Skip navigation

DSpace

機構典藏 DSpace 系統致力於保存各式數位資料(如:文字、圖片、PDF)並使其易於取用。

點此認識 DSpace
DSpace logo
English
中文
  • 瀏覽論文
    • 校院系所
    • 出版年
    • 作者
    • 標題
    • 關鍵字
  • 搜尋 TDR
  • 授權 Q&A
    • 我的頁面
    • 接受 E-mail 通知
    • 編輯個人資料
  1. NTU Theses and Dissertations Repository
  2. 生物資源暨農學院
  3. 動物科學技術學系
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/70740
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor徐濟泰
dc.contributor.authorLing-He Chenen
dc.contributor.author陳苓鶴zh_TW
dc.date.accessioned2021-06-17T04:36:47Z-
dc.date.available2018-08-13
dc.date.copyright2018-08-13
dc.date.issued2018
dc.date.submitted2018-08-08
dc.identifier.citation白火城、吳兩新、林仁壽。2003。家畜內分泌學。藝軒圖書出版社。台北。
行政院農業委員會。2017。訂定「生羊乳驗收比重及乳脂率綜合計價表」。行政院農業委員會農牧字第1060042448號令。
沈明來。2010。試驗設計學第四版。九州圖書文化有限公司。
徐濟泰。2016。調整羊乳非乳脂固形物的方法。羊協一家親 71:23-25。
許辰。2017。不同種類地面材質對泌乳羊行為暨生產表現之影響。國立臺灣大學動物科學技術學研究所碩士論文。
陳盈豪。2004。我國古代的養羊智慧(中)。羊協一家親第31期。
陳俞瑾。2015。飼料中添加海藻糖對泌乳羊之生產表現與抗氧化能力之影響。國立臺灣大學動物科學技術學研究所碩士論文。
謝昭賢、蕭宗法、楊德威、陳志成。2007。臺灣地區溫濕度指數之分布。畜產研究 40(4): 269-278。
A.O.A.C. 1980. Official methods of analysis, 13th ed. Association of Official Analytical Chemists. Washington, DC. 376-384.
Al-Dawood, A. 2015. Adoption of agricultural innovations: investigating current status and barriers to adoption of heat stress management in small ruminants in Jordan. American-Eurasian J. Agric. Environ. Sci. 15 (3): 388-398.
Al-Dawood, A. 2017. Towards heat stress management in small ruminants – a review. Ann. Anim. Sci. 17 (1): 59-88.
Alam, M. M., M. A. Hashem, M. M. Rahman, M. M. Hossain, M. R. Haque, Z. Sobhan, and M. S. Islam. 2011. Effect of heat stress on behavior, physiological and blood parameters of goat. Progress. Agric. 22 (1 and 2): 37-45.
Albright, J. L., and C. W. Alliston. 1971. Effects of varying the environment upon the performance of dairy cattle. J. Anim. Sci. 32 (3): 566-577.
Aldrich, C. G., and N. R. Merchen. 1995. Heat treatment of whole soybeans: influence on protein digestion by ruminants. J. Anim. Sci. 73: 95.
Armstrong, D. V. 1994. Heat stress interaction with shade and cooling. J. Dairy Sci. 77: 2044-2050.
Atrian, P., and H. A. Shahryar. 2012. Heat stress in dairy cows. Res. Zool. 2 (4): 31-37.
Ayo, J. O., N. S. Minka, and M. Mamman. 2006. Excitability scores of goats administered ascorbic acid and transported during hot-dry conditions. J. Vet. Sci. 7 (2): 127-131.
Baumgard, L. H., and R. P. Rhoads, Jr. 2013. Effects of heat stress on postabsorptive metabolism and energetics. Annu. Rev. Anim. Biosci. 1: 7.1-7.27.
Beede, D. K., and R. J. Collier. 1986. Potential nutritional strategies for intensively managed cattle during thermal stress. J. Anim. Sci. 62: 543-554.
