Cab mount
10988180 · 2021-04-27
Assignee
Inventors
Cpc classification
B62D24/02
PERFORMING OPERATIONS; TRANSPORTING
F16F3/0873
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/3735
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2236/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B62D24/02
PERFORMING OPERATIONS; TRANSPORTING
F16F15/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cab mount for attaching a frame to a body is provided to prevent a forcible movement of the body generated under the influence of vertical vibration of the frame. A first cab mount includes: a collar extending vertically; and an upper mount rubber and a lower mount rubber disposed to face in the upper-lower direction on an outer periphery of the collar. The collar is attached to a body of a vehicle by being inserted into an attachment hole of a ladder frame of the vehicle while a peripheral part of the attachment hole is positioned between the upper mount rubber and the lower mount rubber. The upper mount rubber is spaced apart from the ladder frame in the upper-lower direction by a first predetermined distance while the lower mount rubber is spaced apart from the ladder frame in the upper-lower direction by a second predetermined distance.
Claims
1. A cab mount comprising: a collar extending vertically; and an upper-side rubber elastic body and a lower-side rubber elastic body disposed so as to face each other in an upper-lower direction on an outer periphery of the collar, the collar being configured to be attached to a body of a vehicle by being inserted into an attachment hole formed in a frame of the vehicle while a peripheral part of the attachment hole is positioned between the upper-side rubber elastic body and the lower-side rubber elastic body, wherein the upper-side rubber elastic body is spaced apart from the frame in the upper-lower direction by a first predetermined distance while the lower-side rubber elastic body is spaced apart from the frame in the upper-lower direction by a second predetermined distance, wherein a middle-side rubber elastic body, which is a separate body from the upper-side rubber elastic body and the lower-side rubber elastic body, is attached to an outer peripheral surface of the collar between the upper-side rubber elastic body and the lower-side rubber elastic body so as to surround the outer peripheral surface, and a peripheral surface of the attachment hole makes contact with the middle-side rubber elastic body in a vertically slidable manner, and wherein a protrusion extending outward in a diameter direction is provided on the middle-side rubber elastic body so as to surround the middle-side rubber elastic body, and the peripheral surface of the attachment hole makes contact with the protrusion in a vertically slidable manner.
2. A cab mount comprising: a collar extending vertically; and an upper-side rubber elastic body and a lower-side rubber elastic body disposed so as to face each other in an upper-lower direction on an outer periphery of the collar, the collar being configured to be attached to a body of a vehicle by being inserted into an attachment hole formed in a frame of the vehicle while a peripheral part of the attachment hole is positioned between the upper-side rubber elastic body and the lower-side rubber elastic body, wherein a lower end part of the upper-side rubber elastic body, which faces the peripheral part of the frame, is formed such that a horizontal cross section area of the lower end part gradually decreases downward, and an upper end part of the lower-side rubber elastic body, which faces the peripheral part of the frame, is formed such that a horizontal cross section area of the upper end part gradually decreases upward, wherein a middle-side rubber elastic body, which is a separate body from the upper-side rubber elastic body and the lower-side rubber elastic body, is attached to an outer peripheral surface of the collar between the upper-side rubber elastic body and the lower-side rubber elastic body so as to surround the outer peripheral surface, and a peripheral surface of the attachment hole makes contact with the middle-side rubber elastic body in a vertically slidable manner, and wherein a protrusion extending outward in a diameter direction is provided on the middle-side rubber elastic body so as to surround the middle-side rubber elastic body, and the peripheral surface of the attachment hole makes contact with the protrusion in a vertically slidable manner.
3. The cab mount according to claim 2, wherein a lower end of the upper-side rubber elastic body is spaced apart from the frame in the upper-lower direction while an upper end of the lower-side rubber elastic body is spaced apart from the frame in the upper-lower direction.
4. The cab mount according to claim 1, wherein the cab mount is attached to the body in a vicinity of a suspension provided on the frame.
5. The cab mount according to claim 2, wherein the cab mount is attached to the body in a vicinity of a suspension provided on the frame.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(15) Hereinafter, embodiments of the present invention will be described with reference to the drawings.
