WO2005124183A1 - Aircraft brake wheel heat shield - Google Patents

Aircraft brake wheel heat shield Download PDF

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Publication number
WO2005124183A1
WO2005124183A1 PCT/US2005/004380 US2005004380W WO2005124183A1 WO 2005124183 A1 WO2005124183 A1 WO 2005124183A1 US 2005004380 W US2005004380 W US 2005004380W WO 2005124183 A1 WO2005124183 A1 WO 2005124183A1
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WO
WIPO (PCT)
Prior art keywords
heat shield
assembly
brake
aircraft
wheel
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2005/004380
Other languages
French (fr)
Inventor
Samuel N. Rea
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Honeywell International Inc
Original Assignee
Honeywell International Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Honeywell International Inc filed Critical Honeywell International Inc
Publication of WO2005124183A1 publication Critical patent/WO2005124183A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D65/00Parts or details
    • F16D65/78Features relating to cooling
    • F16D65/84Features relating to cooling for disc brakes
    • F16D65/847Features relating to cooling for disc brakes with open cooling system, e.g. cooled by air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D65/00Parts or details
    • F16D65/78Features relating to cooling
    • F16D2065/785Heat insulation or reflection

Definitions

  • the present invention relates to a heat shield for an aircraft, and in particular to a heat shield for an aircraft wheel and brake assembly.
  • Aircraft brakes operate on the basis of converting mechanical energy into thermal energy to stop an aircraft. Such braking operations generally result in the generation of significant heat within a brake disk stack, and the transfer of a significant portion of this heat to other components of the wheel and brake assembly.
  • Fig. 1 illustrates a conventional landing gear 1 that includes a strut 2 and a bogie beam 3.
  • An axle 4 is provided on ends of the bogie beam 3.
  • the axles 4 are each adapted to receive a wheel assembly 5 and a brake assembly 6.
  • the brake assembly 6 includes a brake stack (not shown in Fig. 1 ) that has a plurality of alternating interleaved stator and rotor disks, the stator disks being affixed to the axle and the rotor disks being affixed to the wheel assembly.
  • Brake actuation devices such as pistons and return mechanisms, achieve a forceful inter-engagement of the rotor and stator disks in order to slow and stop the rotation of the wheel assembly.
  • the brake stack generates a considerable amount of heat energy that must be dissipated.
  • the successful development of carbon discs or carbon composite discs for aircraft brakes has significantly elevated the operating temperature of the wheel and brake assembly in contrast to steel discs.
  • modern aircraft brakes can attain a brake stack temperature of 1000-2000° F after landing and taxiing into a gate.
  • it is important to limit the heat transfer to the wheel assembly and the axle, in particular because excessive temperatures can damage the wheel, which loses strength at around 400° F.
  • heat shields are often used to thermally isolate the brake stack from the wheel assembly, bearings, pistons, axle, and other adjacent structures.
  • these heat shields are used to prevent convection and radiation of heat energy to the wheel assembly that is generated by the brake stack.
  • convection is defined as the transfer of heat energy through a medium by the circulation of currents from one region to another and that radiation is defined as the emission and propagation of heat energy in the form of rays or waves, which requires no medium for such transfer.
  • radiation is defined as the emission and propagation of heat energy in the form of rays or waves, which requires no medium for such transfer.
  • FIG. 2 illustrates a conventional heat shield 7 that is provided between a brake stack 8 and the wheel assembly 5 in order to thermally isolate the wheel assembly 5 from the thermal energy (heat) that is generated by the brake stack 8 during a braking operation.
  • These conventional heat shields 7 have a variety of configurations, however, they are commonly configured from two layers of sheet metal that have an insulating filler sandwiched between them. [0007] These heat shields 7, however, produce an undesirable side effect in that the heat shields 7 retard heat loss from the brake stack 8. Thus, the brake stack 8 cools more slowly, thereby remaining at elevated temperatures.
  • U.S. Patent No. 5, 107,968 discloses a honeycomb open cell structure that limits the radiant and convection heat energy transfer from the aircraft brakes. These honeycomb heat shield structures are formed by stacking a plurality of stamped metal sheets onto one another, with each metal layer having their stamped sections being placed onto the next metal layer in an inverted fashion, thereby forming the open cell structure.
  • the present invention is directed to a perforated heat shield that is implemented to be positioned between an aircraft brake assembly and wheel assembly in order to effectively protect the wheel assembly and adjacent components from excessive thermal energy generated by an operation of the brake assembly and to promote the cooling of the brake assembly by allowing a partial amount of the thermal energy to radiate to the wheel assembly.
  • the present invention is directed to an aircraft landing gear that includes a wheel assembly having a wheel and a wheel tubewell, a brake assembly including a brake stack that has alternating stators and rotors.
  • the brake assembly is attached to the wheel assembly and an axle of the aircraft landing gear.
  • the aircraft landing gear also includes a heat shield that is provided between the wheel assembly and the brake assembly, and has a plurality of apertures formed across a surface of the heat shield.