Belibasakis, N., P. Ambatzidis, P. Aktsali, and D. Tsirgogianni. 1995. Effects of degradability of dietary protein on milk production and blood components of dairy cows in hot weather. World Rev. Anim. Prod. 30: 21-26.
Bernabucci, U., N. Lacetera, B. Ronchi, and A. Nardone. 2002. Effects of the hot season on milk protein fractions in Holstein cows. Anim. Res. 51: 25-33.
Berthiaume, R., Benchaar, C., Chaves, A. V., Tremblay, G. F., Castonguay, Y., Bertrand, A., Belanger, G., Michaud, R., Lafreniere, C., McAllister, T. A., and Brito, A. F. 2010. Effects of nonstructural carbohydrate concentration in alfalfa on fermentation and microbial protein synthesis in continuous culture1. J. Dairy Sci. 93(2): 693-700.
Bond, T., C. Kelly, W. Garrett, and L. Hahn. 1961. Evaluation of materials for livestock shades applicable to other open-type structures. Calif. Agr. 15: 7-8.
Bouraoui, R., M. Lahmar, A. Majdoub, M. n. Djemali, and R. Belyea. 2002. The relationship of temperature-humidity index with milk production of dairy cows in a Mediterranean climate. Anim. Res. 51: 479-491.
Brosh, A., I. Choshniak, A. Tadmor, and A. Shkolnik. 2009. Infrequent drinking, digestive efficiency and particle size of digesta in black Bedouin goats. J. Agr. Sci. 106: 575-579.
Brown, D. L., S. R. Morrison, and G. E. Bradford. 1988. Effects of ambient temperature on milk production of Nubian and Alpine goats. J. Dairy Sci. 71: 2486-2490.
Caulfield, M. P., H. Cambridge, S. F. Foster, and P. D. McGreevy. 2014. Heat stress: a major contributor to poor animal welfare associated with long-haul live export voyages. Vet. J. 199: 223-228.
Chen, J. M., K. E. Schutz, and C. B. Tucker. 2016. Cooling cows efficiently with water spray: Behavioral, physiological, and production responses to sprinklers at the feed bunk. J. Dairy Sci. 99: 4607-4618.
Chen, K. H., J. T. Huber, C. B. Theurer, D. V. Armstrong, R. C. Wanderley, J. M. Simas, S. C. Chan, and J. L. Sullivan. 1993. Effect of protein quality and evaporative cooling on lactational performance of Holstein cows in hot weather. J. Dairy Sci. 76: 819-825.
Cobble, J. W., and H. A. Herman. 1951. The influence of environmental temperatures on the composition of milk of the dairy cow. University of Missouri.
da Costa, M. J., R. G. da Silva, and R. C. de Souza. 1992. Effect of air temperature and humidity on ingestive behaviour of sheep. Int. J. Biometeorol. 36: 218-222.
Dado, R. G., and M. S. Allen. 1995. Intake limitations, feeding behavior, and rumen function of cows challenged with rumen fill from dietary fiber or inert bulk. J. Dairy Sci. 78: 118-133.
Darcan, N., F. Cedden, and S. Cankaya. 2008. Spraying effects on some physiological and behavioural traits of goats in a subtropical climate. Ital. J. Anim. Sci. 7: 77-85.
Darcan, N., and O. Güney. 2008. Alleviation of climatic stress of dairy goats in Mediterranean climate. Small Ruminant Res. 74: 212-215.
Das, R., L. Sailo, N. Verma, P. Bharti, J. I. Saikia, and R. Kumar. 2016. Impact of heat stress on health and performance of dairy animals: a review. Vet. World 9: 260-268.
Emery, R. S. 1978. Feeding for increased milk protein. J. Dairy Sci. 61: 825-828.
Faldet, M. A., and L. D. Satter. 1991. Feeding heat-treated full fat soybeans to cows in early lactation. J. Dairy Sci. 74: 3047-3054.
Fasoro, B. 1999. Heat stress index in three breeds of goats. Agric. Project, Dept. of Animal Breeding and Genetics, University of Agriculture, Abeokuta, Nigeria: 6-28.