First Embodiment
(16) —Overall Configuration—
(17)
(18) —Second and Third Cab Mounts—
(19)
(20) The collar 21 is formed to have a cylindrical shape. The inner diameter thereof is set larger than the inner diameter of the attachment hole 3a of the body 3 while the outer diameter thereof is set smaller than the inner diameter of the attachment hole 2a of the ladder frame 2.
(21) The upper mount rubber 22 is formed thick and to have a substantially cylindrical shape, whose inner diameter is substantially the same as the outer diameter of the collar 21. The upper retainer 24 is formed to have a disc shape, and has a through hole in the center part thereof. The inner diameter of the through hole is set smaller than the inner diameter of the collar 21. The top surface of the upper mount rubber 22 is vulcanized and adhered to the bottom surface of the upper retainer 24.
(22) The lower mount rubber 23 is formed thick and to have a substantially cylindrical shape, whose inner diameter is substantially the same as the outer diameter of the collar 21. The lower retainer 25 is formed to have a disc shape, and has a through hole in the center part thereof. The inner diameter of the through hole is set smaller than the inner diameter of the collar 21. The bottom surface of the lower mount rubber 23 is vulcanized and adhered to the top surface of the lower retainer 25.
(23) The second cab mount 20 is attached to the body 3 through the following steps: the collar 21 is inserted into the attachment hole 2a of the ladder frame 2; the upper mount rubber 22 and the lower mount rubber 23 are fitted to the collar 21 respectively from the above and from the below so as to sandwich the collar 21 by the upper retainer 24 and the lower retainer 25 and also to sandwich the peripheral part 2b of the attachment hole 2a in the upper-lower direction by the upper mount rubber 22 and the lower mount rubber 23; then the bolt 26, which is inserted into the attachment hole 3a of the body 3, is furthermore inserted into a through hole of the upper retainer 24, the collar 21, and a through hole of the lower retainer 25 in this order (i.e. from the above); and the nut 27, which is screwed with the bolt 26, is tightened.
(24) In the second cab mount 20 configured as described above, the upper mount rubber 22 and the lower mount rubber 23 are compressed by the amount of preliminary compression defined by the collar 21 that is sandwiched by the upper retainer 24 and the lower retainer 25. Since the peripheral part 2b of the ladder frame 2 is sandwiched by such compressed upper mount rubber 22 and lower mount rubber 23, vibration generated in ladder frame 2 because of the road surface input and/or the vibration of the power train is reduced/attenuated to be transmitted to the body 3.
(25) The third and fourth cab mounts 30 and 40 each have almost the same configuration as that of the second cab mount 20 except for the size and the like of the upper mount rubber and the lower mount rubber. Thus, detail description on the third and fourth cab mounts 30 and 40 is omitted.
(26) —First Cab Mount—
(27) Hereinafter, the first cab mount 10 will be described. In order to facilitate the understanding of this embodiment, a conventional first cab mount 110 is described first.
(28)
(29) In the ladder frame 2 to which the conventional first cab mount 110 is attached, wide frequency range vibration may be generated, for example, vibration in a relatively high frequency range caused by road surface input when the vehicle travels on a road surface having fine unevenness or by vibration of the power train, and vibration in a relatively low frequency range caused by road surface input when the vehicle travels on a slightly deteriorated paved road.
(30) However, in the conventional first cab mount 110 shown in
(31) The resonance frequency of the suspension 4 (for example, around 15 Hz) caused by the road surface input in the relatively low frequency range (for example, 20 Hz or less) is close to the natural frequency of the vehicle 1 (below the body 3) including the ladder frame 2 and the first cab mount 110. Therefore, it is particularly desired that the cab mount disposed in the vicinity of the suspension 4 reduces/attenuates the transmission of the vertical vibration in the relatively low frequency range. However, it is difficult for the conventional first cab mount 110 to reduce/attenuate sufficiently the transmission of the vertical vibration in the relatively low frequency range. As a result, the body 3 is in some cases forced to move by the vertical vibration of the ladder frame 2 in the low frequency range.
(32) 4(a) and 4(b) are simulation result diagrams schematically illustrating the relationship between the ladder frame 2 and the body 3 when vibration in the upper-lower direction is applied.
