[0001] This invention relates to tubular core assemblies for rolls of paper or other sheet
material.
BACKGROUND OF THE INVENTION
[0002] Tubular core assemblies which have a hollow cylindrical core member of paper board
material and an annular end member of plastic material within each opposite end portion
of the core member are known, see for example U.S. Patent No. 5,236,141 issued August
17, 1993, U.S. Patent No. 5,595,356 issued January 21, 1997, U.S. Patent No. 5,615,845
issued April 1, 1997, U.S. Patent No. 5,725,178 issued March 10, 1998 and U.S. Patent
No. 5,829,713 issued November 3, 1998.
[0003] U.S. Patent No. 5,615,845 and U.S. Patent No. 5,829,713 mentioned above are particularly
concerned with tubular core assemblies intended for mounting on chucks having radially
movable portions which are movable radially outwardly to engage the inner surface
of a tubular core assembly and on chucks which are movable under axial pressure into
engagement with the ends of the tubular core assembly. Some of the tubular core assemblies
described in these two prior patents are also suitable for use with chucks having
a single key which engages in a notch in the tubular core assembly.
[0004] In the printing industry, paper rolls have until recently usually been mounted on
chucks by means of equipment which is manually controlled. However, equipment which
automatically mounts paper rolls on chucks without requiring manual control is now
being provided in press rooms. When such automated equipment is used, chucks without
keys are moved under axial pressure into engagement with the ends of a tubular core
assembly, because it is difficult to mount a paper roll on chucks with keys with such
automated equipment.
[0005] For various reasons, it is advantageous to use with such automated equipment tubular
core assemblies which comprise a hollow cylindrical core member of paperboard material
with an annular end member of plastic material within each opposite end portion thereof.
As described in the previously mentioned prior patents, each annular end member is
provided with at least one radially-projecting lug adjacent an end thereof which is
engaged in a lug-receiving notch in the core member to facilitate transmission of
torque and axial chuck pressure from the end member to the core member. The prior
patents also teach that each annular end member should preferably be provided with
a pair of notches at diametrically opposite positions for receiving a key of a roll
supporting chuck.
[0006] When automated equipment is used to mount paper rolls on axially movable chucks without
keys in a press room, it has been found to be necessary for the chucks to engage the
ends of the tubular core assemblies with very high continuous axial or radial pressure
for efficiently transmitting torque thereto, especially when very heavy paper rolls
are used, for example paper rolls having a weight when fully wound of about 3,000
lbs. (approximately 13.3 KN) or more.
[0007] It has been found that, when tubular core assemblies with end members as described
above are subjected to such very high continuous axial or radial pressure, the transmission
of such pressure through the annular end members to the core member may cause the
core member to become distorted under continuous static and/or dynamic loads. Since
the core members of heavy paper rolls may be of considerable length, for example about
5 feet (approximately 1.52 m) or longer, such distortion may cause serious problems
with roll unwinding at high speed during a printing operation, especially if the rolls
are slightly out of round.
[0008] It is therefore an object of the invention to provide a tubular core assembly comprising
a core member with annular end members which is more suitable for use with automated
roll mounting equipment.
[0009] US-A-5 595 356 discloses an annular end member of plastic material for insertion
into an end portion of a hollow cylindrical core member of a tubular core assembly
for a roll of paper or other sheet material, said end member having an outer annular
surface securable to an inner annular surface of a core member, an inner annular surface
shaped to receive a roll supporting chuck and at least two radially-projecting lugs
adjacent an end thereof positioned so as to be rotatably balanced and engageable in
lug-receiving notches in a core member.
[0010] US-A-5 393 010 discloses an annular member that has an inner annular surface that
is tapered to provide two taper angles. The tapered surface is preferably provided
with grooves or notches to receive a spline or the like on a reel stub shaft.
SUMMARY OF INVENTION
[0011] The present invention is based on the discovery that the problem mentioned above
is substantially reduced if each plastic annular end member has at least two radially
projecting lugs adjacent an end thereof positioned so as to be rotatably balanced,
i.e. equi-angularly spaced around the end member, and also has an inner annular surface
at said end which is continuous and of constant radius around the circumference thereof,
thereby maximizing the cylindrical hoop strength of the annular end member.
[0012] The annular end member may have a pair of radially-projecting lugs which are diametrically
opposite, or may have three radially-projecting lugs angularly spaced at 120° intervals,
or may have four radially-projecting lugs angularly spaced at 90° intervals.
