高流量毛细血管的动力学
Huan Yan1, Weiwei Li2, Jiali Liu3,4
1State Key Laboratory of Chemical Engineering and Low-Carbon Technology, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, PR China.
Langmuir : the ACS journal of surfaces and colloids
|December 13, 2025
概括
在毛细血管中优化微支柱排列可以提高流体流动. 形微柱提供最佳性能,显著增加流量,同时最大限度地降低阻力,以实现高效的设计.
科学领域:
- 流体动力学 流体动力学
- 微流体学 微流体学
- 材料科学 材料科学 材料科学
背景情况:
- 微柱状毛细血管对于流体运输至关重要.
- 它们的性能在很大程度上取决于微柱状结构和排列.
- 优化设计需要了解流量阻力和流速.
研究的目的:
- 研究微柱阵列设计对毛细血管性能的影响.
- 为了确定最佳的微柱形状和安排,以实现高流量和低阻力.
- 开发毛细血管电阻的预测公式.
主要方法:
- 使用数值模拟来分析流量和阻力.
- 模拟了各种微柱状排列模式.
- 微柱体尺寸 (小轴长) 和高度各不相同.
主要成果:
- 微柱体的形状和布置显著影响了毛细血管的性能.
- 形微柱体证明了最好的送效率.
- 与较小的设计相比,设计的实现了数十倍的流量增加.
- 侧面摩擦和形状阻力被确定为关键因素.
结论:
- 形微支柱是高流量毛细血管设计的最佳选择.
- 导出了一个计算侧面摩擦阻力的动态公式.
- 基于模拟数据,建立了高流量毛细血管的阻力预测公式.
相关概念视频
Capillary Exchange
10.4K
The cardiovascular system's chief role is to disseminate gases, nutrients, waste, and other substances to the body's cells. Small molecules like gases, lipids, and lipid-soluble substances directly diffuse through capillary wall endothelial cell membranes. Glucose, amino acids, and ions, including sodium, potassium, calcium, and chloride, use transporters for facilitated diffusion via membrane-specific channels. Glucose, ions, and bigger molecules may also pass through intercellular...
10.4K
Capillarity in Fluid
762
Capillarity describes the movement of liquid in small spaces without external forces acting on it. The capillarity is driven by surface tension and adhesive interactions between the liquid and surrounding solid surfaces. This effect is often seen in narrow tubes, porous materials, and fine particles.
Surface tension is crucial to capillarity. It results from cohesive forces between liquid molecules at the liquid-air boundary, forming a skin that resists external forces. When the capillary tube...
Surface tension is crucial to capillarity. It results from cohesive forces between liquid molecules at the liquid-air boundary, forming a skin that resists external forces. When the capillary tube...
762
ATP Driven Pumps III: V-type Pumps
4.6K
V-type pumps are ATP-driven pumps found in the vacuolar membranes of plants, yeast, endosomal and lysosomal membranes of animal cells, plasma membranes of a few specialized eukaryotic cells, and some prokaryotes. They are also known as the V1Vo-ATPase, that couple ATP hydrolysis to transport protons against a concentration gradient.
The peripheral or cytosolic V1 domain with eight subunits is involved in ATP hydrolysis. The integral or transmembrane V0 domain containing at least five subunits...
The peripheral or cytosolic V1 domain with eight subunits is involved in ATP hydrolysis. The integral or transmembrane V0 domain containing at least five subunits...
4.6K
Blood Flow
75.4K
Blood is pumped by the heart into the aorta, the largest artery in the body, and then into increasingly smaller arteries, arterioles, and capillaries. The velocity of blood flow decreases with increased cross-sectional blood vessel area. As blood returns to the heart through venules and veins, its velocity increases. The movement of blood is encouraged by smooth muscle in the vessel walls, the movement of skeletal muscle surrounding the vessels, and one-way valves that prevent backflow.
75.4K
Steady, Laminar Flow in Circular Tubes
977
Hagen-Poiseuille flow describes a viscous fluid's steady, incompressible flow through a cylindrical tube with a constant radius R. This flow profile is often applied to understand fluid transport in narrow channels, such as capillaries. It serves as a foundational example of laminar flow. In this model, cylindrical coordinates (r,θ,z) are used to describe the radial (r), angular (θ), and axial (z) dimensions within the tube. For Hagen-Poiseuille flow, the velocity profile is purely axial,...
977
ATP Driven Pumps II: P-type Pumps
6.0K
The P-type pumps are a large family of integral membrane transporter ATPases. They are divided into five major types based on substrate specificity, from I to V.
A typical P-type pump has three cytosolic domains: nucleotide-binding (N), phosphorylation (P), and activator (A) domains. These domains are connected to the membrane-spanning helices by short amino acid segments. ATP hydrolysis and covalent phosphoenzyme intermediate formation are crucial parts of the catalytic cycle. At the highly...
A typical P-type pump has three cytosolic domains: nucleotide-binding (N), phosphorylation (P), and activator (A) domains. These domains are connected to the membrane-spanning helices by short amino acid segments. ATP hydrolysis and covalent phosphoenzyme intermediate formation are crucial parts of the catalytic cycle. At the highly...
6.0K


