water quality improvement in agricultural watersheds. Ecological Engineering, 66, 10–18.
Daloğlu, I., Cho, K. H., & Scavia, D. (2012). Evaluating causes of trends in long-term dissolved reactive phosphorus loads to Lake Erie. Environmental Science & Technology, 46(19),
10660–10666.
Denver, J., Ator, S., Lang, M., Fisher, T., Gustafson, A., Fox, R., Clune, J., & McCarty, G. (2014).
Nitrate fate and transport through current and former depressional wetlands in an agricultural landscape, Choptank Watershed, Maryland, United States. Journal of Soil and Water
Conservation, 69(1), 1–16.
Ducey, T., Miller, J., Lang, M., Szogi, A., Hunt, P., Fenstermacher, D., Rabenhorst, M., & McCarty,
G. (2015). Soil physicochemical conditions, denitrification rates, and abundance in North
Carolina coastal plain restored wetlands. Journal of Environmental Quality, 44(3), 1011–1022.
Ficklin, D. L., Luo, Y., Stewart, I. T., & Maurer, E. P. (2012). Development and application of a
hydroclimatological stream temperature model within the Soil and Water Assessment Tool.
Water Resources Research, 48(1). https://doi.org/10.1029/2011WR011256.
Ficklin, D. L., Stewart, I. T., & Maurer, E. P. (2013). Effects of climate change on stream temperature, dissolved oxygen, and sediment concentration in the Sierra Nevada in California. Water
Resources Research, 49(5), 2765–2782.
Garg, K. K., Bharati, L., Gaur, A., George, B., Acharya, S., Jella, K., & Narasimhan, B. (2012).
Spatial mapping of agricultural water productivity using the swat model in Upper Bhima catchment, India. Irrigation and Drainage, 61(1), 60–79.
Gassman, P. W., Reyes, M. R., Green, C. H., & Arnold, J. G. (2007). The soil and water assessment
tool: Historical development, applications, and future research directions. Transactions of the
ASABE, 50(4), 1211–1250.
Gober, P., Wentz, E., Lant, T., Tschudi, M., & Kirkwood, C. (2011). WaterSim: A simulation model
for urban water planning in Phoenix, Arizona, USA. Environment and Planning B: Urban
Analytics and City Science, 38(2), 197–215.
15 Modeling
Loulou, R., Goldstein, G., & Noble, K. (2004). Documentation for the MARKAL Family of Models.
ETSAP.
Loulou, R., Remne, U., Kanudia, A., Lehtila, A., & Goldstein, G. (2005). Documentation for the
TIMES Model—Part I (pp. 1–78). ETSAP.
Mirchi, A., Madani, K., Watkins, D., & Ahmad, S. (2012). Synthesis of system dynamics tools
for holistic conceptualization of water resources problems. Water Resources Management, 26,
2421–2442.
Rodriguez, D., Delgado, A., Bazilian, M., Ahjum, F., Cullis, J., Delaquil, P., Goldstein, G., Liden,
R., Merven, B., Miralles-Wilhelm, F., Sohns, A., Stone, A., & Toman, M. (2017). Water
Contrains South Africa’s Energy Future: A Case Study on Integrated Energy-Water Nexus
Modeling and Analysis, International Journal of Engineering Science, 6(10), 1–25.
Yates, D., & Miller, K. (2013). Integrated decision support for energy/water planning in California
and the southwest. International Journal of Climate Change: Impacts and Responses, 4(1),
49–63.
Water-Centric Approaches to FEWS Modeling
Ahmad, S., & Simonovic, S. (2004). Spatial system dynamics: New approach for simulation of
water resources systems. Journal of Computing in Civil Engineering ASCE, 18(4), 331–340.
Arnold, J. G., Srinivasan, R., Muttiah, R. S., & Williams, J. R. (1998). Large area hydrologic modeling and assessment Part I: Model development. Journal of the American Water Resources
Association, 34(1), 73–89.
Comín, F. A., Sorando, R., Darwiche-Criado, N., García, M., & Masip, A. (2014). A protocol to
prioritize wetland restoration and creation for water quality improvement in agricultural watersheds. Ecological Engineering, 66, 10–18.
Daloğlu, I., Cho, K. H., & Scavia, D. (2012). Evaluating causes of trends in long-term dissolved reactive phosphorus loads to Lake Erie. Environmental Science & Technology, 46(19),
10660–10666.
Denver, J., Ator, S., Lang, M., Fisher, T., Gustafson, A., Fox, R., Clune, J., & McCarty, G. (2014).
Nitrate fate and transport through current and former depressional wetlands in an agricultural landscape, Choptank Watershed, Maryland, United States. Journal of Soil and Water
Conservation, 69(1), 1–16.
Ducey, T., Miller, J., Lang, M., Szogi, A., Hunt, P., Fenstermacher, D., Rabenhorst, M., & McCarty,
G. (2015). Soil physicochemical conditions, denitrification rates, and abundance in North
Carolina coastal plain restored wetlands. Journal of Environmental Quality, 44(3), 1011–1022.
Ficklin, D. L., Luo, Y., Stewart, I. T., & Maurer, E. P. (2012). Development and application of a
hydroclimatological stream temperature model within the Soil and Water Assessment Tool.
Water Resources Research, 48(1). https://doi.org/10.1029/2011WR011256.
Ficklin, D. L., Stewart, I. T., & Maurer, E. P. (2013). Effects of climate change on stream temperature, dissolved oxygen, and sediment concentration in the Sierra Nevada in California. Water
Resources Research, 49(5), 2765–2782.
Garg, K. K., Bharati, L., Gaur, A., George, B., Acharya, S., Jella, K., & Narasimhan, B. (2012).
Spatial mapping of agricultural water productivity using the swat model in Upper Bhima catchment, India. Irrigation and Drainage, 61(1), 60–79.
Gassman, P. W., Reyes, M. R., Green, C. H., & Arnold, J. G. (2007). The soil and water assessment
tool: Historical development, applications, and future research directions. Transactions of the
ASABE, 50(4), 1211–1250.
Gober, P., Wentz, E., Lant, T., Tschudi, M., & Kirkwood, C. (2011). WaterSim: A simulation model
for urban water planning in Phoenix, Arizona, USA. Environment and Planning B: Urban
Analytics and City Science, 38(2), 197–215.
15 Modeling
