Sealed thrust bearing
10544827 ยท 2020-01-28
Assignee
Inventors
- Hiroshi YANO (Osaka, JP)
- Minoru Nakamura (Osaka, JP)
- Nozomi Yasufuku (Osaka, JP)
- Mitsuru Saito (Osaka, JP)
Cpc classification
F16C2240/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2223/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/767
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/761
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/7823
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/76
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A sealed thrust bearing includes an inner ring; an outer ring facing the inner ring in an axial direction; an elastic member that covers the inner ring so as to define; an inner elastic seal member that seals a space between an inner circumferential portion of the inner ring and an inner circumferential portion of the outer ring; and an outer elastic seal member that seals a space between an outer circumferential portion of the inner ring and an outer circumferential portion of the outer ring; and a lower member that is disposed below the outer ring for being assembled with the outer ring, and is provided with cation coating. The inner elastic seal member has a lip in pressure contact with an inner surface of one of a cylinder portion and a cylindrical portion of the lower member, and the outer elastic seal member has a lip in pressure contact with an upper surface of one of an annular ring portion and an annular portion of the lower member. The lip of the inner elastic seal member has an area including a portion in pressure contact with the lower member and is provided with an irregular portion having surface roughness (ten-point height of irregularities conforming to JIS B 0601-1994) from 20 mRz to 50 mRz.
Claims
1. A sealed thrust bearing to be used between an upper mount and a lower mount in a vehicle strut suspension device, the sealed thrust bearing comprising: an inner ring; an outer ring facing the inner ring in an axial direction; an elastic member that covers the inner ring so as to define: an inner elastic seal member that seals a space between an inner circumferential portion of the inner ring and an inner circumferential portion of the outer ring; and an outer elastic seal member that seals a space between an outer circumferential portion of the inner ring and an outer circumferential portion of the outer ring; and a spring seat that receives a spring, is disposed below the outer ring for being assembled with the outer ring, and is provided with cation coating, wherein the inner elastic seal member has a lip in pressure contact with an inner surface of one of a cylinder portion of the spring seat and a slant portion connected to the cylinder portion and has a protrusion extending radially outward, between the lip of the inner elastic seal member and a lower end of an inner cylinder portion of the outer ring, the protrusion extending radially outward from an inner periphery of the lower end of the inner cylinder portion, to be spaced apart from the cylinder portion of the spring seat, the outer elastic seal member has a lip in pressure contact with an upper surface of one of an annular ring portion of the spring seat and an annular portion of the spring seat, the lip of the inner elastic seal member has an area including a portion in pressure contact with the spring seat and is provided with an irregular portion having surface roughness (ten-point height of irregularities conforming to JIS B 0601-1994) from 20 mRz to 50 mRz, and even upon occurrence of adsorption phenomenon including adhesion of the lip to a pressure contact surface of the spring seat to which the cation coating is provided, due to internal pressure variation by temperature variation, air can be released through gaps at the irregular portion as time elapses, thereby avoiding the adsorption phenomenon.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(8) A preferred embodiment of the present invention will now be described in detail with reference to the accompanying drawings. The present invention is not limited to the mode of the accompanying drawings but includes all embodiments satisfying requirements recited in the claims.
(9) A sealed thrust bearing according to the following embodiment has a basic structure similar to that of the first embodiment of the prior application.
(10) <Structure of Sealed Thrust Bearing>
(11) As depicted in a longitudinal sectional perspective view of
(12) The sealed thrust bearing according to the present embodiment is structured to be applicable to vehicle strut suspension, and the outer ring 2 is integrally assembled to a spring seat 8 as a lower member disposed at a lower end of the outer ring 2 to receive a spring.
(13) The spring seat 8 includes a radially inner cylinder portion 8A, a flange portion 8B extending radially outward from an upper end of the cylinder portion 8A, a flange portion 8C stepped down from the flange portion 8B and extending outward, and a slant portion 8D connecting the flange portions 8B and 8C.
(14) The inner ring 1, the outer ring 2 and the spring seat 8 are produced by pressing a steel plate, and the spring seat 8 is provided with cation coating.
(15) In order to provide the cation coating on the spring seat 8, cation electrodeposition paint is electrodeposited to a surface of the spring seat 8 that is immersed in a vessel containing the paint. The surface of the spring seat 8 is then provided with a highly smooth and excellently antirust coating film.
(16) The balls 3, 3, . . . are made of steel and the retainer 4 is made of synthetic resin.
