GB2034860A - Improvements in expandible devices for internally gripping cores or the like - Google Patents

Improvements in expandible devices for internally gripping cores or the like Download PDF

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Publication number
GB2034860A
GB2034860A GB7937698A GB7937698A GB2034860A GB 2034860 A GB2034860 A GB 2034860A GB 7937698 A GB7937698 A GB 7937698A GB 7937698 A GB7937698 A GB 7937698A GB 2034860 A GB2034860 A GB 2034860A
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United Kingdom
Prior art keywords
body member
balls
jaw segments
grooves
cylindrical structure
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Granted
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GB7937698A
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GB2034860B (en
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16CSHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
    • F16C13/00Rolls, drums, discs, or the like; Bearings or mountings therefor
    • F16C13/02Bearings
    • F16C13/04Bearings with only partial enclosure of the member to be borne; Bearings with local support at two or more points
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65HHANDLING THIN OR FILAMENTARY MATERIAL, e.g. SHEETS, WEBS, CABLES
    • B65H75/00Storing webs, tapes, or filamentary material, e.g. on reels
    • B65H75/02Cores, formers, supports, or holders for coiled, wound, or folded material, e.g. reels, spindles, bobbins, cop tubes, cans, mandrels or chucks
    • B65H75/18Constructional details
    • B65H75/24Constructional details adjustable in configuration, e.g. expansible
    • B65H75/242Expansible spindles, mandrels or chucks, e.g. for securing or releasing cores, holders or packages
    • B65H75/246Expansible spindles, mandrels or chucks, e.g. for securing or releasing cores, holders or packages expansion caused by relative rotation around the supporting spindle or core axis

Abstract

An expandible device for gripping a core carrying a web of material has jaw segments 7A, expanded by balls 2 carried by recesses 3 in a body member 1. The jaw segments have arcuate inner grooves 11A which taper in depth and co-operate with the balls upon relative rotation of the jaw segments and body member to cause the jaw segments to expand into frictional gripping contact with the core. Part rotation of the core in the opposite direction will cause the jaw segments 7A to revert to a contracted position to release the core. Resilient bands 9 or tension springs (15) Figs. 13 and 14 (not shown) retain the jaw segments and bias the jaw segments into the contracted position. Additional spring clips 19 can be located between the jaw segments to contact the core and urge the jaw segments apart when the core is partly rotated to expand the jaw segments. <IMAGE>