  • the present invention is directed to a method of cooling an aircraft brake assembly.
  • the method includes the steps of providing a heat shield with a plurality of apertures therein, whereby the apertures are formed to be staggered across the heat shield, and providing the heat shield between the aircraft brake assembly and an aircraft wheel assembly.
  • the aircraft brake assembly includes alternating stators and rotors and the aircraft wheel assembly includes a wheel tubewell and a wheel.
  • the apertures of the heat shield enable direct thermal radiation to pass from the aircraft brake assembly to the aircraft wheel assembly to thereby promote cooling of the aircraft brake assembly on the basis of an amount of radiated thermal radiation.
  • Fig. 1 is an illustration of an aircraft landing gear
  • Fig. 2 is an illustration of a conventional heat shield provided between a wheel assembly and a brake stack
  • Fig. 3 is a plan view of a heat shield according to a preferred embodiment of the present invention
  • Fig. 4 is a partial section view of an aircraft landing gear having the heat shield of the present invention provided therein
  • Fig. 5 is a graph depicting a comparison of a heat flux from a brake assembly to a wheel assembly of a conventional heat shield and the heat shield according to a preferred embodiment of the present invention.
  • a heat shield 20 according to a preferred embodiment of the present invention is shown in plan view.
  • the heat shield 20 is provided with a plurality of apertures 22 to thus perforate the heat shield 20.
  • the heat shield 20 is formed from a single layer of a high temperature resistant composition, for example, metal, ceramics, etc.
  • the perforation pattern shown in Fig. 3 has a 60°-staggered pattern with 1 /8" apertures 22 on 0.25" centers, thus yielding a 33 percent open area. This percentage of perforated area also correlates to a percentage of a weight reduction in the heat shield 20, which is an extremely desirable attribute for an aircraft.
  • Fig. 4 is a partial section view of an aircraft landing gear 24 having the heat shield 20 of the present invention provided therein.
  • the aircraft landing gear 24 includes an axle 26 that is adapted to receive a wheel assembly 28, which includes a wheel 30 and a wheel tubewell 32.
  • a brake assembly 34 includes a brake stack 36 that has alternating interleaved rotors 36a and stators 36b.
  • the rotors 32a are attached to the wheel assembly 28 and the stators 36b are attached to the axle 26 via a torque tube 40.
  • the brake assembly 34 further includes a brake piston 38, which, during a braking operation causes the rotors 36a and the stators 36b of the brake stack 36 to engage with one another. This process converts mechanical rotating energy of the wheel assembly 28 into thermal energy, e.g. heat, which, as stated above, can cause the brake stack 36 to reach temperatures of 1000-2000° F, and in extreme braking situations the temperature of the brake stack 36 can exceed 2500° F.
  • heat shields 20a-b are provided to be adaptively mounted within the aircraft landing gear 24, specifically, between the wheel assembly 28 and the brake assembly 34.
  • Wheel heat shield 20a is provided between the wheel assembly 28 and the brake stack 36.
  • Axle heat shield 20b is provided between the axle 26 and the brake stack 36.
  • the wheel heat shield 20a and the axle heat shield 20b are each formed so as to be cylindrical and can each be formed in sections that are hinged together in a known fashion. These hinged sections enable uncomplicated replacement of a damaged section or can be easily removed for maintenance purposes.
  • the apertures 22 of the wheel heat shield 20a allow radiated thermal energy that is generated by the brake stack 36 during a braking operation to be partially absorbed by the wheel assembly 28. It should be recognized that the axle heat shield 20b can be provided with apertures. [0025] The apertures 22 not only allow direct thermal radiation to the wheel assembly 28, but also enhance convection cooling in the limited space provided between the wheel assembly 28 and the brake assembly 34 by allowing air to flow through the apertures 22 of the perforated heat shield 20 in contrast to the conventional non-perforated heat shields, which decrease the effective amount of air flow between the wheel assembly 28 and the brake assembly 34.
  • the present invention realizes that modern large aircraft wheel assemblies weigh on the order of 200 lbs and as such, this wheel mass provides a considerable heat sink.
  • the wheel assembly 28 promotes the cooling of the brake stack 36 via the apertures 22 of the wheel heat shield 20a.
  • the apertures 22 can have any size or pattern, and as such, it is possible to tailor the amount of thermal energy that is radiated to the wheel assembly 28 from the brake stack 36 for specific applications. In other words, the amount of heat that the wheel assembly 28 absorbs can be controlled.
  • the perforated heat shield 20 can also be mated completely or partially with a non-perforated heat shield in order to further tailor the amount of thermal energy that is radiated and/or absorbed by the wheel assembly 28.
  • Fig. 5 is a graph depicting a comparison of a heat flux from the brake assembly 34 to the wheel assembly 28 of a conventional heat shield (non-perforated) and the heat shield 20 according to a preferred embodiment of the present invention.
  • the perforated heat shield 20 which has an open area of approximately 33 percent due to the configuration of the apertures 22, results in a 20-40 percent increase in thermal radiation energy flux over the non-perforated conventional heat shield, thus promoting cooling of the brake stack 36.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Braking Arrangements (AREA)