DESCRIPTION OF THE DRAWINGS
[0013] Embodiments of the invention will now be described, by way of example, with reference
to the accompanying drawings, of which:
Fig. 1 is an exploded view of one end portion of a tubular core assembly in accordance
with one embodiment of the invention;
Fig. 2 is a perspective view of the tubular core assembly of Fig. 1 in an assembled
condition;
Fig. 3 is an exploded view of one end portion of a tubular core assembly in accordance
with a second embodiment;
Fig. 4 is a perspective view of the tubular core assembly of Fig. 3 in an assembled
condition;
Fig. 5 is an exploded view of one end portion of a tubular core assembly in accordance
with a third embodiment; and
Fig. 6 is a perspective view of the tubular core assembly of Fig. 5 in an assembled
condition.
DESCRIPTION OF PREFERRED EMBODIMENTS
[0014] Referring to the drawings, Figs. 1 and 2 show one end portion of a tubular core assembly
for a paper roll which comprises a hollow cylindrical core member 12 of paperboard
material, and an annular end member 14 of synthetic plastic material with a sleeve
portion 16 within each opposite end portion of the core member 12. The core member
12 has multiple spirally-wound wraps (i.e. laminated plies) of paperboard material,
and the synthetic plastic material may be of suitable polymeric material such as injection
moulding grade 25% glass filled nylon type 6.
[0015] The sleeve portion 16 of each end member 12 has an outer annular surface which is
a compression fit, i.e. a friction fit, in a respective end portion of the core member
12. Each end member 14 has a pair of diametrically opposite solid lugs 18, 20 of rectangular
section projecting radially outwardly from the end of the sleeve portion 16 at the
end of the core member 12. The lugs 18, 20 are located in diametrically opposite notches
22, 24 of rectangular section in the end of the core member 12, and rotationally equalize
continuous torque and axial pressure from the end members 14 to the core member 12.
The lugs 18, 20 are the same size as the notches 22, 24 so as to be a close fit therein.
[0016] Each end member 14 also has an end surface 26 adjacent the respective end 28 of the
core member 12, and the end surface 26 has a radially inwardly and rearwardly bevelled
radially inner portion 30 for engagement by a chuck (not shown) inserted into the
end member 16.
[0017] Each end member 14 has an internal diameter in the range of about 3 to about 6 inches
(approximately 76.2 to 152.4 mm), an outer diameter in the range of from about 3.25
to about 7 inches (approximately 82.5 to 177.8 mm) and a length in the range of from
about 1.5 to about 6 inches (approximately 38.1 to 152.4 mm). The core member 12 has
an outer diameter in the range of from about 4 to about 9 inches (approximately 101.6
to 228.6 mm) and a length in the range of from about 2 to about 10 feet (approximately
609.6 to 3048 mm). The ratio of end member roll thickness to core member thickness
is in the range of from about 0.75:1 to about 1.5:1.
[0018] The lugs 18, 20 each have a height above the outer annular surface of the end member
14 in the range of from about 0.2 to about 1 inch (approximately 5.08 to 25.4 mm),
a circumferential width in the range of from about 0.25 to about 3 inches (approximately
6.35 to 76.2 mm), and an axial length in the range of from about 0.5 to about 4 inches
(approximately 12.7 to 101.6 mm). The notches 22,24 are of course similarly sized.
[0019] In a specific example of the invention, the sleeve member 16 of each end member 14
has an internal diameter of 3 inches (approximately 76.2 mm), an external diameter
of 3.75 inches (approximately 95.25 mm) and a length of 3 inches (approximately 76.2
mm). The core member 12 has an outer diameter of 4.4 inches (approximately 111.7 mm)
and a length of 4.5 ft (approximately 1371 mm), and the ratio of end member roll thickness
to core member thickness is 1.15:1. Each lug 18, 20 has a height above the outer annular
surface of the end member 14 of 0.325 inches (approximately 8.2 mm), a circumferential
width of 0.75 inches (approximately 19.05 mm), and an axial length of 0.75 inches
(approximately 19.05 mm). The notches 22, 24 are of course of substantially the same
size.