(33) As shown in
(34) However, in the conventional first cab mount 110 in which the upper mount rubber 112 and the lower mount rubber 113 sandwich the peripheral part 2b of the ladder frame 2 in the upper-lower direction, the displacement of the ladder frame 2 in the upper-lower direction (Z axis direction) inevitably generates the load F, as shown in
(35) Furthermore, it is certain that the movement of the body 3 associated with the vertical vibration of the ladder frame 2 is reduced when the first cab mount itself is detached, as shown in
(36) In consideration of the above circumstances, in this embodiment shown in
(37)
(38) As shown in
(39) The collar 11 is made of, for example, a metal material and formed to have a cylindrical shape. The inner diameter of the collar 11 is set larger than the inner diameter of the attachment hole 3a of the body 3 while the outer diameter of the collar 11 is set smaller than the inner diameter of the attachment hole 2a of the ladder frame 2.
(40) The upper mount rubber (upper-side rubber elastic body) 12 made of rubber is formed thick and to have a substantially cylindrical shape, whose inner diameter is substantially the same as the outer diameter of the collar 11 so that the upper mount rubber 12 is externally fitted to the collar 11. As shown in
(41) The lower mount rubber (lower-side rubber elastic body) 13 made of rubber is formed thick and to have a substantially cylindrical shape, whose inner diameter is substantially the same as the outer diameter of the collar 11 so that the lower mount rubber 13 is externally fitted to the collar 11. As shown in
(42) Here, the first predetermined distance Z1 and the second predetermined distance Z2 are defined by, for example, Expression 1 as stated below, where the amplitude caused by the road surface input is represented by Z0, the height variation of the body 3 is represented by σ1, the height variation of the ladder frame 2 is represented by σ2, and the height variation of the first cab mount 10 itself is represented by σ3. In this case, the relation Z1=Z2 is established. The amplitude Z0 by the road surface input is a value obtained by experiments and the like according to the vehicle model. As one example, it is set to 0.5 (mm).
(43) Expression 1 is:
Z1(Z2)=Z0+(σ12+σ22+σ32)½.
The middle mount rubber (muddle-side rubber elastic body) 18 is made of rubber and formed to have a cylindrical shape, whose inner diameter is substantially the same as the outer diameter of the collar 11. The middle mount rubber 18 is formed as a separate body from the upper mount rubber 12 and the lower mount rubber 13, and is vulcanized and adhered to the center part on the outer peripheral surface of the collar 11 in the height direction. In other words, the middle mount rubber 18 is attached to the part on the outer peripheral surface of the collar 11 so as to position between the upper mount rubber 12 and the lower mount rubber 13, as shown in
(44) The first cab mount 10 is attached to the body 3 through the following steps: the collar 11 is inserted into the attachment hole 2a of the ladder frame 2; the upper mount rubber 12 and the lower mount rubber 13 are fitted to the collar 11 respectively from the above and from the below so as to sandwich the collar 11 by the upper retainer 14 and the lower retainer 15; then the bolt 16, which is inserted into the attachment hole 3a of the body 3, is furthermore inserted into the through hole 14a, the collar 11, and the through hole 15a in this order (i.e. from the above); and the nut 17, which is screwed with the bolt 16, is tightened. The middle mount rubber 18 is not adhered to the inner peripheral surface of the annular wall part 2c of the ladder frame 2, but makes contact with it in a vertically slidable manner. Thus, the body 3 may appear to be floating in the air when referring to only
(45) The above-described configuration of the first cab mount 10 is different from the configuration of the conventional first cab mount 110 in which the peripheral part 2b of the ladder frame 2 is sandwiched between the upper mount rubber 112 and the lower mount rubber 113. In the first cab mount 10 also, the peripheral part 2b of the ladder frame 2 is positioned between the upper mount rubber 12 and the lower mount rubber 13. However, the upper mount rubber 12 is spaced apart from the ladder frame 2 upwardly by the first predetermined distance Z1 while the lower mount rubber 13 is spaced apart from the ladder frame 2 downwardly by the second predetermined distance Z2. Thus, as shown in
(46) Also, since the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes contact with the middle mount rubber 18 that is vulcanized and adhered to the outer peripheral surface of the collar 11, it is possible to sustain the load applied in the front and back, and right and left directions so that the load is reduced/attenuated. Furthermore, since the inner peripheral surface of the annular wall part 2c makes contact, in a vertically slidable manner, with the middle mount rubber 18, it is possible to prevent the load applied in the upper-lower direction from being transmitted to the body 3 via the middle mount rubber 18. Also, in the center of the top surface of the lower mount rubber 13, the recess part 13b is formed so as to dent downward. Thus, even when the ladder frame 2 is displaced downward, the annular wall part 2c and the folded part 2d do not touch the lower mount rubber 13 before the bottom surface of the peripheral part 2b of the ladder frame 2 does.
