论文标题
物理网络流的单调性属性和应用于强大的最佳分配
Monotonicity Properties of Physical Network Flows and Application to Robust Optimal Allocation
论文作者
论文摘要
我们得出了表征网络上商品的一般流量的单调性特性的条件,在该网络上,该流量通过边缘上的电势和流动动力学描述,并且潜在的连续性和kirchhoff-neumann质量平衡要求在节点上。可以在任何网络节点上注入或撤回运输的商品,其整个网络的移动由节点执行器控制。对于网络上的一类耗散的非线性抛物线偏微分方程(PDE)系统,我们在稳态流中得出了单调性能的条件,以及相对于时间变化的边界条件参数,状态下的单调排序的传播。在后一种情况下,在顶点的耦合条件下的初始条件以及时间变化的参数提供了初始边界值问题(IBVP)。我们证明,当适当订购时变耦合定律的初始条件和参数时,将保留解决方案对IBVP的订购属性。然后,我们证明,当未保留单调排序时,解决方案的第一个交叉发生在网络节点处。我们考虑了对网络上不确定的动态流的强大优化和最佳控制公式的含义,并讨论了在物理网络上的能量耗散对亚音速压缩流体流动的应用。对于使用与真实工作系统相对应的数据,为气管管道测试网络和案例研究展示了主要结果和监视策略。我们建议将此总结果应用于天然气传输网络的控制和监测。
We derive conditions for monotonicity properties that characterize general flows of a commodity over a network, where the flow is described by potential and flow dynamics on the edges, as well as potential continuity and Kirchhoff-Neumann mass balance requirements at nodes. The transported commodity may be injected or withdrawn at any of the network nodes, and its movement throughout the network is controlled by nodal actuators. For a class of dissipative nonlinear parabolic partial differential equation (PDE) systems on networks, we derive conditions for monotonicity properties in steady-state flow, as well as for propagation of monotone ordering of states with respect to time-varying boundary condition parameters. In the latter case, initial conditions, as well as time-varying parameters in the coupling conditions at vertices, provide an initial boundary value problem (IBVP). We prove that ordering properties of the solution to the IBVP are preserved when the initial conditions and the parameters of the time-varying coupling law are appropriately ordered. Then, we prove that when monotone ordering is not preserved, the first crossing of solutions occurs at a network node. We consider the implications for robust optimization and optimal control formulations and real-time monitoring of uncertain dynamic flows on networks, and discuss application to subsonic compressible fluid flow with energy dissipation on physical networks. The main result and monitoring policy are demonstrated for gas pipeline test networks and a case study using data corresponding to a real working system. We propose applications of this general result to the control and monitoring of natural gas transmission networks.