Device for measuring the thickness of automotive disc brake rotors
10493973 ยท 2019-12-03
Inventors
Cpc classification
F16D65/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D66/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/221
PERFORMING OPERATIONS; TRANSPORTING
G01B3/205
PHYSICS
International classification
F16D66/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T17/22
PERFORMING OPERATIONS; TRANSPORTING
G01B5/00
PHYSICS
Abstract
A vernier calliper for measuring the thickness of a disc brake rotor fitted to a vehicle, the vernier calliper including: (i) first and second members which are mounted for sliding movement relative to one another along an axis; (ii) first and second abutments located on the first and second members respectively and being adapted, in use, to engage first and second sides of a disc brake rotor, the first abutment including an abutment surface; (iii) retaining means for retaining the calliper in an operative position in which: (iv) the first abutment surface engages the first side of the disc and is parallel thereof; (v) the second abutment engages the second side of the disc; and (vi) said axis is orthogonal to said first and second sides of the disc.
Claims
1. A vernier calliper for measuring the thickness of a disc brake rotor fitted to a vehicle, the vernier calliper including: (i) first and second members which are mounted for sliding movement relative to one another along an axis; (ii) first and second abutments located on the first and second members respectively and being adapted, in use, to engage first and second sides of a disc brake rotor, the first abutment including an abutment surface; and (iii) retaining means for retaining the calliper in an operative position in which: (iv) the abutment surface engages the first side of the disc and is parallel thereof; (v) the second abutment engages the second side of the disc; (vi) said axis is orthogonal to said first and second sides of the disc; and (vii) wherein the retaining means includes a permanent magnet which holds said abutment surface against the first side of the disc by magnetic attraction, when the disc is made from or includes magnetic material.
2. A vernier calliper as claimed in claim 1, wherein said abutment surface is a surface of the permanent magnet.
3. A vernier calliper as claimed in claim 1, wherein the permanent magnet is a rare earth permanent magnet.
4. A vernier calliper as claimed in claim 3, wherein the rare earth magnet provides, in use, a pull force of 1 to 4 kg.
5. A vernier calliper as claimed in claim 4, wherein the pull force is 2.6 kg.
6. A vernier calliper as claimed in claim 1, wherein the permanent magnet comprises a cylindrical body having a longitudinal axis and one of its circular end faces comprises the abutment surface.
7. A vernier calliper as claimed in claim 6, wherein the cylindrical body is about 12 mm in diameter.
8. A vernier calliper as claimed in claim 6, wherein the cylindrical body is about 3 mm long.
9. A vernier calliper as claimed in claim 6, wherein the second member includes a shaft having a shaft axis which is concentric with said axis and wherein the second abutment which includes a pointed element mounted at a distal end of the shaft and is offset relative to said shaft axis.
10. A vernier calliper as claimed in claim 9, wherein the pointed element is generally aligned with the longitudinal axis of the cylindrical body.
11. A vernier calliper as claimed in claim 9, wherein the pointed element is offset from the shaft axis by a distance of 12 mm to 20 mm.
12. A vernier calliper as claimed in claim 9, wherein the second member includes a transverse arm at its distal end and the pointed element is located adjacent to a remote end of said transverse arm, the pointed end projecting in a proximal direction relative to said transverse arm by a predetermined distance.
13. A vernier calliper as claimed in claim 12 wherein said predetermined distance is 5 mm to 10 mm.
14. A vernier calliper as claimed in claim 9, further including a digital display mounted in a display housing which is fixed relative to said shaft, and distance sensing means for sensing linear displacement of said first and second members, thereby enabling measurement of the distance between the first and second sides of the disc to be displayed on said digital display.
15. A vernier calliper as claimed in claim 14, further including biasing means for biasing the first abutment surface and the second abutment towards one another.