(47) In the first cab mount 10 of this embodiment, the upper mount rubber 12 and the lower mount rubber 13 are respectively spaced apart from ladder frame 2 in the upper-lower direction, and moreover, the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes contact, in a vertically slidable manner, with the middle mount rubber 18. Therefore, it is possible to prevent the vertical vibration from being transmitted from the ladder frame 2 to the body 3 regardless whether the vibration is in the high frequency range or in the low frequency range. Thus, it is possible to prevent the forcible movement of the body 3 that is generated under the influence of the vertical vibration of the ladder frame 2.
(48) The resonance frequency of the suspension 4 caused by the road surface input when the vehicle travels on a slightly deteriorated paved road is close to the natural frequency of the vehicle 1. However, since the cab mount structure that is capable of reducing the rigidity and the spring constant substantially to zero is applied to the first cab mount 10 that is attached to the body 3 in the vicinity of the suspension 4 provided on the ladder frame 2, it is possible to preferably prevent the forcible movement of the body 3 caused by the vertical vibration close to the natural frequency of the vehicle 1.
(49) Furthermore, when the vibration with the amplitude more than the first and second predetermined distances Z1 and Z2 occurs, the upper mount rubber 12 and the lower mount rubber 13 make contact with the peripheral part 2b of the ladder frame 2 so that they each serve as a stopper. Thus, it is possible to attenuate the vibration while preventing excessive deformation of the ladder frame 2, and also to prevent the strength of the ladder frame 2 from being affected.
(50) —Simulation Experiments—
(51) Here, a description will be given on simulation experiments that were conducted in order to confirm the effects of this embodiment.
(52) In the experiment, vibration levels (dB) at respective feet placing floor parts of the front right sheet and the front left sheet were calculated, assuming that the vehicle traveled with the speed of 40 km/h on a slightly deteriorated paved road that generates the road surface input of 20 Hz or less. Also, the partial overall value (hereinafter referred to as the “POA” value in an abbreviation) was calculated, which was the sum of the vibration levels (dB) in the range of 8 to 20 Hz. The reason why the vibration levels (dB) were calculated at the feet placing floor part but not calculated at the sheet is to prevent the calculation results from being affected by the rigidity of the sheet cushion.
(53) In the Example of the present invention (see the solid lines in
(54)
(55) As shown in
(56) Accordingly, in Comparative Example 1, the POA value in the frequency range of 8 to 20 Hz (i.e. close to the natural frequency of the vehicle 1) was not considerably reduced at both the front right sheet and the front left sheet compared to Comparative Example 2, as shown in
(57) In contrast to the above, in the Example of the present invention using the first cab mount 10 of this embodiment, it was confirmed that the vibration level (dB) in the frequency range of 8 to 20 Hz (i.e. close to the natural frequency of the vehicle 1) was overall and considerably reduced as shown in
(58) Accordingly, in the Example of the present invention, the POA value in the frequency range of 8 to 20 Hz (i.e. close to the natural frequency of the vehicle 1) was considerably reduced (specifically, by about 2 (dB)) at both the front right sheet and the front left sheet compared to Comparative Examples 1 and 2, as shown in
(59) —Variation—
(60) Here, a Variation of the above first embodiment will be described. In this Variation, the shape of a middle mount rubber 19 differs from that in the above first embodiment. Hereinafter, differences from the first embodiment will be mainly described.
(61)
(62) The inner peripheral surface (peripheral surface of the attachment hole) of the annular wall part 2c of the ladder frame 2 makes contact, in a vertically slidable manner, with the protrusion 19a. That is, in above the first embodiment, the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes surface contact with the middle mount rubber 18. In contrast, in this Variation, the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes contact with the protrusion 19a of the middle mount rubber 19 in a manner rather similar to the point contact.