Abstract

A perforated heat shield (20a, 20b) is formed of a single layer and is implemented to be positioned between an aircraft brake assembly (34) and wheel assembly (28) in order to effectively protect the wheel assembly (28) and adjacent components from excessive thermal energy generated by an operation of the brake assembly (34) and to promote the cooling of the brake assembly (34) by allowing a partial amount of the thermal energy to radiate to the wheel assembly (28) through apertures (22) provided in the heat shield (20a, 20b).

Description

AIRCRAFT BRAKE WHEEL HEAT SHIELD
BACKGROUND OF THE INVENTION
Field of the Invention
[0001 ] The present invention relates to a heat shield for an aircraft, and in particular to a heat shield for an aircraft wheel and brake assembly.
Background of the Invention
[0002] Aircraft brakes operate on the basis of converting mechanical energy into thermal energy to stop an aircraft. Such braking operations generally result in the generation of significant heat within a brake disk stack, and the transfer of a significant portion of this heat to other components of the wheel and brake assembly.
[0003] Fig. 1 illustrates a conventional landing gear 1 that includes a strut 2 and a bogie beam 3. An axle 4 is provided on ends of the bogie beam 3. The axles 4 are each adapted to receive a wheel assembly 5 and a brake assembly 6. The brake assembly 6 includes a brake stack (not shown in Fig. 1 ) that has a plurality of alternating interleaved stator and rotor disks, the stator disks being affixed to the axle and the rotor disks being affixed to the wheel assembly. Brake actuation devices, such as pistons and return mechanisms, achieve a forceful inter-engagement of the rotor and stator disks in order to slow and stop the rotation of the wheel assembly. As such, the brake stack generates a considerable amount of heat energy that must be dissipated. [0004] The successful development of carbon discs or carbon composite discs for aircraft brakes has significantly elevated the operating temperature of the wheel and brake assembly in contrast to steel discs. For example, modern aircraft brakes can attain a brake stack temperature of 1000-2000° F after landing and taxiing into a gate. Thus, it is important to limit the heat transfer to the wheel assembly and the axle, in particular because excessive temperatures can damage the wheel, which loses strength at around 400° F. [0005] Because of the high temperatures induced in the brake stack, heat shields are often used to thermally isolate the brake stack from the wheel assembly, bearings, pistons, axle, and other adjacent structures. In other words, these heat shields are used to prevent convection and radiation of heat energy to the wheel assembly that is generated by the brake stack. One skilled in the art recognizes that convection is defined as the transfer of heat energy through a medium by the circulation of currents from one region to another and that radiation is defined as the emission and propagation of heat energy in the form of rays or waves, which requires no medium for such transfer. In other words in order to radiate energy from one surface to another they must be able to see on another, e.g., there must be a direct line of sight. [0006] Fig. 2 illustrates a conventional heat shield 7 that is provided between a brake stack 8 and the wheel assembly 5 in order to thermally isolate the wheel assembly 5 from the thermal energy (heat) that is generated by the brake stack 8 during a braking operation. These conventional heat shields 7 have a variety of configurations, however, they are commonly configured from two layers of sheet metal that have an insulating filler sandwiched between them. [0007] These heat shields 7, however, produce an undesirable side effect in that the heat shields 7 retard heat loss from the brake stack 8. Thus, the brake stack 8 cools more slowly, thereby remaining at elevated temperatures. Such a complete blocking of the heat energy transfer is not desirable, as this leads to heat concentration in the brake stack 8, which can lead to premature failure under heavy-duty brake applications, for example, as in an abortive take-off. Furthermore, because the brake stack 8 remains at an elevated temperature, routine brake maintenance is hampered and thus departures of the aircraft from