Improving Truck Underhood Thermal Management Through CFD

2002-01-1027

03/04/2002

Event
SAE 2002 World Congress & Exhibition
Authors Abstract
Content
The purpose of this paper is to describe a methodology that significantly enhances the process of truck underhood thermal management by utilizing state-of-the-art computer simulation of airflow and heat transfer. The traditional approach has been to package underhood components in the vehicle design phase based on past experience, build a prototype, test it, analyze the test results and determine any necessary design changes. The design changes are implemented and the cycle is repeated until an acceptable design is achieved. The alternative methodology, described in this paper, uses a complete 3-D CAD model of all pertinent underhood components of a heavy-duty truck with a general purpose Computational Fluid Dynamics (CFD) code to simulate underhood airflow. The heat exchangers were modeled using an approach that divides the heat exchanger core into cell zones and computes heat rejection cumulatively from zone to zone. As the cooling fan performance has a significant influence on airflow across the heat exchangers, the detailed geometry of the blades were considered in the fan model which was introduced in the overall computational domain using a multiple reference frame approach. These models were coupled together to provide an integrated methodology to assess the underhood airflow and heat transfer characteristics that can be applied both proactively - early in the design process - and reactively to analyze problems that occur with production vehicles. Results from the underhood simulation were compared to test data compiled during the development phase of a truck and are reported in this paper.
Meta TagsDetails
DOI
https://doi.org/10.4271/2002-01-1027
Pages
11
Citation
Nobel, T., and Jain, S., "Improving Truck Underhood Thermal Management Through CFD," SAE Technical Paper 2002-01-1027, 2002, https://doi.org/10.4271/2002-01-1027.
Additional Details
Publisher
Published
Mar 4, 2002
Product Code
2002-01-1027
Content Type
Technical Paper
Language
English