Cornell University
Library
Cornell UniversityLibrary

eCommons

Help
Log In(current)
  1. Home
  2. College of Engineering
  3. Civil and Environmental Engineering
  4. Center for Transportation, Environment, and Community Health
  5. CTECH Final Reports
  6. Optimal Ventilation Control in Complex Urban Tunnels with Multi-Point Pollutant Discharge

Optimal Ventilation Control in Complex Urban Tunnels with Multi-Point Pollutant Discharge

File(s)
CU_YR1_GAO_FINAL_OPTIMAL VENTILATION.pdf (651.46 KB)
Permanent Link(s)
https://hdl.handle.net/1813/56385
Collections
CTECH Final Reports
Author
Tan, Zhen
Gao, H. Oliver
Abstract

We propose an optimal ventilation control model for complex urban vehicular tunnels with distributed pollutant discharge points. The control problem is formulated as a nonlinear integer program that aims to minimize ventilation energy cost while meeting multiple air quality control requirements inside the tunnel and at discharge points. Based on the steady-state solutions to tunnel aerodynamics equations, we propose a reduced form model for air velocities as explicit functions of ventilation decision variables and traffic density. A compact parameterization of this model helps to show that tunnel airflows can be estimated using standard linear regression techniques. The steady-state pollutant dispersion model is then incorporated for the derivation of optimal pollutant discharge control strategies. A case study of a new urban tunnel in Hangzhou, China demonstrates that the scheduling of fan operations based on the proposed optimization model can effectively achieve different air quality control objectives under varying traffic intensity.

Sponsorship
U.S. Department of Transportation 69A3551747119
Date Issued
2017-10-31
Keywords
air quality, ventilation control, urban tunnels, nonlinear programming
Rights
Attribution 4.0 International
Rights URI
https://creativecommons.org/licenses/by/4.0/
Type
technical report

Site Statistics | Help

About eCommons | Policies | Terms of use | Contact Us

copyright © 2002-2026 Cornell University Library | Privacy | Web Accessibility Assistance