Published April 2015 | Version v1
Journal article

Particle deposition model for particulate flows at high temperatures in gas turbine components

Description

Highlights: • Particle deposition model based on collision losses and sticking probability. • Model predictions show good agreement with available experimental data. • At lower temperatures, collision losses dictate deposition. • At higher temperatures, particle softening effects dictate deposition. • In gas turbines, both mechanisms important due to wide range of temperatures. - Abstract: This study proposes an improved physical model to predict sand deposition at high temperature in gas turbine components. This model differs from its predecessor (Sreedharan and Tafti, 2011) by improving the sticking probability by accounting for the energy losses during particle-wall collision based on our previous work (Singh and Tafti, 2013). This model predicts the probability of sticking based on the critical viscosity approach and collision losses during a particle–wall collision. The current model is novel in the sense that it predicts the sticking probability based on the impact velocity along with the particle temperature. To test the model, deposition from a sand particle laden jet impacting on a flat coupon geometry is computed and the results obtained from the numerical model are compared with experiments (Delimont et al., 2014) conducted at Virginia Tech, on a similar geometry and flow conditions, for jet temperatures of 950 °C, 1000 °C and 1050 °C. Large Eddy Simulations (LES) are used to model the flow field and heat transfer, and sand particles are modeled using a discrete Lagrangian framework. Results quantify the impingement and deposition for 20–40 μm sand particles. The stagnation region of the target coupon is found to experience most of the impingement and deposition. For 950 °C jet temperature, around 5% of the particle impacting the coupon deposit while the deposition for 1000 °C and 1050 °C is 17% and 28%, respectively. In general, the sticking efficiencies calculated from the model show good agreement with the experiments for the temperature range considered

Availability note (English)

Available from http://dx.doi.org/10.1016/j.ijheatfluidflow.2014.11.008

Additional details

Identifiers

DOI
10.1016/j.ijheatfluidflow.2014.11.008;
PII
S0142-727X(14)00170-2;

Publishing Information

Journal Title
International Journal of Heat and Fluid Flow
Journal Volume
52
Journal Page Range
p. 72-83
ISSN
0142-727X
CODEN
IJHFD2

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
47029709
Subject category
S42: ENGINEERING;
Resource subtype / Literary indicator
Numerical Data
Descriptors DEI
COLLISIONS; DEPOSITION; ENERGY LOSSES; EXPERIMENTAL DATA; GAS TURBINES; HEAT TRANSFER; IMPINGEMENT; LAGRANGIAN FUNCTION; LARGE-EDDY SIMULATION; PARTICLES; SAND; TEMPERATURE RANGE 0400-1000 K; VELOCITY; VISCOSITY; WALLS
Descriptors DEC
COMPUTERIZED SIMULATION; DATA; ENERGY TRANSFER; EQUIPMENT; FUNCTIONS; INFORMATION; LOSSES; MACHINERY; NUMERICAL DATA; SIMULATION; TEMPERATURE RANGE; TURBINES; TURBOMACHINERY

Optional Information

Copyright
Copyright (c) 2014 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.