Description

SPECIFICATION Improvements in expandible devices for internally gripping cores or the like The present invention relates to expandible devices for internally gripping cores or the like.
In conventional web treatments, where machines handle reels of paper, plastics, metal foils, textiles and other sheet material, the cores of these reels need to be mounted on the machines so that rotational drive can be selectively coupled to the cores to effect winding or unwinding of the web entrained on the cores. The cores carrying the webs are normally tubular components made from -cardboard, metal or plastics material. To effect the rotational drive to a core, it is well known to employ an expandible device or core chuck onto which the core is mounted. The device then expands when it is desired to drive or lock the core to frictionally grip the interior of the core.
Examples of known devices are described in U.K.
patent specifications 1301658,1362649, 1485031 and 1543571.The known devices suffer from a number of disadvantages. Primarily: (I) The range of expansion is often limited so that a particular device may need to be adopted for specific sizes of cores; (11) There is often a relatively small zone of frictional contact between the interior of the core and the device when the latter is expanded to grip the core; (III) In order to produce a compact device hitherto, the strength of certain components has to be sacrificed; and (IV) Positive location of individual parts of the devices is often difficult to achieve.
A general object of the present invention is to provide an improved form of expandible device for internally gripping cores or the like.
In its broadest aspect, the present invention provides an expandible device for internally gripping cores or the like; said device comprising a body member, a cylindrical structure surrounding the body member, the cylindrical structure being composed of a plurality of jaw segments, means for retaining the jaw segments on the body member and balls locating in grooves of tapered depth between the body member and the jaw segments, whereby relative rotation or partial rotation between the cylindrical structure and the body member causes the balls to become located in shallower regions of the grooves to move the jaw segments outwardly from the body member.
In preferred embodiments of the invention, the balls are located in recesses in the exterior of the body member, while the associated grooves are provided in the inner surfaces of the jaw segments which form gripping elements relative to the core interior. The body member can be hollow and mounted directly or otherwise onto a cross-shaft of a machine. It is also possible to utilize a solid body member, especially in the so-called "shaftless" arrangement where a pair of opposed devices locate a core therebetween. In another construction, the cross-shaft is itself adapted to form the aforesaid body member.
The balls can be arranged in several axially spaced groups, each symmetrical about the axis of the body member. The balls of one-group can be aligned in co-linear relationship longitudinally of the body member with respect to corresponding balls of another group. Each jaw segment may have one or more grooves. Each jaw segment may be operably associated with one or several balls.
Various configurations or relative dispositions of balls and grooves are described hereinafter. It is preferable to so arrange the balls and grooves that relative rotational motion between the outer cylindrical structure defined by the jaw segments in either a clockwise or anti-clockwise direction will cause the balls to become located in successively shallower regions of the grooves to bring about the effective expansion of the cylindrical structure. The provision of balls engaging in grooves, in accordance with the invention, can produce a gradual progressive controlled expansion as a core mounted on or about the cylindrical structure is partly rotated to move the jaw segments over the balls to bring the balls into the shallow regions of the grooves.The jaw segments can then move in synchronism to simultaneously grip the interior of the core over a maximum area of contact. The jaw segments can, however, be easily and rapidly released by part rotation of the core in the opposite direction to before to cause the grooves to locate the balls with their deepest regions.
The provision of the balls engaging in grooves also serves to axially located the jaw segments and the aforesaid retention means need only retain the jaw segments radially. Preferably, the retention means is resilient to bias the jaw segments into a contracted position with the balls in the deepest regions of the grooves. It is advantageous to provide means for initially urging the jaw segments apart to bring the balls into the shallower regions of the grooves upon relative rotation between the body member and the cylindrical structure. One form of urging means is simple spring clips located between the adjacent ends of the jaw segments. These spring clips can then also project beyond the jaw segments to contact the core interior.When gripping is desired, the core is partly rotated to tilt the spring clips and this effects part rotation of the outer cylindrical structure causing the jaw segments to rise at one end or the other, or in certain embodiments uniformly as they roll over the balls in their initial mutual expansion.
The body member and/or the jaw segments may have flanges or shoulders for locating a core engaged on the device.