Feedipedia : animal feed resources information system. Retrieved from https://www.feedipedia.org/ (Aug 5, 2018).
Gaafar, H. M. A., M. E. El-Gendy, M. I. Bassiouni, S. M. Shamiah, A. A. Halawa, and M. A. Abu El-Hamd. 2011. Effect of heat stress on performance of dairy Friesian cow’s milk production and composition. Researcher 3 (5): 85-93.
Garcia, A. 2015. Heat stress in dairy cows. Coll. Agric. Biol. Sci., South Dakota Univ., Extension Extra 4024.
Giger-Reverdin, S., and E. Gihad. 1991. Water metabolism and intake in goats. Goat Nutr. 46: 37-45.
Hales, J. R. S., and G. D. Brown. 1974. Net energetic and thermoregulatory efficiency during panting in the sheep. Comp. Biochem. Physiol. 49 (3): 413-422.
Hammadi, M., A. Fehem, H. Harrabi, N. Ayeb, T. Khorchani, A. A. K. Salama, R. Casals, X. Such, G. Caja. 2012. Shading effects on respiratory rate and rectal temperature in Tunisian local goat kids during summer season. Proc. XI International Conference on Goats, Gran Canaria, Spain, 23-27. 09. 2012, p. 127.
Hamzaoui, S., A. A. K. Salama, E. Albanell, X. Such, and G. Caja. 2013. Physiological responses and lactational performances of late-lactation dairy goats under heat stress conditions. J. Dairy Sci. 96: 6355-6365.
Hamzaoui, S., A. A. K. Salama, G. Caja, and E. Albanell. 2012. Milk production losses in early lactating dairy goats under heat stress. J. Dairy Sci. 95 (2): 672-673.
Hassan, A., and J. D. Roussel. 1975. Effect of protein concentration in the diet on blood composition and productivity of lactating Holstein cows under thermal stress. J. Agr. Sci. 85: 409-415.
Heath, E., and Olusanya, S. 1985. Anatomy and physiology of tropical livestock. Intern. Tropical Agric. Series, Longman, 3rd ed. 138pp.
Hirayama, T., S. Oshiro, K. Katoh, and M. Ohta. 2000. Effects of heat exposure on the rumination and passage rate of feeds through the digestive tract of goats. J. Anim. Sci. 71 (8): J258-J263.
Hutjens, M. 2007. Meeting rumen fermentable carbohydrate needs. Retrieved from http://livestocktrail.illinois.edu/dairynet/paperdisplay.cfm?contentid=9767 (June 8, 2018).
Igono, M. O., H. D. Johnson, B. J. Steevens, G. F. Krause, and M. D. Shanklin. 1987. Physiological, productive, and economic benefits of shade, spray, and fan system versus shade for Holstein cows during summer heat. J. Dairy Sci. 70: 1069-1079.
Joshi, B. C., R. E. McDowell, and D. P. Sadhu. 1968. Effect of drugs on sweating rates in Hariana cattle. J. Dairy Sci. 51: 905-909.
Kadzere, C. T., M. R. Murphy, N. Silanikove, and E. Maltz. 2002. Heat stress in lactating dairy cows: a review. Livest. Prod. Sci. 77: 59-91.
Kandemir, Ç., N. Koşum, and T. Taşkin. 2013. Effects of heat stress on physiological traits in sheep. Maced. J. Anim. Sci. 3: 25-29.
Kljajevic, N. V., I. B. Tomasevic, Z. N. Miloradovic, A. Nedeljkovic, J. B. Miocinovic, and S. T. Javanovic. 2018. Seasonal variations of Saanen goat milk composition and the impact of climatic conditions. J. Food Sci. Technol. 55 (1): 299-303.
Knapp, D. M., and R. R. Grummer. 1991. Response of lactating dairy cows to fat supplementation during heat stress. J. Dairy Sci. 74: 2573-2579.
Komarek, A.R., Manson, H., Theix, N., 1996. Crude fiber determinations using the ANKOM fiber system. ANKOM technology publication 102.
