结合热模型和动力学:无氧化消化器动态模拟中的影响
Giberto Mitsuyoshi Yuki Junior1, Sabine Sochard2, Flavia Dela Pierre3
1Université de Pau et des Pays de l'Adour, E2S UPPA, LaTEP, Rue Jules Ferry BP 7511, 64075, Pau, France; Department of Agricultural, Forest and Food Sciences (DiSAFA) - University of Turin (UNITO), Largo Paolo Braccini 2, 10095, Grugliasco, TO, Italy.
Bioresource technology
|September 5, 2024
概括
这项研究整合了生物气体消化器的生化和热模型,将热需求的准确性提高了20%. 量身定制的消化器设计,考虑到气候,增强生物气体的生产和减少热量损失.
科学领域:
- 生物化学工程 生物化学工程
- 厌氧消化模型建模 厌氧消化模型建模
- 热过程模拟热过程模拟
背景情况:
- 精确的生物气消化器建模需要整合生化和热过程.
- 现有的模型可能会高估热量需求,影响运营效率.
- 气候等环境因素显著影响消化器的性能.
研究的目的:
- 将基于ADM1的动力学与生物气体消化器的综合热模型结合起来.
- 为了提高热量需求计算和热惯性表示的准确性.
- 评估气候和绝缘对消化器性能的影响,并优化设计.
主要方法:
- 集成的ADM1 (无氧消化模型号) 1) 动力学与详细的热模型.
- 基于动力速率计算的生物反应能量,避免原料降解热量的估计.
- 在不同的气候条件和绝缘级别下模拟消化器性能.
主要成果:
- 生物反应能量计算减少了约20%的热交换机需求高估.
- 改进了消化器热和反应惯性的表示.
- 模拟显示了显著的气候依赖性性能变化;英国反应堆的生物气自动消耗比法国高23%.
- 在英国,强化绝缘可减少37%的热损失.
结论:
- 合动力和热模型为生物气消化器优化提供了更深入的见解.
- 消化器的设计和施工必须适应特定的气候条件.
- 通过绝缘和气候特定设计改进的热管理提高了沼气生产效率.
相关概念视频
Physical Principles Governing Gas Exchange
4.0K
Gas behavior plays a vital role in understanding bodily processes such as external and internal respiration. External respiration involves the diffusion of oxygen into the blood and carbon dioxide out of it in the lungs. In contrast, internal respiration happens in body tissues, where these gases move in opposite directions.
Gas Laws Governing Respiration
The behavior of gases is guided by Dalton's Law of partial pressures and Henry's Law.
Dalton's Law asserts that the total...
Gas Laws Governing Respiration
The behavior of gases is guided by Dalton's Law of partial pressures and Henry's Law.
Dalton's Law asserts that the total...
4.0K
The Kinetic Model of Gases
146
The kinetic model of gases explains the properties of a perfect gas using three main assumptions: molecules move in ceaseless random motion, their size is negligible compared to the distances between them, and they do not interact except during perfectly elastic collisions. The total energy of a gas is the sum of the kinetic energies of all its constituent molecules. The pressure exerted by the gas arises from the continual bombardment of the container walls by billions of colliding molecules.
146
Parameters Affecting Nonlinear Elimination: Zero-Order Input, First-Order Absorption and Two-Compartment Model
427
Drugs administered through various routes can lead to nonlinear elimination, resulting in complex pharmacokinetic behaviors crucial to understanding efficacious drug dosing.
When a drug is administered through a constant intravenous infusion and eliminated via nonlinear pharmacokinetics, it follows zero-order input. For example, oral drugs undergo first-order absorption upon administration and are eliminated through nonlinear pharmacokinetics.
In the case of subcutaneously administered drugs,...
When a drug is administered through a constant intravenous infusion and eliminated via nonlinear pharmacokinetics, it follows zero-order input. For example, oral drugs undergo first-order absorption upon administration and are eliminated through nonlinear pharmacokinetics.
In the case of subcutaneously administered drugs,...
427
Application of Integration: Problem Solving
228
The process of breathing involves the periodic intake and expulsion of air, known as the respiratory cycle, which typically lasts about five seconds. Modeling the volume of air inhaled into the lungs as a function of time provides insight into both the dynamics and efficiency of pulmonary ventilation. This volume is determined by integrating the airflow rate over time, which captures the cumulative effect of air entering the lungs.Sinusoidal Model of AirflowAirflow during respiration is not...
228


