论文标题

用于区域供暖网络动态模拟的减少阶模型

A reduced-order model for dynamic simulation of district heating networks

论文作者

Jiang, Mengting, Speetjens, Michel, Rindt, Camilo, Smeulders, David

论文摘要

这项研究涉及开发基于数据的紧凑模型,以预测区域供暖(DH)管道网络中流体温度演变。这种所谓的“减少阶模型”(ROM)是从将每个管段的能源的保护法还原到管道出口温度与管道入口和地面温度之间的半分析输入输出关系获得的,从训练数据中可以确定。 ROM基本上对于涉及3D非稳态传热和3D稳定流量的通用管构型基本有效,只要热转移机制线性取决于温度场即可。此外,训练数据可以通过基于物理学的计算“全阶”模型(FOM)生成,还可以通过(校准)实验或现场测量来生成。使用计算训练数据进行单个1D管道配置的性能测试表明,可以成功识别ROM(i),并且(ii)可以准确描述出口温度对入口和地面温度的任意输入配置文件的响应。将ROM应用于两个案例研究,即对小型DH网络的快速模拟以及用于DH系统的用户定义温度调节的控制器的设计,证明了其对现实系统的预测能力和效率。专门的成本分析进一步表明,与FOM相比,ROM可以显着降低(最多)高维管配置的数量级。这些发现将拟议的ROM作为一种实用DH系统的强大,有效的仿真工具,其预测能力要比现有的紧凑型模型更大。

This study concerns the development of a data-based compact model for the prediction of the fluid temperature evolution in district heating (DH) pipeline networks. This so-called "reduced-order model" (ROM) is obtained from reduction of the conservation law for energy for each pipe segment to a semi-analytical input-output relation between the pipe outlet temperature and the pipe inlet and ground temperatures that can be identified from training data. The ROM basically is valid for generic pipe configurations involving 3D unsteady heat transfer and 3D steady flow as long as heat-transfer mechanisms are linearly dependent on the temperature field. Moreover, the training data can be generated by physics-based computational "full-order" models (FOMs) yet also by (calibration) experiments or field measurements. Performance tests using computational training data for a single 1D pipe configuration demonstrate that the ROM (i) can be successfully identified and (ii) can accurately describe the response of the outlet temperature to arbitrary input profiles for inlet and ground temperatures. Application of the ROM to two case studies, i.e. fast simulation of a small DH network and design of a controller for user-defined temperature regulation of a DH system, demonstrate its predictive ability and efficiency also for realistic systems. Dedicated cost analyses further reveal that the ROM may significantly reduce the computational costs compared to FOMs by (up to) orders of magnitude for higher-dimensional pipe configurations. These findings advance the proposed ROM as a robust and efficient simulation tool for practical DH systems with a far greater predictive ability than existing compact models.

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