[0020] Each end member 14 has no notches and thus has an inner surface 32 extending throughout
the length of the annular member 14 which is continuous and of constant radius around
the circumference thereof, thereby reducing the likelihood of distortion of the end
member 14 and consequent distortion of the core member 12 when the tubular core assembly
is used with a heavy paper roll. It is also advantageous that each lug 18, 20 is solid.
[0021] Figs. 3 and 4 show a further embodiment which is generally similar to the embodiment
shown in Figs. 1 and 2, except that each end member 14 has three solid lugs 18,19,20
spaced at 120° intervals around the end member and the core member 12 has three similarly
located notches 22, 23, 24.
[0022] Figs. 5 and 6 show a further embodiment which is generally similar to the previous
embodiments, except that the end member 14 has four lugs 18, 19, 20, 21 spaced at
90° intervals around the end member 14 and the core member 12 has four similarly positioned
notches 22, 23, 24, 25.
[0023] Other embodiments of the invention will be readily apparent to a person skilled in
the art, the scope of the invention being defined in the appended claims.
1. An annular end member (14) of plastic material for insertion into an end portion of
a hollow cylindrical core member of a tubular core assembly for a roll of paper or
other sheet material, said end member having an outer annular surface securable to
an inner annular surface of a core member, an inner annular surface shaped to receive
a roll supporting chuck and at least two radially-projecting lugs (18,19,20,21) adjacent
an end thereof positioned so as to be rotatably balanced and engageable in lug-receiving
notches in a core member, characterised by an inner annular surface (32) at said end which is continuous and of constant radius
around the circumference thereof.
2. An annular end member according to claim 1, having two diametrically opposite radially-projecting
lugs.
3. An annular end member according to claim 1, having three radially-projecting lugs
at 120° intervals.
4. An annular end member according to claim 1, having four radially-projecting lugs at
90° intervals.
5. An annular end member according to claim 1, having an internal diameter in the range
of from about 3 to about 6 inches (approximately 76.2 to 152.4 mm), an outer diameter
in the range of from about 3.25 to about 7 inches (approximately 82.5 to 177.8 mm)
and a length in the range of from about 1.5 to about 6 inches (approximately 38.1
to 152.4 mm), each lug being solid and having a height above the outer annular surface
in the range of from about 0.2 to about 1 inch (approximately 5.08 to 25.4 mm), a
circumferential width in the range of from about 0.25 to about 3 inches (approximately
6.35 to 76.2 mm), and an axial length in the range of from about 0.5 to about 4 inches
(approximately 12.7 to 101.6 mm).
6. A tubular core assembly for a roll of paper or other sheet material having:
a hollow cylindrical core member (12) formed of paperboard material and a respective
annular end member (14) as claimed in any one of the preceding claims within each
opposite end portion of the core member, the outer annular surface of each end member
being secured to the inner annular surface of the core member and said lugs being
received in respective lug-receiving notches (22,23,24,25) defined by the core member
to rotationally equalize continuous torque and axial chuck pressure from each end
member to the core member.
1. Ein ringförmiges Endelement (14) aus Kunststoffmaterial zur Einfügung in den Endabschnitt
eines hohlen zylindrischen Kemelements einer röhrenförmigen Kern-Montagegruppe für
eine Rolle Papier oder sonstiges Bahnenmaterial, wobei besagtes Endelement eine ringförmige
Außenfläche, die an eine ringförmige Innenfläche eines Kernelements anfügbar ist,
eine ringförmige Innenfläche, die eine Spannzeug tragende Rolle aufnehmen kann und
an ein Ende angrenzend mindestens zwei radial hervorstehende Ansätze (18, 19, 20,
21) besitzt, die so positioniert sind, dass sie rotierend balanciert sind und in ansatzaufnehmende
Aussparungen eines Kemelements eingefügt werden können, das an besagtem Ende durch
eine ringförmige Innenfläche (32) gekennzeichnet ist, die kontinuierlich ist und um ihren Umfang einen gleichbleibenden Radius hat.
2. Ein ringförmiges Endelement gemäß Patentanspruch 1, das zwei sich diametrisch gegenüberliegende
radial hervorstehende Ansätze hat.
3. Ein ringförmiges Endelement gemäß Patentanspruch 1, das in Abständen von 120° drei
radial hervorstehende Ansätze hat.
4. Ein ringförmiges Endelement gemäß Patentanspruch 1, das in Abständen von 90° vier
radial hervorstehende Ansätze hat.