an airport gate are delayed. [0008] U.S. Patent No. 5, 107,968 discloses a honeycomb open cell structure that limits the radiant and convection heat energy transfer from the aircraft brakes. These honeycomb heat shield structures are formed by stacking a plurality of stamped metal sheets onto one another, with each metal layer having their stamped sections being placed onto the next metal layer in an inverted fashion, thereby forming the open cell structure. By this configuration, a partial amount of radiant heat energy is transferred from the aircraft brakes to an aircraft wheel because there is a direct line of sight between the aircraft wheel and the aircraft brakes through the open cell structure of the honeycomb shield. This honeycombed shield structure, however, is thick, cumbersome, fragile, and expensive to manufacture.
[0009] Thus, there remains a need for heat shields that are configured to increase the cooling rate of aircraft brakes, are economical, durable, and are adapted to fit within the limited space provided between the brake assembly and the wheel assembly. SUMMARY OF THE INVENTION [0010] In one aspect, the present invention is directed to a perforated heat shield that is implemented to be positioned between an aircraft brake assembly and wheel assembly in order to effectively protect the wheel assembly and adjacent components from excessive thermal energy generated by an operation of the brake assembly and to promote the cooling of the brake assembly by allowing a partial amount of the thermal energy to radiate to the wheel assembly. [001 1] In another aspect, the present invention is directed to an aircraft landing gear that includes a wheel assembly having a wheel and a wheel tubewell, a brake assembly including a brake stack that has alternating stators and rotors. The brake assembly is attached to the wheel assembly and an axle of the aircraft landing gear. The aircraft landing gear also includes a heat shield that is provided between the wheel assembly and the brake assembly, and has a plurality of apertures formed across a surface of the heat shield. [0012] In a further aspect, the present invention is directed to a method of cooling an aircraft brake assembly. The method includes the steps of providing a heat shield with a plurality of apertures therein, whereby the apertures are formed to be staggered across the heat shield, and providing the heat shield between the aircraft brake assembly and an aircraft wheel assembly. The aircraft brake assembly includes alternating stators and rotors and the aircraft wheel assembly includes a wheel tubewell and a wheel. The apertures of the heat shield enable direct thermal radiation to pass from the aircraft brake assembly to the aircraft wheel assembly to thereby promote cooling of the aircraft brake assembly on the basis of an amount of radiated thermal radiation. BRIEF DESCRIPTION OF THE DRAWINGS [0013] The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein: [0014] Fig. 1 is an illustration of an aircraft landing gear; [0015] Fig. 2 is an illustration of a conventional heat shield provided between a wheel assembly and a brake stack; [0016] Fig. 3 is a plan view of a heat shield according to a preferred embodiment of the present invention; [0017] Fig. 4 is a partial section view of an aircraft landing gear having the heat shield of the present invention provided therein; [0018] Fig. 5 is a graph depicting a comparison of a heat flux from a brake assembly to a wheel assembly of a conventional heat shield and the heat shield according to a preferred embodiment of the present invention.
DETAILED DESCRIPTION [0019] Referring now to the drawings and more particularly to Fig. 3, a heat shield 20 according to a preferred embodiment of the present invention is shown in plan view. The heat shield 20 is provided with a plurality of apertures 22 to thus perforate the heat shield 20. The heat shield 20 is formed from a single layer of a high temperature resistant composition, for example, metal, ceramics, etc. [0020] The perforation pattern shown in Fig. 3 has a 60°-staggered pattern with 1 /8" apertures 22 on 0.25" centers, thus yielding a 33 percent open area. This percentage of perforated area also correlates to a percentage of a weight reduction in the heat shield 20, which is an extremely desirable attribute for an