VENTILATION UNIT FOR A VULCANIZATION MOLD OF A VEHICLE PNEUMATIC TIRE
20190275757 ยท 2019-09-12
Inventors
Cpc classification
B29D2030/0617
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A ventilation unit for a vulcanization mold of a vehicle pneumatic tire has a cylindrical housing that can be pressed into a ventilation hole of the mold, and a valve insert that can be positioned in the housing and has a valve shaft which has a base section which, at the one end thereof, has an end section guided through an opening in the housing base and held by the housing, at the other end thereof carries a valve disc and is also surrounded by a helical compression spring, wherein the end section of the valve shaft that is held by the housing is divided in two by a slot and has end section parts formed as projections, wherein each projection has at the widest point thereof has a collar and inclined surfaces tapering from the collar, and wherein inclined surfaces are provided in the opening section of the opening.
Claims
1-5. (canceled)
6. A venting unit for a vulcanizing mold of a pneumatic vehicle tire, the vulcanizing mold having a venting bore, the venting unit comprising: a cylindrical housing configured to be pressed into the venting bore of the vulcanizing mold; the venting unit defining a central longitudinal mid-axis; a valve insert disposed in said cylindrical housing and being movable relative to said cylindrical housing; said cylindrical housing having a housing base defining an opening; said valve insert having a valve disk and a valve shank; said valve shank having a base portion, a first end, a first end portion and a second end; said second end supporting said valve disk; a helical compression spring having a first spring end and a second spring end; said helical compression spring being supported on said cylindrical housing with said first spring end and on said valve disk with said second spring end; said second end of said valve shank being surrounded by said helical compression spring; said first end portion being led through said opening of said housing base and held by said cylindrical housing; said valve shank defining a slit along the central longitudinal mid-axis; said first end portion being divided in two by said slit and having two end portion parts each configured as projections; each of said projections having a widest point and a collar at said widest point; each of said projections further having a first sloping surface running from said collar to said base portion and a second sloping surface running from said collar to said first end, wherein said first sloping surface and said second sloping surface taper said projection; said base portion having a base portion diameter; said opening in said housing base having a central opening portion adapted to said base portion diameter; and, said housing base having a third sloping surface formed therein above said opening portion and a fourth sloping surface formed therein below said opening portion, wherein said third sloping surface and said fourth sloping surface widen said opening.
7. The venting unit of claim 6, wherein said fourth sloping surface below said central opening portion runs at an angle (.sub.4) of 30 to 60 in relation to the longitudinal mid-axis.
8. The venting unit of claim 6, wherein said fourth sloping surface below said opening portion runs at an angle (.sub.4) of approximately 45 in relation to the longitudinal mid-axis.
9. The venting unit of claim 6, wherein said third sloping surface runs at an angle (.sub.5) of 30 to 70 in relation to the longitudinal mid-axis.
10. The venting unit of claim 6, wherein said third sloping surface runs at an angle (.sub.5) of 60 in relation to the longitudinal mid-axis.
11. The venting unit of claim 6, wherein each said first sloping surfaces run at an angle (.sub.2) of 30 to 60 in relation to the longitudinal mid-axis.
12. The venting unit of claim 6, wherein each said first sloping surfaces run at an angle (.sub.2) of 45 in relation to the longitudinal mid-axis.
13. The venting unit of claim 11, wherein: said fourth sloping surface below said opening portion runs at an angle (.sub.4) in relation to the longitudinal mid-axis; and, said angle (.sub.2) of said first sloping surfaces corresponds to said angle (.sub.4) of said fourth sloping surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The invention will now be described with reference to the drawings wherein:
[0011]
[0012]
[0013]
[0014]
[0015]
DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
[0016]
[0017]
[0018] In the following detailed description of individual component parts of the venting unit 3, the configuration of these component parts is considered with reference to their installation position in the mold segment 1 or the position in the figures; this concerns for example designations such as outer or upper and inner. The venting unit represented is, by way of example, a venting unit with a diameter of 3.2 mm, therefore a venting unit for vulcanizing molds for car tires. Usually, venting units can have a diameter (diameter adapted to the venting bore) of 2 mm to 5 mm.
[0019] The housing 6 that is shown separately in
[0020] A further sloping surface 10 with an inward inclination is formed on the outside at the inner end of the housing 6. The sloping surface 10 is a kind of bevel on the edge of the housing and runs at a constant angle .sub.2, which is 10 to 60, in particular 15 to 45, in relation to the outer side of the portion 6a or in relation to the longitudinal mid-axis a. The sloping surface 10 is very narrow; its width b.sub.2 is of the order of magnitude of 0.15 to 0.20 mm.
[0021] On the outer end region, facing the mold segment inner side 1a, the housing 6 is provided on the inside with a widening 11 in the form of a truncated cone, which is adapted to the configuration of the valve disk 4, which, as for example
[0022] On the end region of the housing 6 that is opposite from the widening 11 in the form of a truncated cone there is a housing base 12, which has a middle circular opening 13 with a central narrowest opening portion 13a, the inner diameter d.sub.4 of which is smaller than the inner diameter d.sub.1 of the housing 6 and is surrounded by a narrow ring. Above and below the opening portion 13a, the opening 13 is widened via a respective sloping surface 14, 15. The sloping surface 15 running on the outside of the housing base 12 runs at an angle of .sub.4 of 30 to 60, in particular of approximately 45, in relation to the longitudinal mid-axis a. On the inside of the housing, the second sloping surface 14 in the case of the embodiment shown forms a transitional surface with respect to the housing inner wall and runs at an angle as of 30 to 70, in particular of the order of magnitude of 60, in relation to the longitudinal mid-axis a. The height h.sub.1 of the housing base 12 parallel to the longitudinal mid-axis a is of the order of magnitude of 0.4 mm to 0.6 mm.