(17) Each of the inner elastic seal member 5 and the outer elastic seal member 6 is provided by covering the inner ring 1 as a core with an elastic body such as synthetic rubber through vulcanized adhesion to be integrated with the inner ring 1, and has a lip structure at a distal end thereof.
(18) Examples of a rubber material for the elastic body include a rubber raw material having excellent oil resistance, containing any one selected from nitrile rubber (NBR), hydrogenated nitrile rubber (HNBR), acrylic rubber (ACM), ethylene-acrylic rubber (AEM), fluororubber (FKM or FPM), silicone rubber (VQM), and the like, or containing two or more selected and blended appropriately.
(19) In consideration of kneading processability, vulcanized moldability, and adhesiveness with the core inner ring 1, of the rubber material, the rubber material is also preferred to be blended with rubber of a different type, such as liquid NBR, ethylene-propylene rubber (EPDM), natural rubber (NR), isoprene rubber (IR), styrene-butadiene rubber (SBR), butadiene rubber (BR), or the like.
(20) In the longitudinal sectional side view of
(21) The outer ring 2 is provided with, at a radially inner portion thereof, an inner cylinder portion 2B extending downward. The inner cylinder portion 2B is press fitted to an inner diameter portion of the cylinder portion 8A of the spring seat 8. There is a horizontal portion connecting from a lower portion of the curved portion 2A of the outer ring 2 to an upper end of the inner cylinder portion 2B and having a lower surface in contact with an upper surface of the flange portion 8B of the spring seat 8.
(22) <Structure and Function of Inner Elastic Seal Member>
(23) As depicted in the longitudinal sectional side view of
(24) The lip 5B of the inner elastic seal member 5 is in pressure contact with an inner surface of the cylinder portion 8A of the spring seat 8, and prevents entry of foreign matter such as muddy water from outside. Dependent on the shape of the spring seat 8, the lip 5B can alternatively be in pressure contact with an inner surface of a cylindrical portion such as an inner surface of a slant portion connected to the cylinder portion of the spring seat 8.
(25) The inner cylindrical base 5A has an outer circumferential surface provided with a protrusion 7 extending radially outward from a lower end inner circumference of the inner cylinder portion 2B of the outer ring 2. As depicted in a longitudinal sectional side view of
(26) <Structure and Function of Outer Elastic Seal Member>
(27) As depicted in the longitudinal sectional side view of
(28) The dust lip 6C of the outer elastic seal member 6 is in pressure contact with an upper surface of an annular portion (the slant portion 8D) of the spring seat 8, and prevents entry of foreign matter such as muddy water from outside. Dependent on the shape of the spring seat 8, the dust lip 6C can alternatively be in pressure contact with an annular ring portion (the flange portion) of the spring seat 8.
(29) The main lip 6B of the outer elastic seal member 6 prevents leakage of grease filled in the bearing, and prevents separation between the inner ring 1 and the outer ring 2.
(30) In the configuration described above, when the inner ring 1 and the outer ring 2 shift to be axially separated from each other, the protrusion 7 provided at the inner cylindrical base 5A of the inner elastic seal member 5 of the inner ring 1 and extending radially outward comes into contact with the lower end of the inner cylinder portion 2B of the outer ring 2, thereby significantly increasing a separation load.
(31) In addition, the upper surface of the protrusion 7 is distant downward from the lower end of the inner cylinder portion 2B of the outer ring 2 and the outer peripheral surface of the protrusion 7 is distant radially inward from the spring seat 8 upon completion of assembly of the inner ring 1, the outer ring 2, and the spring seat 8. The protrusion 7 thus does not come into contact with any other component while the bearing is rotating and, therefore, the baring is not increased in rotary torque.
(32) Furthermore, the outer peripheral surface of the protrusion 7 extending radially outward is distant radially inward from the spring seat 8, and the protrusion 7 thus serves also as a labyrinth seal with adjustment of a gap therebetween.
(33) Moreover, the inner elastic seal member 5 includes the lip 5B whereas the outer elastic seal member 6 includes the dust lip 6C to seal so as to prevent the outer ring 2 from contacting with outside air. The outer ring 2 thus does not need to be processed to have an antirust property, which leads to reduction in production cost.
(34) <Irregular Portion Provided at Lip of Inner Elastic Seal Member>
(35) In addition to
(36) The irregular portion is provided through satin treatment or the like to have surface roughness (ten-point height of irregularities conforming to JIS B 0601-1994) from 20 mRz to 50 mRz.