Legates, J. E. 1960. Genetic and environmental factors affecting the solids-not-fat composition of milk. J. Dairy Sci. 43: 1527-1532.
Li, Z., C. Mei, and Z. Guo. 2009. Effects of heat stress on milk performance and fatty acids in milk fat of Holstein dairy cows. China Dairy Ind. 37: 17-19.
Lowe, T. E., C. J. Cook, J. R. Ingram, and P. J. Harris. 2001. Impact of climate on thermal rhythm in pastoral sheep. Physiol. Behav. 74: 659-664.
LPHSI. 1990. Livestock and Poultry Heat Stress Indices. The heat stress indices for poultry, cattle, sheep and goats. The Agriculture Engineering Technology Guide, Clemson University, Clemson, SC, USA.
Lu, C. D. 1989. Effects of heat stress on goat production. Small Ruminant Res. 2: 151-162.
Mader, T. L., and M. S. Davis. 2004. Effect of management strategies on reducing heat stress of feedlot cattle: feed and water intake. J. Anim. Sci. 82: 3077-3087.
Miller, G. D., J. J. B. Frye, J. B. J. Burch, P. J. Henderson, and L. L. Rusoff. 1951. The effect of sprinkling on the respiration rate, body temperature, grazing performance and milk production of dairy cattle. J. Anim. Sci. 10: 961-968.
Moran, J. 2005. Tropical dairy farming: feeding management for small holder dairy farmers in the humid tropics. Landlinks Press, 312 pp.
Muller, C., J. Botha, W. Coetzer, and W. Smith. 1994. Effect of shade on various parameters of Friesian cows in a Mediterranean climate in South Africa. 2. Physiological responses. S. Afr. J. Anim. Sci. 24: 56-60.
Nickerson, S. C., and R. M. Akers. 1984. Biochemical and ultrastructural aspects of milk synthesis and secretion. Int. J. Biochem. 16: 855-865.
Nikitchenko I. N., S. I. Plyaschenko, and A. C. Zenkov. 1988. Stresses and productivity of farm animals. Urajai Publishing House, Minsk, 200 pp.
NRC. 1971. A Guide to Environmental Research on Animals. Natl. Acad. Sci., Washington, DC.
NRC. 2001. Nutrient requirements of dairy cattle. National Academy Press, Washington, DC.
NRC. 2007. Nutrient requirements of small ruminants, sheep, goats, cervids, and new world camelids. National Academy Press, Washington, DC.
Ohnstad, I. 2012. Managing heat stress in dairy cows. National Animal Disease Information Service.
Retrieved from http://www.nadis.org.uk/bulletins/managing-heat-stress-in-dairy-cows.aspx (June 19, 2018).
Rana, M. S., M. A. Hashem, S. Akhter, M. Habibullah, M. H. Islam, R. C. Biswas. 2014. Effect of heat stress on carcass and meat quality of indigenous sheep of Bangladesh. Bang. J. Anim. Sci. 43 (2): 147-153.
Rapetti, L., S. Colombini, G. Galassi, G. M. Crovetto, and L. Malagutti. 2014. Relationship between milk urea level, protein feeding and urinary nitrogen excretion in high producing dairy goats. Small Ruminant Res. 121: 96-100.
Reiss, O. K., and J. M. Barry. 1953. The synthesis of lactose from glucose in the mammary gland. Biochem. J. 55: 783-785.
Rex, N. 2010. Soybean: feed industry guide (1st edition). Canadian International Grains Institute.: 48 pp.
Rhoads, R. P., L. H. Baumgard, J. K. Suagee, and S. R. Sanders. 2013. Nutritional interventions to alleviate the negative consequences of heat stress. Adv. Nutr. 4: 267-276.
Robertshaw, D., and R. Dmi'el. 1983. The effect of dehydration on the control of panting and sweating in the black Bedouin goat. Physiol. Zool. 56: 412-418.
Robinson, N. E. 2002. Thermoregulation. In: Textbook of veterinary physiology, Cunningham J.G. (ed.). WB Saunders, Philadelphia, PA., pp. 533-542.