(63) As described above, in this Variation, the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes vertically slidably contact with the protrusion 19a of the middle mount rubber 19 in a manner rather similar to the point contact. Thus, it is possible to further prevent the vertical vibration of the ladder frame 2 from being transmitted to the body 3 via the middle mount rubber 19.
(64) Also in this Variation, since the inner peripheral surface of the annular wall part 2c of the ladder frame 2 makes contact with the protrusion 19a of the middle mount rubber 19 that is vulcanized and adhered to the outer peripheral surface of the collar 11, it is possible to sustain the load applied in the front and back, and right and left directions so that the load is reduced/attenuated. Furthermore as shown in
Second Embodiment
(65) In this embodiment, the respective shapes of an upper mount rubber 52 and a lower mount rubber 53 differ from those in the above first embodiment. Hereinafter, the common configuration with the first embodiment is indicated by the same reference signs, and the detail description thereof is omitted. Differences from the first embodiment will be mainly described.
(66)
(67) As shown in
(68) More specifically, the upper mount rubber 52 made of rubber is formed thick and to have a substantially cylindrical shape, and has: an upper mount body 52a (a part on the upper side of the dashed line in the upper mount rubber 52) whose top surface is vulcanized and adhered to the bottom surface of the upper retainer 14; and the lower annular part 52b that extends downward from the upper mount body 52a and that has a substantially inverted triangular cross-section. The upper mount body 52a is formed to have a shape substantially the same as the upper mount rubber 12 of the first embodiment. That is, the upper mount rubber 52 is formed to have a shape in which part of the space between the bottom surface of the upper mount rubber 12 and the top surface of the peripheral part 2b of the ladder frame 2 (i.e. part of the space corresponding to the first predetermined distance Z1) in the first embodiment is occupied by the lower annular part 52b. A bored part 52c is formed in the upper mount rubber 52, which advances deformation of the upper mount rubber 52.
(69) On the other hand, the upper end part of the lower mount rubber (lower-side rubber elastic body) 53, which faces the peripheral part 2b of the ladder frame 2, is formed such that the horizontal cross section area thereof gradually decreases upward and that the upper end thereof is spaced apart from the bottom surface of the peripheral part 2b of the ladder frame 2 in the upper-lower direction.
(70) More specifically, the lower mount rubber 53 made of rubber is formed thick and to have a substantially cylindrical shape, and has: a lower mount body 53a (a part on the lower side of the dashed line in the lower mount rubber 53) whose bottom surface is vulcanized and adhered to the top surface of the lower retainer 15; and the upper annular part 53b that extends upward from the lower mount body 53a and that has a substantially triangular cross-section. The lower mount body 53a is formed to have a shape substantially the same as the lower mount rubber 13 of the first embodiment. That is, the lower mount rubber 53 is formed to have a shape in which part of the space between the top surface of the lower mount rubber 13 and the bottom surface of the peripheral part 2b of the ladder frame 2 (i.e. part of the space corresponding to the second predetermined distance Z2) in the first embodiment is occupied by the upper annular part 53b. A bored part 53c is formed in the lower mount rubber 53, which advances deformation of the lower mount rubber 53.
(71) In the above-described configuration of the first cab mount 10A, the lower end of the upper mount rubber 52 and the upper end of the lower mount rubber 53 are respectively spaced apart from the peripheral part 2b of the ladder frame 2 in the upper-lower direction. Thus, the rigidity and the spring constant of the first cab mount 10A can be brought substantially to zero until the ladder frame 2 comes in contact with the upper mount rubber 52 and the lower mount rubber 53.
(72) Also, the horizontal cross section area of the lower annular part 52b is formed so as to gradually decrease downward while the horizontal cross section area of the upper annular part 53b is formed so as to gradually decrease upward. Thus, the respective amounts of rubber of the upper mount rubber 52 and the lower mount rubber 53 are minimized at the respective parts of the upper mount rubber 52 and the lower mount rubber 53 closest to the peripheral part 2b of the ladder frame 2. Therefore, at the beginning of the contact of the ladder frame 2 with the upper mount rubber 52 and the lower mount rubber 53, the rigidity and the spring constant of the first cab mount 10A can be reduced substantially close to zero.