aircraft. One skilled in the art should appreciate that the heat shield 20 can have any number of hole sizes and patterns. For example, the apertures 22 can be circular, diamond shaped, rectangular, slotted, etc., a key parameter being the percent of perforated area with respect to the non-perforated area. The apertures 22 can be dimpled but, preferably, extend completely through the heat shield 20. [0021] Fig. 4 is a partial section view of an aircraft landing gear 24 having the heat shield 20 of the present invention provided therein. The aircraft landing gear 24 includes an axle 26 that is adapted to receive a wheel assembly 28, which includes a wheel 30 and a wheel tubewell 32. A brake assembly 34 includes a brake stack 36 that has alternating interleaved rotors 36a and stators 36b. The rotors 32a are attached to the wheel assembly 28 and the stators 36b are attached to the axle 26 via a torque tube 40. The brake assembly 34 further includes a brake piston 38, which, during a braking operation causes the rotors 36a and the stators 36b of the brake stack 36 to engage with one another. This process converts mechanical rotating energy of the wheel assembly 28 into thermal energy, e.g. heat, which, as stated above, can cause the brake stack 36 to reach temperatures of 1000-2000° F, and in extreme braking situations the temperature of the brake stack 36 can exceed 2500° F. [0022] Thus, in order to protect the wheel assembly 28, the axle 26, components of the brake assembly 34, and other adjacent components (not shown), from the generated thermal energy, heat shields 20a-b are provided to be adaptively mounted within the aircraft landing gear 24, specifically, between the wheel assembly 28 and the brake assembly 34. [0023] Wheel heat shield 20a is provided between the wheel assembly 28 and the brake stack 36. Axle heat shield 20b is provided between the axle 26 and the brake stack 36. The wheel heat shield 20a and the axle heat shield 20b are each formed so as to be cylindrical and can each be formed in sections that are hinged together in a known fashion. These hinged sections enable uncomplicated replacement of a damaged section or can be easily removed for maintenance purposes. [0024] The apertures 22 of the wheel heat shield 20a allow radiated thermal energy that is generated by the brake stack 36 during a braking operation to be partially absorbed by the wheel assembly 28. It should be recognized that the axle heat shield 20b can be provided with apertures. [0025] The apertures 22 not only allow direct thermal radiation to the wheel assembly 28, but also enhance convection cooling in the limited space provided between the wheel assembly 28 and the brake assembly 34 by allowing air to flow through the apertures 22 of the perforated heat shield 20 in contrast to the conventional non-perforated heat shields, which decrease the effective amount of air flow between the wheel assembly 28 and the brake assembly 34. [0026] The present invention realizes that modern large aircraft wheel assemblies weigh on the order of 200 lbs and as such, this wheel mass provides a considerable heat sink. Thus, the wheel assembly 28 promotes the cooling of the brake stack 36 via the apertures 22 of the wheel heat shield 20a. As stated above, the apertures 22 can have any size or pattern, and as such, it is possible to tailor the amount of thermal energy that is radiated to the wheel assembly 28 from the brake stack 36 for specific applications. In other words, the amount of heat that the wheel assembly 28 absorbs can be controlled. The perforated heat shield 20 can also be mated completely or partially with a non-perforated heat shield in order to further tailor the amount of thermal energy that is radiated and/or absorbed by the wheel assembly 28.
[0027] Fig. 5 is a graph depicting a comparison of a heat flux from the brake assembly 34 to the wheel assembly 28 of a conventional heat shield (non-perforated) and the heat shield 20 according to a preferred embodiment of the present invention. As can be seen from Fig. 5, the perforated heat shield 20, which has an open area of approximately 33 percent due to the configuration of the apertures 22, results in a 20-40 percent increase in thermal radiation energy flux over the non-perforated conventional heat shield, thus promoting cooling of the brake stack 36.

