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相关概念视频

Anatomy of the Circulatory System02:03

Anatomy of the Circulatory System

The human circulatory system consists of blood, blood vessels that carry blood away from the heart, around the body, and back to the heart, and the heart itself, which acts as a central pump. The systemic circuit supplies blood to the whole body, the coronary circuit supplies blood to the heart, and the pulmonary circuit supplies blood flow between the heart and lungs.
Anatomy of the Heart01:27

Anatomy of the Heart

The human heart is made up of three layers of tissue that are surrounded by the pericardium, a membrane that protects and confines the heart. The outermost layer, closest to the pericardium, is the epicardium. The pericardial cavity separates the pericardium from the epicardium. Beneath the epicardium is the myocardium, the middle layer, and the endocardium, the innermost layer. There are four chambers of the heart: the right atrium, the right ventricle, the left atrium, and the left ventricle.
Glaucoma: Overview01:25

Glaucoma: Overview

Glaucoma is an eye condition characterized by increased intraocular pressure that damages the retina and optic nerve, leading to irreversible blindness if left untreated. The human eye has various components, including the cornea, iris, pupil, lens, and optic nerve. Aqueous humor is secreted by the epithelium of the ciliary body in the posterior chamber and flows through the trabecular meshwork and canal of Schlemm, maintaining normal intraocular pressure. The trabecular meshwork and the canal...
Open Angle Glaucoma: Treatment01:27

Open Angle Glaucoma: Treatment

In open-angle glaucoma, the iridocorneal angle remains open, but the trabecular meshwork becomes stiff, slowing down the outflow of aqueous humor. This causes a buildup of aqueous humor in the anterior chamber, leading to a sudden increase in intraocular pressure. The treatment for open-angle glaucoma focuses on reducing the elevated intraocular pressure by either decreasing the secretion of aqueous humor or increasing its outflow.
Drugs such as carbonic anhydrase inhibitors, α2- and...
Angle Closure Glaucoma: Treatment01:28

Angle Closure Glaucoma: Treatment

Angle-closure glaucoma, or closed-angle glaucoma, is an eye condition where the iris bulges out and blocks the iridocorneal angle, resulting in a buildup of aqueous humor and increased intraocular pressure. Immediate medical attention is necessary due to the sudden onset of symptoms. The treatment for angle-closure glaucoma includes short-term and long-term approaches. Short-term treatment involves using eye drops like pilocarpine to lower intraocular pressure by increasing aqueous humor...
Gallbladder01:17

Gallbladder

The gallbladder is a small, pear-shaped organ that plays a crucial role in our digestive system. Measuring about 10 cm in length, it is comparable in size to a kiwi fruit and is located in a hollow area on the lower surface of the liver. The gallbladder's primary function is to store and concentrate bile, a fluid produced by the liver that aids in digestion.
The gallbladder's anatomy consists of three regions: the fundus, body, and neck. Extending from the neck, the cystic duct joins the common...

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An Ex Vivo Laser-induced Spinal Cord Injury Model to Assess Mechanisms of Axonal Degeneration in Real-time
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为了纪念Peter K. Galenko博士的记忆

Dmitri V Alexandrov1, Vladimir Ankudinov2,3,4, Liubov V Toropova5,6

  • 1Laboratory of Multi-Scale Mathematical Modeling, Department of Theoretical and Mathematical Physics, Ural Federal University, Ekaterinburg 620000, Russia.

Journal of physics. Condensed matter : an Institute of Physics journal
|December 10, 2025
PubMed
概括

教授彼得·K·加伦科 (Peter K. Galenko) 开创了快速固化的局部不平衡理论,推进了溶液捕获和无扩散生长模型. 他的工作重新定义了在原子到微重力尺度上的结晶研究.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 物理 物理学 物理
  • 结晶科学 结晶科学

背景情况:

  • 教授彼得·K·加伦科 (Peter K. Galenko) 的研究对理解材料结晶作出了重大贡献.
  • 他的工作解决了模拟快速固化过程的基本挑战.

研究的目的:

  • 为了纪念Peter K Galenko教授对结晶研究的创新贡献.
  • 要突出他对局部不平衡概念及其影响的发展.

主要方法:

  • 关于加伦科教授关于快速固化的开创性著作的评论.
  • 对他对溶液捕获和无扩散生长建模的贡献进行分析.
  • 检查他在相场晶体方法和树突选择理论方面的进步.

主要成果:

  • 在快速固化的局部不平衡的革命性概念建立了.
  • 在模拟溶液捕获和无扩散生长方面取得了突破.
  • 在相场晶体方法和树突选择理论方面取得了重大进展.

结论:

  • 加伦科教授的研究重新定义了结晶科学的前沿.
  • 他的工作跨越了多个尺度,从原子到微重力条件.
  • 他的遗产在于推进了对晶体生长的理论和计算理解.