[0023] The valve insert 7 is now described in more detail on the basis of
[0024] The second end portion 8c is divided into two in the middle by a slit 17 extending along the longitudinal mid-axis a and reaching into the base portion 8a. The slit 17 allows the two end portion parts 18a, 18b to be pressed together and moved apart, so that the valve shank 8 can be led through the constriction or the opening 13 in the peripheral projection 12 of the housing 6 and can in this way be fastened on the housing 6. Each end portion part 18a, 18b forms a projection, which according to the cylindrical form of the shank is in each case rounded overall. At its widest point, each projection has a collar 19a, which adjoins the base portion 8a via a sloping surface 19b. The sloping surfaces 19b run at an angle .sub.2 of 30 to 60, in particular of 45, in relation to the longitudinal mid-axis a, the angle .sub.2 preferably corresponding to the angle .sub.4 of the sloping surface 15 at the opening 13 in the housing base 12 of the housing 6, so that, as
[0025] To assemble the venting unit 3, the helical compression spring 9 is positioned over the valve shank 8 and the valve shank 8 is led through the middle opening 13 in the projection 12 of the housing while pressing together the two end portion parts 18a, 18b and in this way is fastened on the housing 6. The sloping surfaces 14 above the opening portion 13a and the sloping surfaces 19c on the valve shank 8 make insertion possible with little expenditure of force.
[0026] In the case of the embodiment shown in
[0027]
[0028] On the one hand, an elevation or a number of elevations on the valve disk can have the effect of assisting the movement of the valve disk into its closed position; on the other hand, elevations and/or depressions on the valve disk can have the effect that local depressions or elevations, which are perceived as being visually less disturbing than the impressions of valve disks with a flat surface, are specifically formed on the tread of the tire.
[0029] The venting unit 3 can be inserted in a precise and easy way into the portion 2a of the venting bore 2 of the mold segment 1. Since only the outer portion 6a of the housing 6 is pressed into the venting bore 2, the housing 6 is positioned with its thinner portion 6b in the venting bore 2. The sloping surface 10 at the lower end of the portion 6b assists easy insertion into the bore 2. As a result, it is possible also to insert the housing 6 by machine without having a perfect alignment of the device, for example a robot, in relation to the bore. The longer thinner portion 6b has the effect that the housing 6 is pre-adjusted in the bore 2 and is substantially parallel to the axis of the bore when the sloping surface 6c comes into contact with the periphery of the bore. Then the housing 6 is exactly centered and aligned straight, in order that the housing 6 is then introduced parallel to the axis of the bore, without damaging or asymmetrically widening the periphery of the bore. Therefore, not only is a particularly exact positioning of the venting unit 3 in the venting bore 2 made possible, but the expenditure of force is also reduced significantly. In principle, the venting unit 3 may be completely assembled from its parts before it is introduced into the venting bore. However, it is also possible first to introduce the housing 6 into the venting bore 2 and then to position the further parts in the housing 6.
[0030] It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.
LIST OF REFERENCE NUMERALS
[0031] 1 . . . Mold segment [0032] 1a . . . Mold segment inner side [0033] 2 . . . Venting bore [0034] 2a . . . Portion [0035] 3 . . . Venting unit [0036] 4, 4, 4 . . . Valve disk [0037] 5 . . . Tread [0038] 6 . . . Housing [0039] 6b.sub.1 . . . Peripheral portion [0040] 6a, 6b . . . Portion [0041] 6c . . . Sloping surface [0042] 6d . . . Portion [0043] 7 . . . Valve insert [0044] 8 . . . Valve shank [0045] 8a . . . Base portion [0046] 8b, 8c . . . End portion [0047] 9 . . . Helical compression spring [0048] 9a . . . Turn [0049] 10 . . . Sloping surface [0050] 11 . . . Widening [0051] 11a . . . Sloping surface [0052] 12 . . . Housing base [0053] 13 . . . Opening [0054] 13a . . . Opening portion [0055] 14, 15 . . . Sloping surface [0056] 16a . . . Holding portion [0057] 16b . . . Centering portion [0058] 17 . . . Slit [0059] 18a, 18b . . . End portion part [0060] 19a . . . Collar [0061] 19b, 19c . . . Sloping surface [0062] a . . . Longitudinal mid-axis [0063] b.sub.1, b.sub.2, b.sub.3 . . . Width [0064] d.sub.1, d.sub.2, d.sub.3, d.sub.4, d.sub.5, d.sub.6 . . . Diameter [0065] l . . . Housing length [0066] l.sub.a, l.sub.b, l.sub.b1 . . . Length [0067] .sub.1, .sub.2, .sub.3, .sub.4, .sub.5 . . . Angle (housing) [0068] .sub.1, .sub.2, .sub.3 . . . Angle (shank) [0069] h.sub.1, h.sub.2, h.sub.3 . . . Height [0070] t.sub.1 . . . Depth