Claims

What is claimed is: 1. A heat shield (20) for an aircraft, the heat shield (20) being formed of a single layer and being provided with a plurality of apertures (22) for allowing direct thermal radiation from a brake stack (36) to a wheel
assembly (28). 2. The heat shield according to claim 1 , wherein the heat shield (20) is formed of metal and is formed to be cylindrically. 3. The heat shield according to claim 1 , wherein the plurality of apertures (22) are circularly shaped in a staggered pattern and extend through the heat shield (20). 4. The heat shield according to claim 1 , wherein the heat shield (20) is positioned between the brake stack (36) and the wheel assembly (28). 5. The heat shield according to claim 1, wherein the heat shield (20) has approximately a 33 percent open area. 6. The heat shield according to claim 1 , wherein the direct thermal radiation from the brake stack (38) to the wheel assembly (28) though the apertures (22) of the heat shield (20) promote cooling of the brake stack (36) during a braking operation. 7. An aircraft landing gear (24) comprising: a wheel assembly (28) having a wheel (30) and a wheel tubewell (32); a brake assembly (34) including a brake stack (36) that has alternating stators (32b) and rotors (32a), the brake assembly (34) being attached to the wheel assembly (28) and an axle (26) of the aircraft landing gear (24); and a heat shield (20) being provided between the wheel assembly (28) and the brake assembly (34), the heat shield (20) having a plurality of apertures (22) formed across a surface thereof. 8. The aircraft landing gear according to claim 7, wherein the plurality of apertures (22) of the heat shield (20) allow thermal radiation to pass from the brake assembly (34) to the wheel assembly (28) in order to promote cooling of the brake assembly (34), wherein an amount of the thermal radiation that is passed from the brake assembly (34) to the wheel assembly (28) is determined on the basis of a percentage of open area formed by the apertures (22), and wherein the apertures (22) promote convection cooling between the wheel assembly (28) and the brake assembly (34). 9. The aircraft landing gear according to claim 7, wherein the heat shield (20) is formed to be cylindrical and of a single layer. 10. A method of cooling an aircraft brake assembly (34), the method comprising: providing a heat shield (20) with a plurality of apertures (22) therein, the apertures (22) being formed so as to be staggered across the heat shield (20); and providing the heat shield (20) between the aircraft brake assembly (34) and an aircraft wheel assembly (28), the aircraft brake assembly (34) including alternating stators (36b) and rotors (36a), the aircraft wheel assembly including a wheel tubewell (32) and a wheel (30, wherein the apertures (22) of the heat shield (20) enable direct thermal radiation to pass from the aircraft brake assembly (34) to the aircraft wheel assembly (28) to thereby promote cooling of the aircraft brake assembly (34) on the basis of an amount of radiated thermal radiation.
PCT/US2005/004380 2004-02-13 2005-02-11 Aircraft brake wheel heat shield Ceased WO2005124183A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US10/778,480 2004-02-13
US10/778,480 US7255208B2 (en) 2004-02-13 2004-02-13 Aircraft brake wheel heat shield

Publications (1)

Publication Number Publication Date
WO2005124183A1 true WO2005124183A1 (en) 2005-12-29

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PCT/US2005/004380 Ceased WO2005124183A1 (en) 2004-02-13 2005-02-11 Aircraft brake wheel heat shield

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Families Citing this family (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102007042369A1 (en) * 2007-09-06 2009-03-12 Schaeffler Kg Wheel bearing of an aircraft landing gear
US9718447B2 (en) * 2009-02-02 2017-08-01 Goodrich Corporation Thermal management composite heat shield
US8523108B2 (en) * 2011-03-24 2013-09-03 Goodrich Corporation Heat shield installation for aircraft wheel to improve convective cooling of aircraft brake
JP2015110985A (en) * 2013-10-31 2015-06-18 株式会社アドヴィックス Brake caliper and brake device including the same
FR3035937B1 (en) 2015-05-06 2018-10-05 Commissariat A L'energie Atomique Et Aux Energies Alternatives BRAKE SYSTEM
FR3054200B1 (en) * 2016-07-19 2021-08-13 Safran Landing Systems PERFORATED AIRCRAFT BRAKE WHEEL THERMAL SCREEN
FR3054524B1 (en) * 2016-07-27 2022-08-26 Safran Landing Systems HEAT SCREEN FOR BRAKED WHEEL OF OBSTACLED AIRCRAFT
US10473171B2 (en) * 2017-05-15 2019-11-12 Goodrich Corporation Extended torque tube
US11292586B2 (en) * 2018-05-14 2022-04-05 Goodrich Corporation Carbon nanotube based heat shield
US10766609B2 (en) * 2018-06-28 2020-09-08 Goodrich Corporation Torque bar retention for wheel assemblies
US11518501B2 (en) 2019-01-28 2022-12-06 Goodrich Corporation System and method for reducing oxidation of friction disks
US11125294B2 (en) 2019-03-22 2021-09-21 Goodrich Corporation Systems and methods for reducing oxidation of friction disks
CN110203380B (en) * 2019-07-08 2024-02-23 西安航空制动科技有限公司 An integral heat shield for aircraft braking devices
FR3109765B1 (en) * 2020-05-04 2022-06-17 Safran Landing Systems Heat shield for braking device of an aircraft wheel
US20250319962A1 (en) * 2024-04-10 2025-10-16 Honeywell International Inc. Wheel heat shields and techniques for forming wheel heat shields