The invention may be understood more readily and various other features of the invention may become apparent, from corJsideration of the following description.
Embodiments of the invention will now be described, by way of examples only, with reference to the accompanying drawings, wherein: Figure 1 is a side view of a device made in accordance with the invention, with part of the structure removed; Figure 2 is a cross-sectional view of the device shown in Figure 1 , the view being taken along the line X-X of Figure 1; Figure 3 is a view of the device corresponding to Figure 2 but depicting the device in a different operating position; Figure 4 is a part-sectional side view of a modified body member for use in the device shown in Figures 1 to 3, or in other embodiments of the invention.
Figure 5 is a diagrammatic end view of the body member shown in Figure 4; Figures 6 to 8 are underside views of alternative jaw segments for use in the device shown in Figures 1 to 3 or in other embodiments of the invention.
Figure 9 is a view corresponding to Figure 1 depicting another device constructed in accordance with the invention; Figure 10 is a part-sectional end view of the device shown in Figure 9; Figure 11 is a view corresponding to Figure 1 depicting a further device constructed in accordance with the invention; Figure 12 is a part-sectional end view of the device shown in Figure 11; Figure 13 is a part-sectional side view of a further device and composite arrangement constructed in accordance with the invention; Figure 1 4 is a part-sectional end view of the single device shown in Figure 13; Figure 1 5 is a part-sectional side view of a modified body member for use in a further embodiment of the invention; and Figure 16 is a diagrammatic end view of the body member shown in Figure 1 5.
As shown in Figures 1 to 3, a device constructed in accordance with the invention has a central body member 1 of hollow cylindrical form having a regular through bore 4. The body member 1 has flanges 6, 8 at its ends. During use, the member 1 locates onto a rotatable cross-shaft (not shown) and the shaft extends through the bore 4. Detachable fixing means, such as one or more screws or bolts located in screw-threaded bores 5 in at least the flange 8, serve to fix the member 1 to the shaft for rotation therewith.
The body member 1 is provided with recesses 3 in its outer periphery which receive balls 2. In the illustrated embodiment, six balls 2 are arranged in two axially-spaced groups, each composed of three balls. The balls 2 of each group are located in symmetrical manner relative to the rotational axis, i.e., the axis of the body member 1. Each ball 2 of one group is aligned longitudinally of the body member 1 with a corresponding ball 2 of the other group. The recesses 3 which locate the balls 2 are of hemispherical shape, at least over the inner regions contacting and guiding the balls 2.
Although the recesses 3 may be machine directly in the body member 1, is is possible to provide bearing inserts set into bores in the body member 1 and to shape the inserts internally to define the recesses 3. The recesses 3 have an overall depth relative to the outer peripheral surface of the body member 1 such that the balls 2 project outwardly beyond this peripheral surface. The outer peripheral surfaces of the balls 2 thus lie on a common circle described from the axis of the body member 1. The balls 2 are able to rotate freely within their recesses 3.
The body member 1 with its balls 2 is surrounded by an outer cylindrical structure composed of a number (in the illustrated embodiment three) of separate gripping elements or jaw segments 7A. The jaw segments 7A are spaced from the outer periphery of the body member 1 to overlay and contact the balls 2. The jaw segments 7A have shaped arcuate grooves 11 A, which taper in depth on their inner surfaces.
These grooves 1 lA locate with the balls 2. Each segment 7A has two pairs of such grooves 11 A axially spaced to mate with a pair of respective balls 2 of both groups of balls 2. Each pair of circumferentially-aligned grooves 1 1A may take the shape depicted in Figures 2, 3 and 6 to adjoin one another with their deepest regions. The jaw segments 7A are displaceable in relation to the body member 1 to permit the device overall to expand and contract. Figure 2 shows the jaw segments 7A in their contracted position while Figure 3 shows the jaw segments 7A in their expanded position. The jaw segments 7A are retained in position around the body member 1 and in their contracted position by resilient means which permit the expansive displacement of the jaw segments 7A.As illustrated, this resilient means takes the form of three endless bands 9 located in aligned grooves 10 in the outer surface of the jaw segments 7A.
Longitudinal slots or gaps are provided between the adjacent ends of the jaw segments 7A and shaped resilient spring clips 1 9 lock into the gaps. As shown in Figure 1 ,the clips 1 9 each have end portions extending axially of the device and contacting the body member 1 and a central portion bent radially outwardly from these end regions and extending- parallel to the axis of the body member 1. These central regions of the clips 1 9 project beyond the outer surface of the contracted jaw segments 7A, as shown in Figure 2. Although the clips 1 9 can be positively located with retention means, in the illustrated embodiment no special measures are taken and the ends of the jaw segments 7A are urged into mutual contact with the clips 1 9 by the action of the bands 9.
