IP Library Granted Patent US 9,396,296
Granted Patent B2
US 9,396,296 · App. 13/592,374 · Granted Jul 19, 2016

System and method for computing thermal boundary conditions from an unstructured CFD simulation on structural components

Inventors: Vikram Singh Mangat (Bangalore, IN); Jose-Angel Hernanz Manrique (Madrid, ES); Madhusudana Reddy (Bangalore, IN); Punit Tiwari (Bangalore, IN); Shreesh Mishra (Bangalore, IN); Sunil Kumar (Bangalore, IN); Sandhya Jha (Bangalore, IN)
Assignee: AIRBUS ENGINEERING CENTRE INDIA
G06F17/5018G06F17/5009G06F17/5095G06F2217/16G06F2217/80
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Quick Facts
Patent No.
US 9,396,296
App. No.
13/592,374
Granted
Jul 19, 2016
Kind
B2
Abstract

A system and method for computing thermal boundary conditions from an unstructured computational fluid dynamics (CFD) simulation for a thermal simulation of a structural component are disclosed. The thermal boundary conditions include convective heat transfer coefficient (HTC) and reference temperature (T ref ). In one embodiment, prism cells are formed to capture boundary layer substantially next to a wall of the structural component. Further, tetrahedral cells are formed to capture a diffused temperature layer substantially next to the formed last prism cell and in a direction normal to the wall. Furthermore, temperature of each of the prism cells is computed in the direction normal to the wall until a substantially first tetrahedral cell. In addition, the computed temperature of the prism cell that is substantially adjacent to the first tetrahedral cell is declared as the T ref . Also, the HTC is computed using the obtained T ref .

Claims (92)

1. A computer implemented method to compute thermal boundary conditions from an unstructured computational fluid dynamics (CFD) simulation for a thermal simulation of a structural component, comprising:

forming prism cells to capture a boundary layer next to a wall of the structural component;

forming tetrahedral cells to capture a diffused temperature layer next to the formed last prism cell and in a direction normal to the wall;

computing temperature of each of the prism cells in the direction normal to the wall until a first tetrahedral cell;

declaring the computed temperature of one of the prism cells as reference temperature (T ref ) by:

computing temperature gradients between the prism cells;

determining whether there is a reverse in temperature gradient in any of the computed temperature gradients; and

if so, declaring the temperature of another prism cell that is previous and adjacent to a prism cell associated with the reverse in the temperature gradient as the T ref ;

computing convective heat transfer coefficient (HTC) using the T ref , wherein the thermal boundary conditions comprise at least one of the T ref and convective HTC; and

performing the thermal simulation of the structural component using the thermal boundary conditions.

2. The method of claim 1 , further comprising:

if not, declaring the computed temperature of the formed last prism cell that is adjacent to the first tetrahedral cell as the T ref .

3. The method of claim 2 , wherein the convective HTC is computed using equation:

H

T

C

=

q

A

(

Tw

-

Tref

)

wherein, A is area (m^2), T w is wall temperature (K or C), q is heat flux and T ref is computed temperature (K or C) of the formed last prism cell that is adjacent to the first tetrahedral cell or temperature of the other prism cell that is previous and adjacent to the prism cell associated with the reverse in the temperature gradient.

4. A system to compute thermal boundary conditions from an unstructured computational fluid dynamics (CFD) simulation for a thermal simulation of a structural component, comprising:

a processor; and

memory coupled to the processor, wherein the memory includes a simulation module having instructions to:

form prism cells to capture a boundary layer next to a wall of the structural component;

form tetrahedral cells to capture a diffused temperature layer next to the formed last prism cell and in a direction normal to the wall;

compute temperature of each of the prism cells in the direction normal to the wall until a first tetrahedral cell;

declare the computed temperature of one of the prism cells as reference temperature (T ref ) by:

computing temperature gradients between the prism cells;

determining whether there is a reverse in temperature gradient in any of the computed temperature gradients; and

if so, declaring the temperature of another prism cell that is previous and adjacent to a prism cell associated with the reverse in the temperature gradient as the T ref ;

compute convective heat transfer coefficient (HTC) using the T ref , wherein the thermal boundary conditions comprise at least one of the T ref and convective HTC; and

perform the thermal simulation of the structural component using the thermal boundary conditions.

5. The system of claim 4 , wherein the simulation module further having instructions to

if not, declare the computed temperature of the formed last prism cell that is adjacent to the first tetrahedral cell as the T rerf .

6. The system of claim 5 , wherein the convective HTC is computed using equation:

H

T

C

=

q

A

(

Tw

-

Tref

)

wherein, A is area (m^2), T w is wall temperature (K Or C), q is heat flux and T ref is computed temperature (K or C) of the formed last prism cell that is adjacent to the first tetrahedral cell of temperature of the other prism cell that is previous and adjacent to the prism cell associated with the reverse in the temperature gradient.

7. A non-transitory computer-readable storage medium to compute thermal boundary conditions from an unstructured computational fluid dynamics (CFD) simulation for a thermal simulation of a structural component having instructions that, when executed by a computing device, cause the computing device to:

form prism cells to capture a boundary layer next to a wall of the structural component;

form tetrahedral cells to capture a diffused temperature layer next to the formed last prism cell and in a direction normal to the wall;

compute temperature of each of the prism cells in the direction normal to the wall until a first tetrahedral cell;

declare the computed temperature of one of the prism cells as reference temperature (T ref ) by:

computing temperature gradients between the prism cells;

determining whether there is a reverse in temperature gradient in any of the computed temperature gradients; and

if so, declaring the temperature of another prism cell that is previous and adjacent to a prism cell associated with the reverse in the temperature gradient as the T ref ;

compute convective heat transfer coefficient (HTC) using the T ref wherein the thermal boundary conditions comprise at least one of the T ref and convective HTC; and

perform the thermal simulation of the structural component using the thermal boundary conditions.

8. The non-transitory computer-readable storage medium of claim 7 , further comprising:

if not, declaring the computed temperature of the formed last prism cell that is adjacent to the first tetrahedral cell as the T ref .

9. The non-transitory computer-readable storage medium of claim 8 , wherein the convective HTC is computed using equation:

H

T

C

=

q

A

(

Tw

-

Tref

)

wherein, A is area (m^2), T w is wall temperature (K or C), q is heat flux and T ref is computed temperature (K or C) of the formed last prism cell that is adjacent to the first tetrahedral cell or temperature of the other prism cell that is previous and adjacent to the prism cell associated with the reverse in the temperature gradient.

Assignments (2)
CHANGE OF NAME Recorded Jun 20, 2016
From: AIRBUS ENGINEERING CENTRE INDIA
To: AIRBUS GROUP INDIA PRIVATE LIMITED
Reel/Frame 038952/0165 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2012
From: MANGAT, VIKRAM SINGH; HERNANZ-MANRIQUE, JOSE-ANGEL; REDDY, MADHUSUDANA; TIWARI, PUNIT; MISHRA, SHREESH; KUMAR, SUNIL; JHA, SANDHYA
To: AIRBUS ENGINEERING CENTRE INDIA
Reel/Frame 028833/0349 →
Priority Claims (1)
IN 3058/CHE/2011 · Sep 5, 2011 · national
Continuity (1)
Related Publication 20130060541A1 · Mar 7, 2013