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5107968A (en) * 1991-02-12 1992-04-28 The B. F. Goodrich Company Heatshield for aircraft brake
EP0555822A1 (en) * 1992-02-13 1993-08-18 The B.F. Goodrich Company Heatshield installation for aircraft brake
US6006869A (en) * 1992-03-31 1999-12-28 Rancourt; Claude Ventilated disc brake
EP1304240A1 (en) * 2001-10-10 2003-04-23 Goodrich Corporation Heat shield assembly for aircraft wheel and brake assembly

Family Cites Families (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4147241A (en) 1977-10-27 1979-04-03 The Bendix Corporation Structurally strong heat insulator for high transient temperatures
FR2452032A1 (en) 1979-03-23 1980-10-17 Ferodo Sa PROTECTOR FOR A CROWN OR DRUM BRAKE, AND BRAKE COMPRISING SUCH A PROTECTOR
FR2480883A1 (en) 1980-04-18 1981-10-23 Ferodo Sa SCREEN BRAKE FOR PROTECTION AGAINST THE PROPAGATION OF HEAT, IN PARTICULAR FOR MOTOR VEHICLE
US4363355A (en) * 1980-05-09 1982-12-14 Prucyk Martin D Heat exchanger
US4569600A (en) * 1983-03-24 1986-02-11 Allied Corporation Brake temperature sensor
US4889959A (en) * 1988-07-15 1989-12-26 Hewlett-Packard Company RFI shielding gasket
US4863000A (en) * 1988-10-28 1989-09-05 Eaton Corporation Brake or clutch disc assembly
US5236249A (en) 1991-08-07 1993-08-17 Allied-Signal Inc. Wheel assembly hinged heat shield
US5199536A (en) 1992-02-13 1993-04-06 The B. F. Goodrich Company Heatshield installation for aircraft brake
US5671827A (en) * 1995-11-07 1997-09-30 Demetriou; Ikaros Air disc brake
US5851056A (en) 1996-06-03 1998-12-22 The B. F. Goodrich Company Aircraft brake heat shield having easily removed heat shield sections
US5944147A (en) * 1996-06-28 1999-08-31 Alliedsignal Inc. Integrated aircraft wheel, brake and axle
US6419056B1 (en) * 1998-10-29 2002-07-16 Aircraft Braking Systems Corp. Apparatus for aircraft brake thermal management
US6302244B1 (en) * 2000-04-07 2001-10-16 The Boeing Company Brake squeal attenuator apparatus and method
ITVI20020145A1 (en) * 2002-07-02 2004-01-02 Comefri Spa ANTI-NOISE AND ANTI-VORTE DIVIDER
US6698385B1 (en) * 2003-01-29 2004-03-02 Giant Factories Inc. Combustion chamber shield for hot water heaters

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5107968A (en) * 1991-02-12 1992-04-28 The B. F. Goodrich Company Heatshield for aircraft brake
EP0555822A1 (en) * 1992-02-13 1993-08-18 The B.F. Goodrich Company Heatshield installation for aircraft brake
US6006869A (en) * 1992-03-31 1999-12-28 Rancourt; Claude Ventilated disc brake
EP1304240A1 (en) * 2001-10-10 2003-04-23 Goodrich Corporation Heat shield assembly for aircraft wheel and brake assembly

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US20050224634A1 (en) 2005-10-13

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