In the contracted position of the device as shown in Figure 2, the bands 9 maintain the jaw segments 7A in locations with the each ball 2 engaged in the deepest region of the adjacent associated groove 11 A of the associated jaw segment 1A. In this contracted position, the clips 19 extend radially of the axis of the body member 1. During use, a core (not shown) is located on the device. With the jaw segments 7A in the contracted position of Figure 2, the jaw segments 7A are spaced from the interior of the core but the central regions of the spring clips 1 9 contact the interior surface of the core to ensure concentricity and provide the necessary actuation contact between the core and the device. Since the spring clips 1 9 can be deflected to a certain extent, various sizes of cores can be mounted on the same device.Preferably, the exterior surfaces of the jaw segments 7A are serrated or otherwise treated to provide frictional contact with the interior surface of the core when the segments 7A are expanded to adopt the position of Figure 3.
When it is desired to make rotatable driving connection between the cross-shaft and the core, the segments 7A are expanded to firmly contact the interior of the core. This expansion of the segments 7A is achieved by partly rotating the core clockwise (as represented by the arrow in Figure 3) or anti-clockwise to cause the clips 19 to tilt to adopt a non-radial disposition. This, in turn, initially urges one of the adjacent pairs of ends of the jaw segments 7A apart against the restoring force of the bands 9 and then imparts part rotation to the jaw segments 7A relative to the body member 1.
The jaw segments 7A thus move around the body member 1 and the grooves 11 A roll on the balls 2 to bring the balls 2 progressively into the shallower regions of the grooves 11 A. This, in turn, initially causes the leading ends of the jaw segments 7A to become raised into firm wedging contact with the interior of the core when the grooves 11 A take the form shown in Figure 6.
Continued rotation of the core under load causes a turning moment to be exerted on the jaw segments 7A about the balls 2 which tends to raise the trailing ends of the jaw segments 7A as indicated by arrows Z in Figure 3, thus increasing the grip between the core and the jaw segments 7A. With the jaw segments 7A expanded as described, torque can be transmitted between the cross-shaft and the core. To release the core from the expanded jaw segments 7A, the core need only be partly rotated, usually manually, in the opposite direction to that adopted on take-up to permit the spring clips 1 9 to resile to their normal radial position and also force the jaw segments 7A in unison back over the balls 2 so that the grooves 11 then again contact the balls 2 with their deepest regions to re-adopt the contracted position of Figure 2.
Although the spring clips 1 9 are advantageous they are not wholly essential, since the jaw segments 7A can make contact with the interior of the core in their contacted position sufficient to initially displace the jaw segments 7A when the core partly rotates to cause the necessary expansion.
The end flanges 6, 8 of the body member 1 can prevent the ingress of foreign matter between the jaw segments 7A and the body member 1 and the larger flange 8 can provide an axial location for the core. Since the balls 2 located in the grooves 11 axially locate the jaw segments 7A on the body member 1, it is possible to provide shoulders or flanges on the ends of the jaw segments 7A themselves to axially locate the core. Consversely, in a modified device, neither the jaw segments 7A nor the body member 1 has location flanges and Figures 4 and 5 depict the body member 1 of this device, which is used with the jaw segments 7A and other components depicted in Figures 1 to 3.
Figures 9 and 10 depict another embodiment of a device constructed in accordance with the invention. In Figures 9 and 10 like reference numerals denote like or analogous parts to Figures 1 to 3. The body member 1 of the device shown in Figures 9 and 10 is solid without a through bore and the device is intended to be used in the socalled "shaftless" arrangement. In this application, the core is mounted or supported between a pair of devices, as illustrated in Figures 9 and 1 0. The body member 1 has a tapered end region 6 which is inserted through one end of the core. This region 6 acts as a lead or guide to centralize the core between the body members 1 of the two devices.The body member 1 also has a flange 8 which serves to permit the device to be secured to a rotatable member of a machine frame with the aid of screws or bolts engaged through the bores 1 in the flange 8. The flange 8 may also axially locate the core between the devices. It is, however, possible to drive the body member 1 , for example by engaging a stub shaft within a recess in the end of the body member 1 remote from the end region 6 and by providing key means, such as splines, between the stub shaft and the body member 1. The body member 1 has some ten balls 2 arranged in two-axially spaced groups, each composed of five symmetrically located balls 2. The outer cylindrical structure surrounding the body member 1 and the balls 2 is composed of five jaw segments 7A and having two pairs of inner grooves 11 A shaped, for example, as in Figure 6.Spring clips 1 9 again locate between adjacent ends of the jaw segments 7A. These clips 1 9 are, however, of modified shape compared with those of Figures 1 to 3 having a central outer region non-parallel to the axis of the body member 1 with an outermost curved zone nearest the flange 8. The device operates as described previously in connection with Figures 1 to 3.