16. A vernier calliper as claimed in claim 15, wherein the biasing means includes a tension spring which acts between the display housing and said shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be further described with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
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(24) The first arm 4 is preferably injection moulded from plastics material such as nylon or polycarbonate. The material could be reinforced with glass or carbon fibres. In order to improve or impart additional rigidity to the first arm 4, it includes a reinforcing arm 32 which is located in a second elongate groove 34 which is parallel to the groove 20. The reinforcing arm 32 includes a lateral arm 36 located in a lateral groove 38 formed in the distal flange 24. The reinforcing arm 32 is retained in the grooves 34 and 38 by interference fit and/or by the use of an adhesive. Alternatively, it would be possible to make the first arm 4 from metallic material such as forged stainless steel or aluminium and in that case the reinforcing arm 32 would not be required.
(25) In the preferred form of the invention, the second arm 6 and the reinforcing arm 32 are made from stainless steel rod of square section and the sides are 4 mm wide. In the preferred form of the invention, the second arm 6 is about 212 mm long although this can be varied. The shapes of the second arm 6 and reinforcing arm 32 are shown in more detail in
(26) In the illustrated arrangement, the slider body 8 is formed with a front panel 40 and back plate 42, the front panel and back plate being connected together by means of four screws 44 as shown in
(27) The slider body 8 is connected to the second arm 6 by means of mounting screws 49 which pass through bores in the back plate 42 and are received within threaded bores 51 formed near the proximal end of the second arm 6, as shown in
(28) The front panel 40 includes an LED display 54, includes an ON/OFF button 56, zero button 58 and unit button 60 for changing the display to read from metric or imperial units. A circuit board 62 is located within the slider body 8 between the front panel 40 and back plate 42. The circuit board 62 includes components for producing signals for the LED display 54. The device includes a printed or etched array 64 of conductive bars which is mounted in a recess 66 formed in the first arm 4. The circuit board 62 includes other etched or printed conductive bars (not shown), which are capacitively coupled to those in the array 64 and the circuitry is arranged to produce positional signals when the slider body 8 is moved relative to the array 64. The technique for producing signals in this way and displaying measurements is very well known and does not need to be described. The circuitry could, for instance, be the same or similar to that in known callipers made by Shenzhen Shenliang Precision Measuring Co., Ltd., of China.
(29) In the assembled calliper 2 the slider body 8 is resiliently engaged against the stop body 10 by means of the spring 12. If the zero button 58 is pressed in this position and the slider body is then moved so that an object (not shown) can be placed between the gap 70, between the magnet 28 and engagement tip 18, the LED display will indicate the length of the gap 70 or the thickness or length of the object.
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(31) The preferred manner in which the vernier calliper 2 is applied to the rotor is as follows. First, the user moves the slider body 8 in a distal direction away from the stop body 10 so as to form a gap 70 which is large enough to enable the engagement tip 18 to be moved over the lip of the rotor 72 as shown in
(32) It will also be appreciated from
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(34) Some known digital callipers have the capacity to output data wirelessly or through an outlet port to a lap top or other receiving devices and it will be understood by a person skilled in the art that these capabilities can be incorporated into the calliper of the invention.
(35) It will be appreciated that the calliper of the invention is a very simple yet effective way of determining wear in disc brake rotors.
(36) TABLE-US-00001 LIST OF PARTS vernier calliper 2 first arm 4 second arm 6 slider body 8 stop body 10 tension spring 12 spring mounting post 13 elongate shaft 14 spring mounting post 15 lateral arm 16 engagement tip 18 elongate groove 20 axis 21 join line 22 centreline 23 distal flange 24 recess 26 magnet 28 opening 30 reinforcing arm 32 second elongate groove 34 lateral arm 36 lateral groove 38 front panel 40 back plate 42 screws 44 upper and lower cam formations 46, 47 third groove 48 mounting screws 49 distal end 50 threaded bores 51 web 52 LED display 54 ON/OFF button 56 zero button 58 unit button 60 circuit board 62 array 64 recess 66 gap 70 disc brake rotor 72 dust cover 74 lip 76 broken line 78 outer worn face 80 inner worn face 82 calliper 100