GLASS FORMING MACHINE LEVELING SHIMS AND METHOD OF USING SAME
20180257969 ยท 2018-09-13
Inventors
Cpc classification
C03B9/40
CHEMISTRY; METALLURGY
C03B9/353
CHEMISTRY; METALLURGY
C03B9/3532
CHEMISTRY; METALLURGY
International classification
C03B9/40
CHEMISTRY; METALLURGY
C03B9/447
CHEMISTRY; METALLURGY
Abstract
A method and tool for adjusting components of a machine that produces glass bottles. A shim is positioned between two components. The shim includes a base element and an adjustable element. The base element has a component engaging surface and a stepped surface. At least several of the steps project a greater distance than other steps. The adjustable element has a component engaging surface and a stepped surface. At least several of the steps of the adjustable element project a greater distance than other steps. The stepped surface of the adjustable element rests on the stepped surface of the base element such that rotation or sliding of the adjustable element allows the steps of the adjustable element and the steps of the base element to mate in a manner wherein the component engaging surfaces are moved closer to or further from one another.
Claims
1. A method for adjusting components of a machine that produces glass bottles comprising positioning a shim between two components, said shim including a base element and an adjustable element, said base element having a component engaging surface and a stepped surface having a plurality of steps, at least several of said steps projecting a greater distance, the adjustable element having a component engaging surface and a stepped surface having a plurality of steps, at least several of said steps projecting a greater distance, the stepped surface of said adjustable element resting on the stepped surface of said base element, wherein rotation or sliding of said adjustable element allows the steps of the adjustable element and the steps of the base element to mate in a manner wherein the component engaging surfaces are moved closer to or further from one another.
2. The method of claim 1 wherein said adjustable element is rotated.
3. The method of claim 1 wherein said adjustable element comprises a polygonal circumferential shape.
4. The method of claim 3 wherein said shape includes 4-8 sides.
5. The method of claim 4 wherein said shape comprises a hexagon.
6. The method of claim 1 wherein said base element comprises a dog bone shape.
7. The method of claim 6 wherein each end of the dog bone includes said steps.
8. The method of claim 1 wherein said steps comprise radially extending ridges approaching or intersecting a passage through the element and approaching or intersecting an exterior sidewall.
9. The method of claim 8 wherein said steps are disposed in a spoke and wheel pattern, and wherein said pattern is comprised of at least four zones of steps which increase in height from a low point adjacent a neighboring zone to a high point adjacent a subsequent zone.
10. The method of claim 1 wherein a tool is used to engage and rotate the adjustable element.
11. The method of claim 1 wherein said adjustable element comprises an elongated body having a longitudinal axis and wherein said steps are disposed perpendicular to said axis.
12. The method of claim 11 wherein said elongated body includes at least one passage.
13. The method of claim 12 wherein said steps are comprised of at least two zones on opposed sides of said passage and wherein steps on a first side of said passage are greater in height than steps on the second side of said passage.
14. The method of claim 13 wherein said body includes at least two passages.
15. The method of claim 1 wherein adjacent steps vary in height by less than 0.005.
16. The method of claim 1 wherein the base element and the adjustable element include an indicia or other marking suitable for aligning the steps in one of a greatest height, lowest height, or intermediate height orientation.
17. A tool for adjusting the relative height of at least two components of a machine, said tool comprising a shim including a base element and an adjustable element, each element including a passage, said passages configured to overlap a passage in the corresponding machine and receive a post or bolt, said base element having a component engaging surface and a stepped surface having a plurality of steps, the adjustable element having a component engaging surface and a stepped surface having a plurality of steps, at least several of said steps of one or both of the base element and the adjustable element projecting a greater distance, the stepped surface of said adjustable element resting on the stepped surface of said base element in an assembled condition, wherein rotation or sliding of said adjustable element allows the steps of the adjustable element and the steps of the base element to mate in a manner wherein the component engaging surfaces are moved closer to or further from one another.
18. The tool of claim 17 wherein said adjustable element is rotatable.
19. The tool of claim 17 wherein said steps are disposed in a spoke and wheel pattern, and wherein said pattern is comprised of at least four zones of steps which increase in height from a low point adjacent a neighboring zone to a high point adjacent a subsequent zone.
20. A tool for adjusting the relative height of at least two components of a machine, said tool comprising a shim including a base element and an adjustable element, each element including a passage, said passages configured to overlap the passage in the corresponding element and receive a post or bolt, said base element having a component engaging surface and a working surface including steps or ridges, the adjustable element having a component engaging surface and a working surface having a plurality of steps or ridges, at least one of the base element and the adjustable element having steps, at least several of said steps of one or both of the base element and the adjustable element projecting a greater distance, the working surface of said adjustable element resting on the working surface of said base element in an assembled condition, wherein rotation or sliding of said adjustable element allows the steps and the opposed steps or ridges to mate in a manner wherein the component engaging surfaces are moved closer to or further from one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
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[0013]
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[0017]
DETAILED DESCRIPTION
[0018] The present disclosure is directed to a new glass forming machine part. The part is used in conjunction with pins, hangers and inserts, etc., when mounting, setting up and properly aligning equipment used to form glass containers, such as on an I.S. machine.