Figures 11 and 12 depict a further embodiment in which like reference numerals again denote like or analogous parts to Figures 1 to 3. In contrast to the previous embodiments, the body member 1 of the device shown in Figures 11 and 12 is the cross shaft of the machine itself. The body member 1 or cross-shaft is again provided with balls 2 located in recesses 3 as in Figures 1 to 3. In this embodiment, only two bands 9 are provided to retain the jaw segments (designated 7) on the body member 1 and the spring clips 19 are omitted entirely, as mentioned previously. The grooves (designated 11) receiving the balls 2 here take the shape depicted in Figure 7, but this is exemplary and the shape depicted in Figure 6 could be adopted if desired. The jaw segments 7 in this example also have shoulders 8 at one end which serve to axially locate the core. As shown in Figure 12, when the core is rotated clockwise, the jaw segments 7 move over the balls 2 but as the grooves 11 are shaped as in Figure 7 the trailing ends of the jaw segments 7 are initially raised instead of the leading ends in the case of the embodiment depicted in Figures 1 to 3.
Otherwise, the operation of the device is as described previously.
Figures 13 and 14 depict another embodiment of a device constructed in accordance with the invention. This device also has a hollow cylindrical body member 1 but here a bearing bush or sleeve 1 3 is fixed, e.g., as an interference or press fit inside the bore of the body member 1. The body member 1 is again provided with a plurality of balls 2 in recesses 3 in its outer periphery but here the balls 2, which number five, are arranged in one single group symmetrical about the axis of the body member 1. The body member 1 has end flanges 6 axially locating a cylindrical structure surrounding the body member 1 and composed of five jaw segments 7C. Each jaw segment 7C has a single tapered groove 11 on its inner surface which receives one of the balls 2.The groove 11 may take the form of one of the grooves 11,11 A shown in Figure 6 or 7. The jaw segments 7C are retained and held in their retracted position by means of tension springs 15. The springs 15 are located in recesses 1 8 in the ends of the jaw segments 7C and fixed thereto with the aid of pins 1 6. The device is mounted with its sleeve 1 3 on a cross-shaft 14 so that the body member 1 is rotatable in relation to the shaft 14. The body number 1 is then locked for rotation with the cross-shaft 14 by some other means. Otherwise, the device operates as described previously.The device shown in Figure 13 and 14 is axially compact in relation to the cross-shaft 14 and several separate devices may be mounted on the shaft 14 in spaced relationship, as shown in chain-dotted lines in Figure 13. The devices may locate within one common core or each device may locate within a respective one of a number of short cores carrying parallel webs. The additional means for rotatably coupling the body member 1 to the shaft 1 4 may do so selectively or otherwise. Where several devices are utilized, as illustrated in Figure 1 3 and these receive separate cores, the coupling means can take the form of friction-plate assemblies 1 7 secured to the shaft 14 and located between the devices.These assembiies 1 7 can be clamped together with the devices to permit uniform torque to be transmitted to the cores. Hence, equal tensions to be imparted to the webs entrained around the cores, but a certain amount of slippage can occur.
Figures 1 5 and 16 depict the body member of a further embodiment of the invention where again like reference numerals denote like anaiogous parts to Figures 1 to 3. The body member 1 of Figures 1 5 and 16 is, again, hollow for mounting on a cross-shaft (not shown). Flanges 6 are provided at the ends of the body member 1. The body member 1 has three axially-spaced groups of balls 2 located in recesses 3 in its outer periphery.
Each of the groups of balls 2 is symmetrical but whereas the balls 2 of the endmost groups are longitudinally aligned, the balls 2 of the central groups are offset by, say, 600 relative to the associated aligned balls 2 of the end most groups.
The body member 1 is, again, surrounded by a cylindrical structure composed of three jaw segments with inner grooves located with the balls 2. The jaw segments take the form shown in Figure 8 and designated 7B. The endmost grooves 11 A of the jaw segments 7B locate with the endmost groups of balls 2 on the body member 1 while the grooves 11 locate with the central group of balls 2. It is also possible for each jaw segment 7B to have central grooves of the type denoted 11 A and outer grooves of the type denoted 11. The device operates as described previously but the provision of dissimilar grooves 11, 11 A and the offset groups of balls 2 provide the device with an enchanced range of expansion, since whatever direction the core is partly rotated in the jaw segments 78 are subjected to force as they move over the balls 2 which tends to raise both the leading and trailing ends of the jaw segments 7B simultaneously, thereby ensuring the core is reliably gripped more quickly.

