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Establishment and Optimization of a Dynamic Model for Energy and Protein Requirements in Meat Ducks
Zhengbo Li1, Qiong Liu2, Dingtao Peng3
1School of Mathematics and Statistics, Guizhou University, Guiyang 550025, Guizhou, China; School of General Education, Moutai Institute, Renhuai, Guizhou 564500, China.
None:
The efficient utilization of energy and protein resources is crucial for the growth and development of meat ducks, as well as for the profitability of the poultry industry. This study aims to establish and optimize a dynamic model for the energy and protein requirements of meat ducks. A series of experiments were conducted with different dietary energy and protein levels. The growth performance, carcass quality, and nutrient utilization of the meat ducks were comprehensively evaluated. The results showed that when the dietary metabolizable energy (ME) was 12.8 MJ/kg and the crude protein (CP) level was 17.5%, the meat ducks exhibited the best growth performance and feed conversion ratio. The established dynamic model takes into account the interactive effects of energy and protein on the growth and metabolism of meat ducks, incorporating factors such as environmental temperature and breed characteristics. It provides a scientific basis for formulating precise feeding strategies to meet the nutritional needs of meat ducks at different growth stages, thereby improving production efficiency and reducing feed costs in the meat duck industry. The optimization of the model also considers the practical application in different production environments and duck breeds, enhancing its adaptability and reliability.
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