Nonlinear optimal control policies for buoyancy-driven flows in the built environment
ORAL
Abstract
We consider optimal control of turbulent buoyancy-driven flows in the built environment, focusing on a model test case of displacement ventilation with a time-varying heat source. The flow is modeled using the unsteady Reynolds-averaged equations (URANS). To understand the stratification dynamics better, we derive a low-order partial-mixing ODE model extending the buoyancy-driven emptying filling box problem to the case of where both the heat source and the (controlled) inlet flow are time-varying. In the limit of a single step-change in the heat source strength, our model is consistent with that of Bower et. al (JFM 2008). Our model considers the dynamics of both `filling' and `intruding' added layers due to a time-varying source and inlet flow. A nonlinear direct-adjoint-looping optimal control formulation yields time-varying values of temperature and velocity of the inlet flow that lead to `optimal’ time-averaged temperature relative to appropriate objective functionals in a region of interest.
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Authors
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Saleh Nabi
Mitsubishi Electric Research Labs, Mitsubishi Electric Research Laboratories
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Piyush Grover
Mitsubishi Electric Research Laboratories, Mitsubishi Electric Research Labs
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C.P. Caulfield
BPI/DAMTP, U. of Cambridge, BPI/DAMTP, University of Cambridge, Cambridge University, BPI/DAMTP U. of Cambridge, BPI \& DAMTP, University of Cambridge