Ryan, D. P., M. P. Boland, E. Kopel, D. Armstrong, L. Munyakazi, R. A. Godke, and R. H. Ingraham. 1992. Evaluating two different evaporative cooling management systems for dairy cows in a hot, dry climate. J. Dairy Sci. 75: 1052-1059.
Salama, A. A. K., G. Caja, S. Hamzaoui, B. Badaoui, A. Castro-Costa, D. A. E. Facanha, M. M. Guihermino, and R. Bozzi. 2014. Different levels of response to heat stress in dairy goats. Small Ruminant Res. 121: 73-79.
Sano, H., K. Ambo, and T. Tsuda. 1985. Blood glucose kinetics in whole body and mammary gland of lactating goats exposed to heat. J. Dairy Sci. 68: 2557-2564.
Schepers, A. J., and R. G. M. Meijer. 1998. Evaluation of the utilization of dietary nitrogen by dairy cows based on urea concentration in milk. J. Dairy Sci. 81: 579-584.
Schmidely, P., P. Morand-Fehr, and D. Sauvant. 2005. Influence of extruded soybeans with or without bicarbonate on milk performance and fatty acid composition of goat milk. J. Dairy Sci. 88: 757-765.
Schneider, P. L., D. K. Beede, C. J. Wilcox, and R. J. Collier. 1984. Influence of dietary sodium and potassium bicarbonate and total potassium on heat-stressed lactating dairy cows. J. Dairy Sci. 67: 2546-2553.
Sejian, V., V. P. Maurya, and S. M. K. Naqvi. 2010. Adaptive capability as indicated by endocrine and biochemical responses of Malpura ewes subjected to combined stresses (thermal and nutritional) in a semi-arid tropical environment. Int. J. Biometeorol.54: 653-661.
Sevi, A., M. Albenzio, G. Annichiarico, M. Caroprese, R. Marino, and A. Santillo. 2006. Effects of dietary protein level on ewe milk yield and nitrogen utilization, and on air quality under different ventilation rates. J. Dairy Res. 73: 197-206.
Sevi, A., L. Taibi, M. Albenzio, M. Caroprese, R. Marino, and A. Muscio. 2003. Ventilation effects on air quality and on the yield and quality of ewe milk in winter. J. Dairy Sci. 86: 3881-3890.
Shafie, M. M., H. M. Murad, T. Elbedawy, and S. M. Salem. 1994. Effect of heat stress on feed intake, rumen fermentation and water turnover in relation to heat tolerance response by sheep. Egyptian J. Anim. Prod. 31 (2): 317-327.
Shebaita, M., and I. El-Banna. 1982. Heat load and heat dissipation in sheep and goats under environmental heat stress. In: Proceedings of the sixth International Conference on Animal and Poultry Production, held at University of Zagazig, Zagazig, Egypt, 21-23 September 1982/Egyptian Society of Animal Production
Shilja, S., V. Sejian, M. Bagath, A. Mech, C. G. David, E. K. Kurien, G. Varma, and R. Bhatta. 2015. Adaptive capability as indicated by behavioral and physiological responses, plasma HSP70 level, and PBMC HSP70 mRNA expression in Osmanabadi goats subjected to combined (heat and nutritional) stressors. Int. J. Biometeorol. 60: 1311-1323.
Silanikove, N. 2000. Effects of heat stress on the welfare of extensively managed domestic ruminants. Livest. Prod. Sci. 67: 1-18.
Silanikove, N., and N. Koluman. 2015. Impact of climate change on the dairy industry in temperate zones: Predications on the overall negative impact and on the positive role of dairy goats in adaptation to earth warming. Small Ruminant Res. 123: 27-34.
Sivakumar, A. V. N., G. Singh, and V. P. Varshney. 2010. Antioxidants supplementation on acid base balance during heat stress in goats. Asian-Aust. J. Anim. Sci. 23 (11): 1462-1468.
