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Improving heat recovery in retrofitting heat exchanger networks with heat transfer intensification, pressure drop constraint and fouling mitigation

机译:通过强化传热,限制压降和减轻结垢来改善换热器网络的热量回收

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Implementing heat transfer intensified techniques are now recognised as an efficient retrofit way of improving energy saving in heat exchanger networks (HENs). This not only increases heat recovery, but also prolongs exchanger operating time due to its effect on fouling mitigation. Compared with most of the existing work of HENs based on very simple assumptions for fouling effect, this paper addresses more accurate and complex fouling models reported recently (Yang et al., 2012). Due to the dynamic features of fouling, integration of dynamic equation of fouling rate is used to estimate fouling resistance at different operational times. The novelty of this paper is to present new insights to implementation of heat transfer intensified technologies for HEN retrofitting. It is the first study to implement hiTRAN (R) (one commercial tube-insert technology) into heat exchangers to increase HEN heat recovery with the consideration of detailed exchanger performances including heat transfer intensifications, pressure drop constraints, and fouling mitigation. The overall retrofit profit is maximized based on the best trade-off among energy savings, intensification implementation costs, exchanger cleaning costs, and pump power costs. To solve such complex optimization problems, a new mixed-integer linear programming (MILP) model has been developed to consider fouling effects in retrofitting HENs with heat transfer intensification. An efficient iterative optimization approach is then developed to solve the MILP problem. In case studies, the new proposed approach is compared with the existing methods on an industrial scale problem, demonstrating that the new proposed approach is able to obtain more realistic solutions for practical industrial problems. (C) 2015 Elsevier Ltd. All rights reserved.
机译:如今,实施强化传热技术被公认为是一种改进换热网络(HENs)节能的有效改造方式。由于其对减轻结垢的影响,因此不仅增加了热回收,而且延长了交换器的运行时间。与基于污垢效果非常简单的假设的大多数现有HEN的研究相比,本文针对最近报道的更为准确和复杂的污垢模型进行了研究(Yang等,2012)。由于结垢的动态特性,使用结垢率动态方程的积分来估计不同运行时间下的结垢阻力。本文的新颖之处在于,为实现HEN换热强化技术的实施提供新见解。这是首次在热交换器中实施hiTRAN(R)(一种商用管插入技术)以提高HEN的热回收率的研究,同时考虑了详细的热交换器性能,包括传热强化,压降限制和结垢缓解。基于节能,集约化实施成本,交换器清洁成本和泵动力成本之间的最佳权衡,可以最大程度地提高整体改造利润。为了解决此类复杂的优化问题,已开发出一种新的混合整数线性规划(MILP)模型,以考虑在强化传热的HENs改造中的结垢效应。然后,开发了一种有效的迭代优化方法来解决MILP问题。在案例研究中,将新提议的方法与现有方法在工业规模问题上进行了比较,表明新提议的方法能够针对实际的工业问题获得更现实的解决方案。 (C)2015 Elsevier Ltd.保留所有权利。

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