EP1500880A2

A transpiration cooling system and method

Abstract

System for transpiration coolong of an element in which a substantially non-porous laminate preform (40) is made porous by a pore forming member (34). Coolant (88) is then flown in an area (86) near the surface (84) between the element and the porous laminate. Part of the coolant is transported through the porous member.

EP1500880A2, drawing sheet 1
Sheet 1 of 5

Term

Term ended

Projected expiry passed 8 July 2024, 2.2 years ago.

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22 claims: 10 independent, 12 dependent

  1. 1
    A method of cooling an apparatus, having a surface (64, 84, 102) with a coolant and a porous member (10), the method comprising:providing a porous member including: selecting a substantially non-porous laminate preform (40);laminating said laminate preform to form a laminated structure with a pore forming member (34) disposed therein;removing said pore forming member (34) to form a selected pore (20);forming a coolant flow area (72, 86, 106) near at least a portion of said surface (64, 84, 102), including positioning the porous member a distance from said portion of said surface of said apparatus;flowing the coolant (88, 108) through said coolant flow area;and transporting a portion of said coolant through said porous member (10).
  2. 5
    The method of any of claims 1-4, wherein forming a coolant flow area (72, 86, 106) includes:selecting said distance to allow the coolant to flow through said coolant flow area;and    wherein said distance allows the coolant to absorb a portion of thermal energy from the apparatus and move it to an outside of said porous member.
  3. 7
    A transpirationally cooled apparatus, comprising:a member for providing a support;and a skin (10, 84, 102) surrounding said member including a first side and a second side;wherein said skin is spaced a distance from said member to define a coolant conduit (72, 86, 106);wherein said skin (10, 84, 102) defines a pore (20) extending between said first side and said second side;wherein a coolant disposed in said coolant conduit is able to move through said pores (20).
  4. 10
    The transpirationally cooled apparatus of any of claims 7-9, wherein said skin (10, 84, 102) is formed of a material including ceramic matrix composites.
  5. 11
    The transpirationally cooled apparatus of any of claims 7-10, wherein said skin (10, 84, 102) is formed of composite materials including a reinforcement fiber extending through said skin.
  6. 13
    The transpirationally cooled apparatus of any of claims 7-12, further comprising:a coolant pressurizing system, including a coolant source, and an apparatus for providing said coolant through said coolant conduit at a pressure greater than a pressure on at least one of said first side and said second side of said skin (10, 84, 102);wherein said coolant flows from said coolant conduit to a side of said skin (10, 84, 102) opposite said coolant conduit (72, 86, 106).
  7. 14
    The transpirationally cooled apparatus of any of claims 7-13, wherein said coolant removes thermal energy from said skin to maintain said skin at a selected temperature.
  8. 15
    A method of cooling a structure, comprising:forming a selected pore (20) in a structure;disposing said structure relative to a heat flux such that a portion of said structure is able to be heated;and moving a coolant through said pores (20) to maintain said structure at a selected temperature;wherein said selected temperature substantially maintains a selected property of said structure.
  9. 20
    The method of any of claims 15-19, wherein forming a selected pore (20) in a structure includes forming pores with selected properties including allowing a substantially one directional flow of the coolant.
  10. 22
    The method of any of claims 15-21, wherein forming a selected pore in a structure includes:providing a laminated preform (40) including a plurality of layers (12, 14, 16) positioned substantially adjacent one another;disposing a pore forming member (34) in a selected plurality of said plurality of layers;processing said laminated preform (40) to substantially fix said plurality of layers relative one another;and removing said pore forming members (34) to provide said selected pore.