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首页> 外文期刊>Medical engineering & physics. >Minimal haemodynamic system model including ventricular interaction and valve dynamics.
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Minimal haemodynamic system model including ventricular interaction and valve dynamics.

机译:最小的血液动力学系统模型,包括心室相互作用和瓣膜动力学。

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摘要

Characterising circulatory dysfunction and choosing a suitable treatment is often difficult and time consuming, and can result in a deterioration in patient condition, or unsuitable therapy choices. A stable minimal model of the human cardiovascular system (CVS) is developed with the ultimate specific aim of assisting medical staff for rapid, on site modelling to assist in diagnosis and treatment. Models found in the literature simulate specific areas of the CVS with limited direct usefulness to medical staff. Others model the full CVS as a closed loop system, but they were found to be very complex, difficult to solve, or unstable. This paper develops a model that uses a minimal number of governing equations with the primary goal of accurately capturing trends in the CVS dynamics in a simple, easily solved, robust model. The model is shown to have long term stability and consistency with non-specific initial conditions as a result. An "open on pressure close on flow" valve law is created to capture theeffects of inertia and the resulting dynamics of blood flow through the cardiac valves. An accurate, stable solution is performed using a method that varies the number of states in the model depending on the specific phase of the cardiac cycle, better matching the real physiological conditions. Examples of results include a 9% drop in cardiac output when increasing the thoracic pressure from -4 to 0 mmHg, and an increase in blood pressure from 120/80 to 165/130 mmHg when the systemic resistance is doubled. These results show that the model adequately provides appropriate magnitudes and trends that are in agreement with existing data for a variety of physiologically verified test cases simulating human CVS function.
机译:表征循环机能障碍并选择合适的治疗方法通常是困难且耗时的,并且可能导致患者病情恶化或选择不合适的治疗方法。开发了稳定的人体心血管系统最小模型(CVS),其最终目的是协助医务人员进行快速的现场建模,以协助诊断和治疗。文献中发现的模型模拟了CVS的特定区域,而对医务人员的直接作用有限。其他人将完整的CVS建模为闭环系统,但是发现它们非常复杂,难以解决或不稳定。本文开发了一个模型,该模型使用最少的控制方程式,其主要目标是在一个简单,易于解决的稳健模型中准确捕获CVS动态中的趋势。结果表明该模型具有长期稳定性和与非特定初始条件的一致性。创建了“压力打开时流量关闭”阀定律,以捕获惯性效应以及由此产生的通过心脏瓣膜的血流动力学。使用一种方法可以执行准确,稳定的解决方案,该方法根据心动周期的特定阶段改变模型中状态的数量,从而更好地匹配实际的生理状况。结果的例子包括:当胸腔压力从-4增加到0 mmHg时心输出量下降9%;当全身阻力增加一倍时,血压从120/80 mmHg增加到165/130 mmHg。这些结果表明,该模型为模拟人CVS功能的各种经过生理验证的测试用例充分提供了与现有数据相符的适当大小和趋势。

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