Soto-Navarro, S. A., C. R. Krehbiel, G. C. Duff, M. L. Galyean, M. S. Brown, and R. L. Steiner. 2000. Influence of feed intake fluctuation and frequency of feeding on nutrient digestion, digesta kinetics, and ruminal fermentation profiles in limit-fed steers. J. Anim. Sci. 78: 2215-2222.
Stott, G. H., and E. G. Moody. 1960. Tolerance of dairy cows to high climatic temperatures on low roughage ration. J. Dairy Sci. 43: 871-872.
Thomas, C. K., and R. A. Pearson. 1986. Effects of ambient temperature and head cooling on energy expenditure, food intake and heat tolerance of Brahman and Brahman x Friesian cattle working on treadmills. Anim. Sci. 43: 83-90.
Thompson, G. E., P. E. Hartmann, J. A. Goode, and K. S. Lindsay. 1981. Some effects of acute fasting and climatic stresses upon milk secretion in friesland sheep. Comp. Biochem. Physiol. 70 (A): 13-16.
Thwaites, C. 1985. Physiological responses and productivity in sheep. In: Yousef, M.K. (Ed.), Stress Physiology in Livestock. CRC Press, Inc., Boca Raton, Florida, USA, pp. 25–39.
Van Soest, P. J., J. B. Robertson, and B. A. Lewis. 1991. Symposium: carbohydrate methodology, metabolism, and nutritional implications in dairy cattle. J. Dairy Sci. 74: 3583-3597.
West, J., M. Mathis, and B. Mullinix. 1995. Effects of increasing dietary NDF from bermudagrass hay on performance of lactating dairy cows during cool and hot weather. J. Dairy Sci. 78: 208.
West, J. W. 1997. Balancing diets for dairy cattle during heat stress conditions. In: Florida Ruminant Nutrition Symposium Proceedings, University of Florida, Gainesville, January. p 16-17.
West, J. W. 1999. Nutritional strategies for managing the heat-stressed dairy cow. J. Anim. Sci. 77 (Suppl 2): 21-35.
West, J. W. 2003. Effects of heat-stress on production in dairy cattle. J. Dairy Sci. 86: 2131-2144.
Zaytsev, V. I., A. V. Sinev, P. S. Ionov, A. V. Vasilyev, and I. G. Sharabrin. 1971. Clinical diagnostics of internal diseases of farm animals. Kolos Publishing House, Moscow, 336 pp.
Zhang, Q., H. Su, F. Wang, Z. Cao, and S. Li. 2015. Effects of energy density in close-up diets and postpartum supplementation of extruded full-fat soybean on lactation performance and metabolic and hormonal status of dairy cows. J. Dairy Sci. 98: 7115-7130.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/70740-
dc.description.abstract臺灣熱季時間長,氣候高溫多濕,環境溫濕度指數(temperature-humidity index, THI)往往高於熱緊迫之標準,因此熱緊迫一直是酪農首要克服的問題。熱緊迫會造成泌乳羊體溫上升、呼吸速率加快並伴隨有喘氣行為的出現,此外採食量下降以及飲水量增加也是熱緊迫下典型的表現。在生產表現上會造成羊隻乳產量下滑,乳成分表現亦受負面影響,乳脂率、乳蛋白質以及非乳脂固形物會下降。甚至在熱季,非乳脂固形物無法符合生羊乳國家標準已是常態。解決的辦法除了選拔較耐熱的品種之外,在環境改善方面,可以加裝蒸發降溫的設備如灑水、噴霧,另外透過營養方面的調控,調整日糧能量、蛋白質、芻精比等,希望能彌補熱季採食量不足的問題。
