在狭窄动脉中混合血液纳米流体流动的建模和分析
Lubna Sarwar1, Azad Hussain2, Muhammad Bilal Riaz3,4
1Department of Mathematics, University of Gujrat, Gujrat, 50700, Pakistan. lubnasarwarch@gmail.com.
Scientific reports
|March 5, 2024
概括
这项研究分析了狭窄动脉中的血液流动,发现流动参数增加了速度,而纳米粒子和普兰特尔数降低了血液温度,这与化疗应用有关.
科学领域:
- * 生物医学工程 * 生物医学工程
- * 流体动力学 流体动力学
- * 纳米技术的使用
背景情况:
- *狭窄动脉中的血流动力学复杂,影响心血管健康.
- *纳米粒子在医学中的应用,特别是化疗,需要了解它们对血液风湿学的影响.
- *当前的模型往往简化了血液的风质性质和动脉收缩的几何形状.
研究的目的:
- * 模拟和分析血液流动特征在形狭窄动脉中的影响.
- * 研究纳米颗粒度和普兰特尔数等参数对血液流动和温度的影响.
- *为医疗应用中更复杂的血液类风学模型提供基础.
主要方法:
- * 开发了牛顿流体血流的二维模型.
- * 采用相似性转换来解决在狭窄假设下的统治方程.
- *使用图形表示来说明各种参数对流动行为的影响.
主要成果:
- * 随着流量参数 (马) 的变化,观察到血液速度的增加.
- * 发现纳米粒子体积分数和普兰特尔数的增加导致血温下降.
- * 量化关键参数,包括血流率和皮肤摩擦.
结论:
- *这项研究提供了对狭窄动脉内血液流动动态的见解,受流量参数和纳米粒子特性的影响.
- *结果表明,基于纳米粒子的疗法有可能调节血液温度,这与向药物输送有关.
- *这些发现激励了进一步的研究,将复杂的血液风湿学和先进的纳米粒子相互作用纳入医学模型.
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