Published 2011 | Version v1
Miscellaneous

Coupled large-eddy simulation of thermal mixing in a T-junction

  • 1. EnBW Kernkraft GmbH, Kernkraftwerk Neckarwestheim, Neckarwestheim (Germany)
  • 2. Univ. of Stuttgart, Inst. for Nuclear Technology and Energy Systems (IKE) (Germany)

Description

Analyzing thermal fatigue due to thermal mixing in T-junctions is part of the safety assessment of nuclear power plants. Results of two large-eddy simulations of mixing flow in a T-junction with coupled and adiabatic boundary condition are presented and compared. The temperature difference is set to 100 K, which leads to strong stratification of the flow. The main and the branch pipe intersect horizontally in this simulation. The flow is characterized by steady wavy pattern of stratification and temperature distribution. The coupled solution approach shows highly reduced temperature fluctuations in the near wall region due to thermal inertia of the wall. A conjugate heat transfer approach is necessary in order to simulate unsteady heat transfer accurately for large inlet temperature differences. (author)

Part of:
The 14th International Topical Meeting on Nuclear Reactor Thermalhydraulics (NURETH-14)

Additional details

Publishing Information

Publisher
Canadian Nuclear Society
Imprint Place
Toronto, Ontario (Canada)
ISBN
978-1-926773-05-6
Imprint Title
The 14th International Topical Meeting on Nuclear Reactor Thermalhydraulics (NURETH-14)
Imprint Pagination
766 Megabytes
Journal Page Range
[11 p.]

Conference

Title
14. International Topical Meeting on Nuclear Reactor Thermalhydraulics
Acronym
NURETH-14
Dates
25-30 Sep 2011
Place
Toronto, Ontario (Canada)

INIS

Country of Publication
Canada
Country of Input or Organization
Canada
INIS RN
47071308
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
HEAT TRANSFER; LAMINAR FLOW; LARGE-EDDY SIMULATION; NUCLEAR POWER PLANTS; PIPES; SAFETY ANALYSIS; THERMAL FATIGUE
Descriptors DEC
COMPUTERIZED SIMULATION; ENERGY TRANSFER; FATIGUE; FLUID FLOW; MECHANICAL PROPERTIES; NUCLEAR FACILITIES; POWER PLANTS; SIMULATION; THERMAL POWER PLANTS; TUBES

Optional Information

Notes
Paper NURETH14-286, 12 refs., 3 tabs., 10 figs.