(73) Therefore, it is possible to reliably prevent the vertical vibration from being transmitted from the ladder frame 2 to the body 3 during the period from the start of the vertical vibration of the ladder frame 2 to the initial time of contact with the upper mount rubber 52 and the lower mount rubber 53. Thus, it is possible to prevent the forcible movement of the body 3 that is generated under the influence of the vertical vibration of the ladder frame 2.
(74) On the other hand, the respective horizontal cross section areas of the lower annular part 52b and the upper annular part 53b (in other words, the respective amounts of rubber thereof) gradually increase as the horizontal cross section areas are spaced apart from the ladder frame 2. Accordingly, when the vertical vibration with a relatively large amplitude occurs, the load is sustained with relatively large rigidity and spring constant. Thus, it is possible to attenuate the vibration while preventing excessive deformation of the ladder frame 2, and also to prevent the strength of the ladder frame 2 from being affected.
Other Embodiments
(75) The present invention is not limited to the above-described embodiments, and may be embodied in other forms without departing from the gist or essential characteristics thereof.
(76) In the above-described embodiments, the present invention was applied to the first cab mounts 10 and 10A in the vicinity of the suspension 4. However, the present invention is not limited thereto. According to the vibration mode and the like, it may be applied to the second to fourth cab mounts 20, 30 and 40.
(77) Also, in the above-described first embodiment, the amplitude Z0 by the road surface input was set to 0.5 (mm) and furthermore the first predetermined distance Z1 and the second predetermined distance Z2 were defined by the Expression 1. However, these values were exemplarily shown. The first predetermined distance Z1 and the second predetermined distance Z2 may be most suitably set based on a different expression, taking into account, for example, the strength of the body 3 and the ladder frame 2. In such a case, the expression Z1 Z2 may be accepted.
(78) Furthermore, in the above-described second embodiment, the middle mount rubber 18 was used. However, the present invention is not limited thereto. The middle mount rubber 19 having the protrusion 19a may be used, similarly to the Variation of the first embodiment.
(79) Also in the second embodiment, the lower end of the upper mount rubber 52 and the upper end of the lower mount rubber 53 were respectively spaced apart from the peripheral part 2b of the ladder frame 2 in the upper-lower direction. However, the present invention is not limited thereto. The lower end of the upper mount rubber 52 and the upper end of the lower mount rubber 53 may make contact with the peripheral part 2b of the ladder frame 2. In this case also, the respective amounts of rubber of the upper mount rubber 52 and the lower mount rubber 53 are minimized at the lower end of the upper mount rubber 52 and the upper end of the lower mount rubber 53 that are closest to the peripheral part 2b of the ladder frame 2. Thus, the rigidity and the spring constant of the first cab mount 10A can be reduced substantially close to zero.
(80) The foregoing embodiments are therefore to be considered in all respects as illustrative and not limiting. Furthermore, all modifications and changes that come within the meaning and range of equivalency of the claims are intended to be embraced therein.
INDUSTRIAL APPLICABILITY
(81) With the present invention having a simple configuration, it is possible to prevent a forcible movement of the body, which is generated under the influence of vertical vibration of the frame. Therefore, the present invention can be suitably and beneficially applied to a cab mount that attaches the frame to the body.
REFERENCE SIGNS LIST
(82) 1 Vehicle
(83) 2 Ladder frame
(84) 2a Attachment hole
(85) 2b Peripheral part
(86) 3 Body
(87) 4 Suspension
(88) 10 First cab mount
(89) 11 Collar
(90) 12 Upper mount rubber (upper-side rubber elastic body)
(91) 13 Lower mount rubber (lower-side rubber elastic body)
(92) 18 Middle mount rubber (middle-side rubber elastic body)
(93) 19 Middle mount rubber (middle-side rubber elastic body)
(94) 19a Protrusion
(95) 53b Upper mount rubber (upper-side rubber elastic body)
(96) 52b Lower annular part (lower end part)
(97) 53 Lower mount rubber (lower-side rubber elastic body)
(98) 53b Upper annular part (upper end part)
(99) Z1 First predetermined distance
(100) Z2 Second predetermined distance