多分形空间中的复杂流体:尺度共变性和分形力的出现
Dragos-Ioan Rusu1, Vlad Ghizdovat2, Lacramioara Ochiuz2
1Department of Environmental Engineering, Mechanical Engineering and Agritourism, Faculty of Engineering, "Vasile Alecsandri" University of Bacau, 600115 Bacau, Romania.
Entropy (Basel, Switzerland)
|February 27, 2026
概括
这项研究引入了一个新的数学框架,使用非可差异化的多分形曲线来分析复杂的系统. 这种方法改善了多尺度异质性和间歇性的分析,在地质学和药理学等领域.
科学领域:
- 数学 数学 是一个数学.
- 复杂系统分析 复杂系统分析
- 多分形几何学多分形几何学
背景情况:
- 传统的微积分与复杂系统的多层次异质性和间歇性作斗争.
- 微积分计算不足以捕捉生物生物体和流体中的动态.
研究的目的:
- 为分析复杂系统动态提出一种新的数学框架.
- 将结构单位轨迹同化为连续的,不可分化的多分形曲线.
主要方法:
- 使用尺度共变原理来分析复杂系统动态.
- 在多分位空间中,将动量守恒重新构成地质方程.
- 将复杂的速度场分成可分辨和不可分辨的尺度分辨率.
主要成果:
- 该框架自然通过尺度分辨率将速度场分开.
- 加速,对流和消散的平衡是由一个奇点光谱f(α) 参数化.
结论:
- 非可区分的多分法分析为复杂系统提供了增强的预测能力.
- 这一框架对包括瘤学,药理学和地球物理学在内的领域具有广泛的跨学科影响.
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