Niu, M., Kebreab, E., Hristov, A. N., Oh, J., Arndt, C., Bannink, A., … Yu, Z. (2018). Prediction of enteric methane production, yield, and intensity in dairy cattle using an intercontinental database. Global Change Biology, 24(8), 3368-3389. doi:10.1111/gcb.14094
Dittmann, M. T., Runge, U., Lang, R. A., Moser, D., Galeffi, C., Kreuzer, M., & Clauss, M. (2014). Methane Emission by Camelids. PLoS ONE, 9(4), e94363. doi:10.1371/journal.pone.0094363
Blaxter, K. L., & Clapperton, J. L. (1965). Prediction of the amount of methane produced by ruminants. British Journal of Nutrition, 19(1), 511-522. doi:10.1079/bjn19650046
[+]
Niu, M., Kebreab, E., Hristov, A. N., Oh, J., Arndt, C., Bannink, A., … Yu, Z. (2018). Prediction of enteric methane production, yield, and intensity in dairy cattle using an intercontinental database. Global Change Biology, 24(8), 3368-3389. doi:10.1111/gcb.14094
Dittmann, M. T., Runge, U., Lang, R. A., Moser, D., Galeffi, C., Kreuzer, M., & Clauss, M. (2014). Methane Emission by Camelids. PLoS ONE, 9(4), e94363. doi:10.1371/journal.pone.0094363
Blaxter, K. L., & Clapperton, J. L. (1965). Prediction of the amount of methane produced by ruminants. British Journal of Nutrition, 19(1), 511-522. doi:10.1079/bjn19650046
Fernández, C., López, M. C., & Lachica, M. (2012). Description and function of a mobile open-circuit respirometry system to measure gas exchange in small ruminants. Animal Feed Science and Technology, 172(3-4), 242-246. doi:10.1016/j.anifeedsci.2012.01.006
Takahashi, J., Chaudhry, A. ., Beneke, R. ., & Young, B. . (1999). An open-circuit hood system for gaseous exchange measurements in small ruminants. Small Ruminant Research, 32(1), 31-36. doi:10.1016/s0921-4488(98)00163-1
Brockway, J. M., Boyne, A. W., & Gordon, J. G. (1971). Simultaneous calibration of gas analyzers and meters. Journal of Applied Physiology, 31(2), 296-297. doi:10.1152/jappl.1971.31.2.296
Aguilera, J. F., & Prieto, C. (1986). Description and function of an open-circuit respiration plant for pigs and small ruminants and the techniques used to measure energy metabolism. Archiv für Tierernaehrung, 36(11), 1009-1018. doi:10.1080/17450398609429522
Robinson, D. L., Goopy, J. P., Donaldson, A. J., Woodgate, R. T., Oddy, V. H., & Hegarty, R. S. (2014). Sire and liveweight affect feed intake and methane emissions of sheep confined in respiration chambers. Animal, 8(12), 1935-1944. doi:10.1017/s1751731114001773
Robinson, D. L., Cameron, M., Donaldson, A. J., Dominik, S., & Oddy, V. H. (2016). One-hour portable chamber methane measurements are repeatable and provide useful information on feed intake and efficiency1. Journal of Animal Science, 94(10), 4376-4387. doi:10.2527/jas.2016-0620
Pinares-Patiño, C. S., Hickey, S. M., Young, E. A., Dodds, K. G., MacLean, S., Molano, G., … McEwan, J. C. (2013). Heritability estimates of methane emissions from sheep. animal, 7(s2), 316-321. doi:10.1017/s1751731113000864
Oddy, V. H., Donaldson, A. J., Cameron, M., Bond, J., Dominik, S., & Robinson, D. L. (2019). Variation in methane production over time and physiological state in sheep. Animal Production Science, 59(3), 441. doi:10.1071/an17447
Blaxter, K. L. (1967). Techniques in energy metabolism studies and their limitations. Proceedings of the Nutrition Society, 26(1), 86-96. doi:10.1079/pns19670016
Christensen, K., Chwalibog, A., Henckel, S., & Thorbek, G. (1988). Heat production in growing pigs calculated according to the RQ and CN methods. Comparative Biochemistry and Physiology Part A: Physiology, 91(3), 463-468. doi:10.1016/0300-9629(88)90619-6
Cleveland, W. S. (1979). Robust Locally Weighted Regression and Smoothing Scatterplots. Journal of the American Statistical Association, 74(368), 829-836. doi:10.1080/01621459.1979.10481038
Johnson, K. A., & Johnson, D. E. (1995). Methane emissions from cattle. Journal of Animal Science, 73(8), 2483-2492. doi:10.2527/1995.7382483x
Tovar-Luna, I., Puchala, R., Sahlu, T., Freetly, H. C., & Goetsch, A. L. (2010). Effects of stage of lactation and dietary concentrate level on energy utilization by Alpine dairy goats. Journal of Dairy Science, 93(10), 4818-4828. doi:10.3168/jds.2010-3315
Bava, L., Rapetti, L., Crovetto, G. M., Tamburini, A., Sandrucci, A., Galassi, G., & Succi, G. (2001). Effects of a Nonforage Diet on Milk Production, Energy, and Nitrogen Metabolism in Dairy Goats throughout Lactation. Journal of Dairy Science, 84(11), 2450-2459. doi:10.3168/jds.s0022-0302(01)74695-4
Agnew, R. E., & Yan, T. (2000). Impact of recent research on energy feeding systems for dairy cattle. Livestock Production Science, 66(3), 197-215. doi:10.1016/s0301-6226(00)00161-5
Fernández, C., Martí, J. V., Pérez-Baena, I., Palomares, J. L., Ibáñez, C., & Segarra, J. V. (2018). Effect of lemon leaves on energy and C–N balances, methane emission, and milk performance in Murciano-Granadina dairy goats. Journal of Animal Science, 96(4), 1508-1518. doi:10.1093/jas/sky028
Derno, M., Elsner, H.-G., Paetow, E.-A., Scholze, H., & Schweigel, M. (2009). Technical note: A new facility for continuous respiration measurements in lactating cows. Journal of Dairy Science, 92(6), 2804-2808. doi:10.3168/jds.2008-1839
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