本試驗分做兩個部分,第一部分在臺大試驗農場,選用12隻已過泌乳高峰之阿爾拜因(Alpine)山羊,依據乳量、胎次將羊隻平均分配成兩個處理(對照組、日糧調整組),兩組羊隻分別飼養於兩個大欄位。試驗期間包含三週開啟噴霧降溫設備以及關閉噴霧降溫設備後的4天,期間收集剩料、羊乳樣品以及呼吸速率,並記錄試驗環境溫度及濕度以計算THI。第二部分在嘉義及臺南共三間商業乳羊場,預先收集採食量、日糧配方、呼吸速率、乳產量以及乳成分作為初始參考值,將日糧做調整包括調降芻精比例、增加蛋白質含量、提高能量濃度等等。收集調整後泌乳羊採食量、乳產量以及乳成分等資料,將調整前後做對照,評估日糧調整對於羊隻熱季表現的改善效果。
第一部分結果顯示,在開啟噴霧降溫的三週前後,日糧調整組的羊隻,採食量增加了36%(1621.2 g/head/d vs 1188.0 g/head/d),乳產量也增加了11.7%達到顯著差異,乳蛋白質及非乳脂固形物雖無顯著差異,但在三週後也有提升的現象。而在關閉噴霧後,採食量及乳產量皆在一天之內下降,乳產量呈顯著下滑。對照組羊隻的呼吸速率及採食量甚至出現有起伏的不穩定表現,由此可見熱季的蒸發降溫系統的必要性。但在噴霧關閉的前後,泌乳羊呼吸速率並無顯著差異,因此噴霧降溫的效果並不如預期,仍需更多試驗找出最佳的設定。
第二部分試驗在三間商業乳羊場做日糧調整,105年A乳羊場芻精比從76:24降低至65:35,日糧粗蛋白質含量自10.51%提升至15.11%並增加過瘤胃蛋白含量,結果採食量提高,乳產量提高20%,乳蛋白質及SNF皆有上升;105年B乳羊場日糧精料比例高達60%,日糧粗蛋白質自14.16%提高至17.45%同時增加過瘤胃蛋白質,結果採食量增加,乳產量增加8.8%,乳蛋白及SNF些微提升;106年A乳羊場增加日糧蛋白質(14.56% vs 12.97%)並提高過瘤胃蛋白,結果乳產量增加8%,乳成分沒有變化;106年C乳羊場僅將品質差的苜蓿草換成品質較佳的苜蓿乾草,使得日糧粗蛋白質含量自12.36%提高至16.45%,結果乳產量增加3.6%,乳蛋白質及SNF也有提升的情形。
綜合上述,熱季提高日糧精芻比例和粗蛋白質含量,並提高過瘤胃蛋白質比例,對於改善泌乳羊生產表現,如乳產量、乳蛋白質及SNF皆有正面的效果,可作為熱季泌乳羊調整日糧的主要原則。噴霧降溫能夠幫助泌乳羊紓解熱緊迫,但設定的細節仍需要更多試驗去支持。
zh_TW
dc.description.abstractIt is hot and humid in the long hot season in Taiwan. Heat stress is very common in hot season and is a problem must be solved first in dairy industry. Heat stress will increase rectal temperature and respiration rate. Panting is a typical behavior in heat stressed goats. Dry matter intake (DMI) decreases and water consumption increases during heat stress. Heat stress also decreases lactation performance. Milk production, milk fat, milk protein, and milk solids-non-fat (SNF) decline during heat stress. There are three methods to reducing the effects of heat stress: selecting heat tolerant goat breed/strain, physical modification of environment such as water sprinkling and mist cooling, and nutritional management to counteract the declined intake during hot season.
There are two parts of this experiment. First part was at NTU farm. Twelve Alpine dairy goats were assigned according to milk yields and parities into two different two treatment groups (control diet and nutrition-modified diet). During the experiment period, we recorded temperature and relative humidity to calculate THI. Refusals, milk samples, and respiration rate of goats were also collected and measured. Then we monitored changes in compositions of nutrient intake and milk compositions. The second part of the experiment was conducted at three commercial farms in Chiayi and Tainan. The monitored items were the same as first part of experiment. The nutrition modification included decreasing forage to concentrate ratio, increase crude protein density and energy density. About a month after feeding nutrient-modified diet, we collected all the items again to compare the differences before and after diet modification.
