Brake disc
09791008 ยท 2017-10-17
Inventors
Cpc classification
F16D65/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2250/0076
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2065/1328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2200/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2065/132
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2200/0008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D65/78
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D65/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A brake disk includes a first abrasive disk, a second abrasive disk and a heat dissipation disk co-axially sandwiched between the first abrasive disk and the second abrasive disk. A middle disk is co-axially mounted onto the first abrasive disk and the second abrasive disk, wherein the middle disk is adapted to be mounted to a hub. A specific heat capacity coefficient of the heat dissipation disk is greater than that of the first abrasive disk and the second abrasive disk for absorbing thermal energy from the first abrasive disk and the second abrasive disk and lowering the temperature of the first abrasive disk and the second abrasive disk during braking.
Claims
1. A brake disk comprising: a first abrasive disk; a second abrasive disk; a heat dissipation disk co-axially and securely sandwiched between said first abrasive disk and said second abrasive disk; and a middle disk co-axially mounted onto said first abrasive disk and said second abrasive disk, wherein said middle disk is adapted to be mounted to a hub, said heat dissipation disk, said first abrasive disk and said second abrasive disk being of a metal material, wherein a specific heat capacity coefficient of said heat dissipation disk is greater than a specific heat capacity of said first abrasive disk and said second abrasive disk for absorbing thermal energy from said first abrasive disk and said second abrasive disk and lowering a temperature of said first abrasive disk and said second abrasive disk during braking; wherein said heat dissipation disk has multiple through holes defined therein, the multiple through holes being annularly arranged, wherein said first abrasive disk has multiple first raised portions formed thereon and a first annular rib peripherally formed thereon, wherein each first raised portion is received in a corresponding one of the multiple through holes, wherein said second abrasive disk has multiple second raised portions formed thereon and a second annular rib peripherally formed thereon, wherein each second raised portion is received in a corresponding one of the multiple through holes and secured to a corresponding one of the multiple first raised portions, wherein the first annular rib and the second annular rib are secured to each other and surround said heat dissipation disk, wherein said heat dissipation disk includes an opening centrally defined therein, a first opening and a second opening are respectively and centrally defined in said first abrasive disk and said second abrasive disk, wherein the first opening and the second opening respectively have a diameter greater than a diameter of the opening, said first abrasive disk has multiple first frames inwardly extending from a periphery of the first opening and the second abrasive disk has multiple second frames inwardly extending from a periphery of the second opening, each first frame has a free end abutting a free end of a corresponding one the second frames and the abutted free ends of the first frame and the second end are mounted to a periphery of the middle disk, each first frame has a recess defined in the free end thereof such that a space is defined between the first frame and the second frame for receiving the periphery of said middle disk.
2. The brake disk of claim 1, wherein the first annular rib and the second annular rib abut each other and respectively and peripherally surround said heat dissipation disk.
3. The brake disk of claim 1, wherein the second annular rib periphery surrounds the first annular rib.
4. The brake disk of claim 1, wherein each first raised portion has a first through hole defined therein and each second raised portion has a second through hole defined therein, each first through hole communicating with a corresponding one of the second through holes to define an airway.
5. The brake disk of claim 4, wherein said heat dissipation disk has multiple heat dissipation structures formed thereon, and the heat dissipation structures including a slot defined in said heat dissipation disk and a bridge having two opposite ends respectively connected to two opposite ends of a corresponding one of the slots.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(15) Referring to the drawings and initially to
(16) The heat dissipation disk 10 includes multiple through holes 11 defined therein and the multiple through holes 11 are annularly arranged. The heat dissipation disk 10 includes multiple heat dissipation structures 12 formed thereon and the heat dissipation structures 12 are annularly arranged in a diameter smaller than that of the annularly arranged through holes 11. Each heat dissipation structure 12 includes a slot 121 defined in the heat dissipation disk 10 and a bridge 122 having two opposite ends respectively connected to two opposite ends of a corresponding one of the slots 121. An opening 13 is centrally defined in the heat dissipation disk 10 for mounting the middle 40 to the first abrasive disk 20 and the second abrasive disk 30.
(17) The first abrasive disk 20 has multiple first raised portions 21 formed thereon, wherein each first raised portion 21 is received in a corresponding one of the multiple through holes 11. The second abrasive disk 30 has multiple second raised portions 31 formed thereon, wherein each second raised portion 31 is received in a corresponding one of the multiple through holes 11 and secured to a corresponding one of the multiple first raised portions 21 by spot welding.
(18) With reference to
(19) Further with reference to
(20) With reference to
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(24) As described above, the heat dissipation disk 10 is sandwiched between the first abrasive disk 20 and the second abrasive disk 30. Based on cost considerations, the heat dissipation disk 10 is made of aluminum or aluminum alloy, and the first abrasive disk 20 and the second abrasive disk 30 are made of iron for providing the function of high-abrasive. A specific heat capacity coefficient of the heat dissipation disk 10 is greater than that of the first abrasive disk 20 and the second abrasive disk 30 for absorbing thermal energy from the first abrasive disk 20 and the second abrasive disk 30 and lowering the temperature of the first abrasive disk 20 and the second abrasive disk 30 during braking. In addition, the heat dissipation structures 12, including slots 121 and bridges 122, is provided to promote the heat dissipation effect of the heat dissipation disk 10. Furthermore, the first abrasive disk 20 and the second abrasive disk 30 are secured to each other by spot welding such that the connection between the first abrasive disk 20 and the second abrasive disk 30 is strengthened. The heat dissipation disk is made of aluminum or aluminum alloy for providing a functions of lightweight and heat dissipation effect.
(25) Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.