(37) The fine irregular portion in the area A of the lip 5B is formed easily by transferring irregularities provided on a vulcanized mold tool through blast machining like shot blasting, electrical discharge machining, or the like, thereby preventing increase in production cost.
(38) <Check Test on Effect of Irregular Portion Provided at Lip of Inner Elastic Seal Member>
(39) There were prepared inner elastic seal members 5 each including the lip 5B provided with the irregular portion having different surface roughness (see examples and comparative example to be described below), and the inner elastic seal members 5 were subjected to a stick-slip test and a sealing property test.
EXAMPLES
(40) Examples 1 to 6 correspond to the irregular portions having surface roughness (ten-point height of irregularities conforming to JIS B 0601-1994: Rz) of 22 m, 25 m, 30 m, 35 m, 41 m, and 49 m, respectively.
Comparative Examples
(41) Comparative examples 1 to 3 correspond to the irregular portions having surface roughness (ten-point height of irregularities conforming to JIS B 0601-1994: Rz) of 5 m, 17 m, and 57 m, respectively.
(42) <Stick-Slip Test>
(43) (Test Method)
(44) The sealed thrust bearing depicted in
(45) The bearing was heated at 90 C. for 30 minutes, was then left at normal temperature for 30 minutes, and was tested to be determined as : stick-slip behavior not observed if vibration acceleration has a time-base waveform indicated in
(46) (Test Results)
(47) Table 1 indicates the test results. The comparative example 1 (5 mRz) and the comparative example 2 (17 mRz) were determined as x: stick-slip behavior observed, whereas the comparative example 3 (57 mRz) was determined as : stick-slip behavior not observed.
(48) In contrast, the examples 1 to 6 (22 mRz to 49 mRz) were all determined as : stick-slip behavior not observed.
(49) <Sealing Property Test>
(50) (Test Method)
(51) The sealed thrust bearing depicted in
(52) The inner elastic seal member 5 having no entry of muddy water was determined as : entry of muddy water not observed, and the inner elastic seal member 5 having entry of muddy water was determined as x: entry of muddy water observed.
(53) (Test Results)
(54) Table 1 indicates the test results. The comparative example 3 (57 mRz) was determined as x: entry of muddy water observed, whereas the comparative example 1 (5 mRz) and the comparative example 2 (17 mRz) were determined as : entry of muddy water not observed.
(55) In contrast, the examples 1 to 6 (22 mRz to 49 mRz) were all determined as : entry of muddy water not observed.
(56) TABLE-US-00001 TABLE 1 Examples/Comparative examples Comparative Comparative Comparative Example 1 Example 2 Example 3 Example 4 Example 5 Example 6 Example 1 Example 2 Example 3 Surface roughness Rz (m) of 22 25 30 35 41 49 5 17 57 irregular portion provided at lip of inner elastic seal member Stick-slip test (Note 1) X X Sealing property test (Note 2) X (Note 1) : Stick-slip behavior not observed, X: Stick-slip behavior observed (Note 2) : Entry of muddy water not observed, X: Entry of muddy water observed
(57) If surface roughness of the irregular portion is less than 20 mRz as in the comparative examples 1 and 2, oil film retention capacity is likely to decrease to cause poor lubrication, which is likely to cause the stick-slip phenomenon. When surface roughness is less than 20 mRz and is particularly small, the adsorption phenomenon is likely to occur. In order to avoid such defects, the irregular portion according to the present invention has surface roughness not less than 20 mRz.
(58) When the irregular portion has surface roughness more than 50 mRz as in the comparative example 3, the sealing property is likely to decrease to cause entry of foreign matter such as muddy water to the bearing and leakage of grease filled in the bearing. In order to avoid such defects, the irregular portion according to the present invention has surface roughness not more than 50 mRz.
(59) The present invention provides the inner elastic seal member 5 including the lip 5B having the area A provided with the irregular portion of the surface roughness described above. Even when the adsorption phenomenon occurs to cause the lip 5B to adhere to the pressure contact surface P1 of the spring seat 8 provided with cation coating due to internal pressure variation by temperature variation, air can gradually be released through gaps at the irregular portion as time elapses, thereby avoiding the adsorption phenomenon.
(60) Furthermore, the irregular portion retains grease so as to inhibit the stick-slip phenomenon including unusual noise and damage to the lip 5B due to poor lubrication, as indicated in the test results.
(61) The above embodiment describes the sealed thrust bearing configured as a sealed thrust ball bearing. The sealed thrust bearing can alternatively be configured as a slide bearing.