[0019] In one embodiment, two multi-sided (for example 6) steel shims with incremental adjusting steps machined into a surface of the part are provided. These shims can be used in conjunction with a dog bone shaped bottom part. In a further embodiment, a rectangular shaped part with incremental machined steps can be used in conjunction with an oval bottom part. A wrench designed to fit two of the flat sides or a mating projection of the adjusting shims can be included. The wrench is used to rotate or slide and adjust the shims, which fit on top of the base parts. As the leveling shims are rotated or slid using the wrench, the height or relative spacing of the glass forming machine part is raised or lowered allowing for leveling and improved alignment as required to produce defect free glass containers. The subject adjustable leveling shims can take the place of steel washers and allow for small incremental adjustments of 0.002 at a time, for example, resulting in much quicker and easier set up of glass container forming machines.
[0020] The time to mount and properly set up new container glass forming molds onto a mold hanger arm can be reduced by several hours, resulting in less downtime for the machine and increased output for the manufacturer.
[0021] Illustrated in
[0022] Demonstrated in
[0023] With further reference to
[0024] Base element 18 includes passages 24 in each of circular end segments 22 and each adjustable element 20 includes a passage 26. Passages 24 and 26 are oriented to align such that bolts 14 can pass from hanger arm blank 10, through the base element 18 and adjustable elements 20, for attachment to first mold half 12 (see
[0025] With particular reference to
[0026] In certain applications the steps can increase in height between adjacent steps a distance of about 0.0005 to about 0.01, or about 0.001 to about 0.005. The size of the steps is not critical, but an exemplary change in distance between the component engaging surface 34 of the base element 18 and the component engaging surface 36 of the adjustable element 20 achieved by rotation from one step position to the next can be between about 0.0001 and 0.02. It is contemplated that the suitable size of steps is one that allows meaningful adjustability yet is sufficiently small to allow practical rotation of the adjustable element to be performed. Moreover, steps too large cannot be easily rotated while steps too small provide insufficient adjustment.
[0027] In certain applications the stepped surfaces of the adjustable and base elements can be formed into sections. These sections can include steps that originate at a low height and progressively increase in height. It is envisioned that at least two sections will be included within the configuration of steps on each element. It is further envisioned that at least three sections will be provided such that at least three points of engagement are provided between the base element and the adjustable element at any location of rotation there between. It is also envisioned that four sections may be beneficial as this provides four points of contact creating a stable interface and provides 90 of rotational freedom to maximize the range of height adjustment available. It is contemplated that the sections can be equal in length.
[0028] It is further envisioned that the number of steps within each section on each of the adjustable element and the base element can be at least substantially the same to facilitate precise mating between the two elements. In this manner, by aligning the lowest step of the adjustable element with the highest step of the base member (and vice versa) the adjustable shim arrangement provide its smallest mold half-hanger arm dimension. Rotation of the adjustable element 20 relative to the stationary base element 18 results in sliding of adjacent steps over one another such that the steps of the adjustable element engage the next highest step of the base member.
[0029] Turning now to
[0030] As illustrated each of sections 42 and 53, which overlap in an assembled condition, are comprised of steps which progressively increase in height from lower most step 42A and 53A to highest steps 42Q and 53Q.
[0031]
[0032] It is further noted, that the disclosure contemplates steps formed in each of the adjustable element and the base element. However, it is feasible to form the stepped surface in either element and provide the corresponding element with only ridges upon which the associated steps can be rotated upon. For example, in keeping with the preceding paragraph, four ridges could be formed on the base element upon which steps of varying height formed on the adjustable element would rest. Rotation of the adjustable element such that steps of greater or lesser height rest on the ridges would result in increase or decrease of the distance between the component engaging surfaces or the adjustable element and the base element. In most applications, it may be beneficial to provide at least three ridges (points of engagement) such that a stable interface is formed between the adjustable element and the base element.
[0033] Turning now to another embodiment of the disclosure, reference is made to
[0034] Each (or only one) of the mating faces of the base member 62 and the slide member 64 can include steps 72 oriented perpendicular to the longitudinal axis of the shim arrangement 60. Similarly to the embodiment(s) described above, the stepped surface can include sections. For example, the slide member 64 can include four sections 74, wherein the steps increase in height in each section from a first lowest step 76A to a final highest step 76P (only one section is illustrated with step reference characters). By releasing pressure on the shim arrangement 60, tool 57 (or another object) can engage either end of the slide member 64 at either of the squared engagement edges 78 and push the slide member 64 into one of a lower or higher configuration.
[0035] With reference to
[0036] In certain embodiments, the base element and the adjustable element of either shim arrangement 16 or 60 may include an indicia or other marking suitable for aligning the steps and/or ridges in one of a greatest height, a lowest height, or an intermediate height orientation.
[0037] Advantageously, instead of using a number of small thickness shims to build up the desired shim zone spacing after disassembly, the present disclosure provides a pair of cooperating shim members that can be adjusted simply by loosening machine anchor bolts and then adjusting the position of the shim by rotating or sliding one of the shim elements to provide the correct spacing for the relevant zone.
[0038] The exemplary embodiment has been described with reference to the preferred embodiments. Obviously, modifications and alterations will occur to others upon reading and understanding the preceding detailed description. It is intended that the exemplary embodiment be construed as including all such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.