Research of near-wall thermodynamic state for indoor airflow over the vertical heating unit using TIV/PIV/RTD

[thumbnail of 2019_PIV-Jing Liu.pdf]
Preview
Text - Accepted Version
· Available under License Creative Commons Attribution Non-commercial No Derivatives.
· Please see our End User Agreement before downloading.
| Preview

Please see our End User Agreement.

It is advisable to refer to the publisher's version if you intend to cite from this work. See Guidance on citing.

Add to AnyAdd to TwitterAdd to FacebookAdd to LinkedinAdd to PinterestAdd to Email

Wu, Q., Luo, Z. orcid id iconORCID: https://orcid.org/0000-0002-2082-3958 and Liu, J. (2019) Research of near-wall thermodynamic state for indoor airflow over the vertical heating unit using TIV/PIV/RTD. Building and Environment, 165. 106406. ISSN 0360-1323 doi: 10.1016/j.buildenv.2019.106406

Abstract/Summary

Up to now, few studies focus on thermodynamic state including the velocity and temperature of the air near heating unit. The thermodynamic state of the airflow over an indoor heating unit has a significant influence on indoor thermal comfort and energy consumption. This study analyzed the thermal and dynamic state of the near-wall airflow over the heating unit. The thermal state was measured using resistance thermal detectors (RTDs). The near-wall airflow field were measured by particle image velocimetry (PIV) and TIV. The performance of TIV in natural and mixed convection were evaluated by comparing the TIV and PIV measurement results. Under natural convection, the velocity shows vertical variation and the spatial difference changes more pronounced with the increase of heating temperature. Under mixed convection, the near-wall temperature changes uniform and the velocity exhibits a decreasing trend with the increase of height. Through the spectrum analysis of the temperature, it is found that the velocity measured by TIV is close to the velocity near the boundary layer to some content. The positions of the near-surface velocity measured by TIV are not fixed in all cases and change with the change of the boundary layer. The findings in this study can provide a convenient and feasible flow field measurement method suitable for actual space scale. This method can predict the effect of heating terminal units on indoor airflow and thermal environment, so as to optimize the form and arrangement of the heating terminal units, and improve heating efficiency and occupants’ thermal comfort.

Altmetric Badge

Item Type Article
URI https://reading-clone.eprints-hosting.org/id/eprint/86134
Identification Number/DOI 10.1016/j.buildenv.2019.106406
Refereed No
Divisions Interdisciplinary Research Centres (IDRCs) > Walker Institute
Science > School of the Built Environment > Urban Living group
Science > School of the Built Environment > Energy and Environmental Engineering group
Publisher Elsevier
Download/View statistics View download statistics for this item

Downloads

Downloads per month over past year

University Staff: Request a correction | Centaur Editors: Update this record

Search Google Scholar