Claims (24)

1. An expandible device for internally gripping cores or the like; said device comprising a body member; a cylindrical stru-cture surrounding the body member, the cylindrical structure being composed of a plurality of jaw segments, means for retaining the jaw segments on the body member and balls locating in grooves of tapered depth between the body member and the jaw segments whereby rotation or relative partial rotation between the cylindrical structure and the body member causes the balls to become located in shallower regions of the grooves to move the jaw segments outwardly from the body member.
2. An expandible device for internally gripping cores or the like; said device comprising a body member, a cylindrical structure surrounding the body member, the cylindrical structure being composed of a plurality of jaw segments, means for retaining the jaw segments on the body member, balls located in recesses in the outer surface of the body member, grooves of tapered depth in the inner surfaces of the jaw segments, the balls mating and locating within the grooves whereby rotation or relative partial rotation between the cylindrical structure and the body member causes the balls to become located in shallower regions of the grooves to move the jaw segments outwardly from the body member.
3. A device according to Claim 1, wherein the balls are located between one of said grooves and a shaped recess.
4. A device according to Claims 2 or 3, wherein said recesses are hemispherical at least over inner regions contacting the balls.
5. A device according to Claims 2, 3 or 4, wherein the recesses are defined by inserts.
6. A device according to any one of Claims 1 to 5, wherein said retention means is resilient and holds the jaw segments in a contracted position with the balls located in the deepest regions of the grooves.
7. A device according to Claim 6, wherein said resilient means takes the form of endless bands engaging in grooves in the exterior of the jaw segments.
8. A device according to Claim 6, wherein said resilient means takes the form of tension springs connected between the jaw segments.
9. A device according to any one of Claims 1 to 7, wherein the jaw segments are separated by gaps between their ends.
10. A device according to Claim 9, and further comprising spring clips located between the ends of adjacent jaw segments, the spring clips projecting radially outwardly beyond the jaw segments so as to be able to contact the interior of a core and serving to impart corresponding partrelative rotation between the body member and the cylindrical structure upon part-rotation of the core.
11. A device according to Claim 1 or 2, and further comprising means for urging the jaw segments apart to bring the balls into the shallower regions of the grooves upon relative rotation between the body member and the cylindrical structure.
12. A device according to any one of Claims 1 to 11, wherein the body member is hollow and can be mounted on a rotational cross shaft which can drive a core engaged on the cylindrical structure.
1 3. A device according to any one of Claims 1 to 11 , wherein the body member is constituted by a rotational cross-shaft which can drive a core engaged on the cylindrical structure.
14. A device according to any one of Claims 1 to 13, wherein the balls are arranged in groups spaced-apart axially of the body member with the balls of each group being arranged symmetrically.
1 5. A device according to Claim 14, wherein the balls of one group are each aligned longitudinally of the body member with a ball of another group.
1 6. A device according to Claim 1 5, wherein the balls of a further group are each offset with the correspondingly aligned balls of the other groups.
1 7. A device according to any one of Claims 1 to 16, wherein the balls and grooves are arranged to bring the balls into successively shallower regions of the grooves upon part-rotation of the cylindrical structure in either rotational direction relative to the body member.
1 8. A device according to any one of Claims 1 to 17, wherein the body member or the cylindrical structure has at least one flange for axially locating a core engaged on the cylindrical structure.
19. A device according to any one of Claims 1 to 17, wherein the body member has flanges which axially locate the cylindrical structure
20. A device according to Claim 2, wherein each jaw segment has one or more of said grooves and at least one ball engages in the or each groove of each jaw segment.
21. A device according to Claim 20, wherein the balls are arranged in one or more groups symmetrical about the body member and the total number of balls in the or each group corresponds with the number of jaw segments.
22. A web driving arrangement employing one or more devices constituted in accordance with any one of the preceding claims.
23. A device substantially as described with reference to, and as illustrated in, Figures 1 to 3 or Figures 9 and 10 or Figures 11 and 12 or Figures 13 and 14 of the accompanying drawings in conjunction with Figures 6 or 7 of the accompanying drawings or Figures 1 to 3 as modified by Figures 4 and 5 or by Figures 15, 16 and 8 of the accompanying drawings.
24. An essential component of a device substantially as described with reference to and as illustrated in any one or more of the Figures of the accompanying drawings.
GB7937698A 1978-11-08 1979-10-31 Expandible devices for internally gripping cores or the like Expired GB2034860B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB7937698A GB2034860B (en) 1978-11-08 1979-10-31 Expandible devices for internally gripping cores or the like

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB7843644 1978-11-08
GB7937698A GB2034860B (en) 1978-11-08 1979-10-31 Expandible devices for internally gripping cores or the like

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GB2034860A true GB2034860A (en) 1980-06-11
GB2034860B GB2034860B (en) 1983-01-19

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2224813A (en) * 1988-11-14 1990-05-16 David Blackburn Expandible device for internally gripping cores or the like
EP2300344A1 (en) * 2008-07-23 2011-03-30 Sca Hygiene Products AB An end plug for coreless paper rolls

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2224813A (en) * 1988-11-14 1990-05-16 David Blackburn Expandible device for internally gripping cores or the like
GB2224813B (en) * 1988-11-14 1992-09-30 David Blackburn Expandible device for internally gripping cores or the like
EP2300344A1 (en) * 2008-07-23 2011-03-30 Sca Hygiene Products AB An end plug for coreless paper rolls
EP2300344A4 (en) * 2008-07-23 2014-01-08 Sca Hygiene Prod Ab An end plug for coreless paper rolls
US9642504B2 (en) 2008-07-23 2017-05-09 Sca Hygiene Products Ab End plug for coreless paper rolls

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Publication number Publication date
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PE20 Patent expired after termination of 20 years

Effective date: 19991030