Hostname: page-component-586b7cd67f-dsjbd Total loading time: 0 Render date: 2024-11-22T22:17:20.742Z Has data issue: false hasContentIssue false

Direct climate change impacts on cattle indicated by THI models

Published online by Cambridge University Press:  17 February 2015

M. Schönhart*
Affiliation:
Institute for Sustainable Economic Development, BOKU University of Natural Resources and Life Sciences, 1180 Vienna, Austria
I. Nadeem
Affiliation:
Institute of Meteorology, BOKU University of Natural Resources and Life Sciences, 1190 Vienna, Austria
*
E-mail: [email protected]
Get access

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Full Paper
Copyright
© The Animal Consortium 2015 

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

BMLFUW 2013. Grüner Bericht. In Bundesministerium für Land- und Forstwirtschaft (ed. R Lindner, O Hofer, R Fehrer and K Brier) Umwelt und Wasserwirtschaft, Vienna, Austria.Google Scholar
Bohmanova, J, Misztal, I and Cole, JB 2007. Temperature-humidity indices as indicators of milk production losses due to heat stress. Journal of Dairy Science 90, 19471956.Google Scholar
Fuhrer, J and Calanca, P 2012. Climate change affects welfare of dairy cows. Agrarforschung Schweiz 3, 132139.Google Scholar
Fuhrer, J, Smith, P and Gobiet, A 2013. Implications of climate change scenarios for agriculture in alpine regions - A case study in the Swiss Rohne catchment. Science of the Total Environment 493, 12321241.Google Scholar
Kirchner, M, Schmidt, J, Kindermann, G, Kulmer, V, Mitter, H, Prettenthaler, F, Rüdisser, J, Schauppenlehner, T, Schönhart, M, Strauss, F, Tappeiner, U, Tasser, E and Schmid, E 2014. Ecosystem services and economic development in Austrian agricultural landscapes ‑ The impact of policy and climate change scenarios on trade‑offs and synergies. Ecological Economics 109, 161–174. Google Scholar
Kolb, C 2012. Einfluss von Klimaelementen auf Milchparameter unter Bedingungen der Vollweidehaltung von Milchkühen, Master thesis. Universität für Bodenkultur, Wien.Google Scholar
Mader, T, Frank, K, Harrington, J, Hahn, G and Nienaber, J 2009. Potential climate change effects on warm-season livestock production in the Great Plains. Climatic Change 97, 529541.Google Scholar
Martinsohn, M and Hansen, H 2013. Ökonomische Auswirkungen des Klimawandels auf die Niedersächsische Milchproduktion. Berichte über Landwirtschaft 3, 1–26.Google Scholar
McCarthy, JJ, Canziani, OF, Leary, NA, Dokken, DJ and White, KS (ed.) 2001. Working Group II (WGII) contribution to the Third Assessment Report of IPCC, IPCC, Cambridge University Press, Cambridge, UKGoogle Scholar
Ravagnolo, O and Misztal, I 2000. Genetic component of heat stress in dairy cattle, parameter estimation. Journal of Dairy Science 83, 21262130.Google Scholar
Schönhart, M, Mitter, H, Schmid, E, Heinrich, G and Gobiet, A 2014. Integrated analysis of climate change impacts and adaptation measures in Austrian agriculture. German Journal of Agricultural Economics 63, 156176.Google Scholar
Thaler, S, Eitzinger, J, Trnka, M and Dubrovsky, M 2012. Impacts of climate change and alternative adaptation options on winter wheat yield and water productivity in a dry climate in Central Europe. The Journal of Agricultural Science 150, 537555.Google Scholar
Walter, K and Löpmeier, F-J 2010. Fütterung und Haltung von Hochleistungskühen. 5. Hochleistungskühe und Klimawandel. vTI Agriculture and Forestry Research 60, 1734.Google Scholar