In the first part, DMI increased 36% and milk production increased 11.7% significantly in nutrient-modified group with water mist and fan cooling. Milk protein and SNF increased a little. When the mist cooling turned off, DMI and milk production decreased immediately. Besides, in control group, DMI and respiration rate were unstable. This implicated the importance of evaporative cooling. However, respiration rate was not significantly different with mist cooling or not. It was not effective as we expected. So, it still needs more experiments to find out the best settings for better cooling.
In the second part, the forage: concentrate ratio in A farm in 2016 was lowered (76:24 vs 65:35), and the protein ratio increased (10.51% vs 15.11%) by adding rumen undegradable protein (RUP). As a result, DMI increased and milk production increased 20%. Milk protein and SNF also increased. The concentrate ratio in B farm in 2017 was 60%. We increased protein ratio and RUP of the diet (14.16% vs 17.45%) and we found that DMI and milk production increased. Milk protein and SNF increased a little. We increased protein ratio and RUP in A farm in 2017 and found that milk production increased 8% with no change in milk contents. In C farm in 2017, we changed high quality alfalfa forage to raise dietary protein content (12.36% vs 16.45%). Milk yield was increased by 3.6% with higher milk protein and SNF.
In conclusion, by increasing concentrate: forage ratio, protein ratio, and RUP in diet, there were positive effects on lactation performance such as milk yields, milk protein, and SNF in hot season. It could be a useful principle in hot season for nutritional modification for dairy goats. Evaporative cooling as water mist can help to decrease the negative effects of heat stress, but it needs more experiments to find out water mist settings for better cooling effect.
en
dc.description.provenanceMade available in DSpace on 2021-06-17T04:36:47Z (GMT). No. of bitstreams: 1
ntu-107-R05626005-1.pdf: 2843529 bytes, checksum: d2793151cc0fa451fcb95f694d14f10a (MD5)
Previous issue date: 2018
en
dc.description.tableofcontents謝誌 I
摘要 II
Abstract IV
圖次 VIII
表次 X
前言 1
壹、文獻探討 2
一、 熱緊迫介紹 2
二、 熱緊迫對泌乳山羊的影響 7
三、 解決方法 20
四、 臺灣現況 31
貳、材料與方法 34
一、 泌乳羊試驗 34
二、 分析方法 54
三、 統計模式 65
參、結果討論 66
一、 第一部分試驗結果(臺大農場) 66
二、 第二部分試驗結果(商業乳羊場) 81
三、試驗整體討論 106
肆、結論 108
伍、參考文獻 109
陸、附錄 121
dc.language.isozh-TW
dc.title藉由環境及營養的調整策略改善熱季泌乳羊生產表現zh_TW
dc.titleEnvironmental and Nutritional Strategy to Improve Production of Dairy Goats in Hot Seasonen
dc.typeThesis
dc.date.schoolyear106-2
dc.description.degree碩士
dc.contributor.oralexamcommittee王翰聰,陳靜宜,楊价民
dc.subject.keyword熱緊迫,噴霧,過瘤胃蛋白,營養調控,泌乳羊,zh_TW
dc.subject.keywordheat stress,mist cooling,rumen undegradable protein,nutrient management,dairy goat,en
dc.relation.page122
dc.identifier.doi10.6342/NTU201802598
dc.rights.note有償授權
dc.date.accepted2018-08-08
dc.contributor.author-college生物資源暨農學院zh_TW
dc.contributor.author-dept動物科學技術學研究所zh_TW
顯示於系所單位:動物科學技術學系

文件中的檔案:
檔案 大小格式 
ntu-107-1.pdf
  目前未授權公開取用
2.78 MBAdobe PDF
顯示文件簡單紀錄


系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。

社群連結
聯絡資訊
10617臺北市大安區羅斯福路四段1號
No.1 Sec.4, Roosevelt Rd., Taipei, Taiwan, R.O.C. 106
Tel: (02)33662353
Email: ntuetds@ntu.edu.tw
意見箱
相關連結
館藏目錄
國內圖書館整合查詢 MetaCat
臺大學術典藏 NTU Scholars
臺大圖書館數位典藏館
本站聲明
© NTU Library All Rights Reserved