5. Ein ringförmiges Endelement gemäß Patentanspruch 1, das einen Innendurchmesser zwischen
ungefähr 3 und 6 Zoll (ungefähr 76,2 bis 152,4 mm), einen Außendurchmesser zwischen
ungefähr 3,25 und 7 Zoll (ungefähr 82,5 bis 177,8 mm) und eine Länge zwischen ungefähr
1,5 und 6 Zoll (ungefähr 38,1 bis 152,4 mm) besitzt, wobei jeder Ansatz fest ist und
im Sinne der ringförmigen Außenfläche ungefähr 0,2 bis 1 Zoll (ungefähr 5,08 bis 25,4
mm) hoch, im Sinne der Umfangbreite ungefähr 0,25 bis 3 Zoll (ungefähr 6,35 bis 76,2
mm) breit und im Sinne der Axiallänge ungefähr 0,5 bis 4 Zoll (ungefähr 12,7 bis 101,6
mm) lang ist.
6. Eine röhrenförmige Kern-Montagegruppe für eine Rolle Papier oder sonstiges Bahnenmaterial
mit:
einem hohlen zylindrischen Kernelement (12) aus Kartonagematerial und jeweils einem
ringfömigen Endelement (14) gemäß vorstehender Patentansprüche innerhalb jedes gegenüberliegenden
Endabschnitts des Kernelements, wobei die ringförmige Außenfläche jedes Endelements
an die ringförmige Innenfläche des Kemelements festgemacht ist und die besagten Ansätze
in die vom Kernelement definierten ansatzaufnehmenden Aussparungen (22, 23, 24, 25)
eingefügt werden, um die kontinuierliche Drehkraft und den Spannzeug-Axialdruck vom
jeweiligen Endelement zum Kernelement rotationsmäßig auszugleichen.
1. Un élément d'extrémité annulaire (14) en matière plastique pour insertion dans la
partie d'extrémité de la cavité cylindrique d'un noyau tubulaire utilisé pour des
bobines de papier ou autres matériaux en feuille mince, ledit élément d'extrémité
comportant une surface externe annulaire pouvant s'assujetir sur une surface interne
annulaire d'un noyau, une surface interne annulaire dont la forme lui permet de recevoir
un mandrin porte-bobine et au moins deux clavettes radiales en saillie (18, 19, 20,
21) adjacentes à une extrémité et positionnées de manière qu'elles soient équilibrées
en rotation et qu'elles puissent s'engager dans des encoches destinées à les recevoir
d'un noyau, caractérisé par une surface interne annulaire (32) à ladite extrémité qui est continue et de rayon
constant sur la circonférence.
2. Un élément d'extrémité annulaire selon la revendication 1, comportant deux clavettes
radiales en saillie, diamétralement opposées.
3. Un élément d'extrémité annulaire selon la revendication 1, comportant trois clavettes
radiales en saillie réparties à 120°.
4. Un élément d'extrémité annulaire selon la revendication 1, comportant quatre clavettes
radiales en saillie réparties à 90°.
5. Un élément d'extrémité annulaire selon la revendication 1, avec diamètre interne d'environ
3 pouces à environ 6 pouces (approximativement 76,2 à 152,4 mm), diamètre externe
d'environ 3,25 à environ 7 pouces (approximativement 82,5 à 177,8 mm) et une longueur
d'environ 1,5 à environ 6 pouces (approximativement 38,1 à 152,4 mm), chaque clavette
étant massive et ayant une hauteur au-dessus de la surface annulaire externe d'environ
0,2 à environ 1 pouce (approximativement 5,08 à 25,4 mm), une largeur circonférencielle
d'environ 0,25 à environ 3 pouces (approximativement 6,35 à 76,2 mm), et une longueur
axiale d'environ 0,5 pouce à environ 4 pouces (approximativement 12,7 à 101,6 mm).
6. Un noyau tubulaire utilisé pour des bobines de papier ou autres matériaux en feuille
mince, comportant :
un noyau à cavité cylindrique (12) constitué d'un matériau de carton et d'un élément
d'extrémité annulaire correspondant (14) conformément à chacune des revendications
précédentes dans chacune des extrémités opposées du noyau, la surface annulaire externe
de chaque élément d'extrémité étant assujettie sur la surface interne annulaire du
noyau et lesdites clavettes s'engageant dans des encoches correspondantes destinées
à les recevoir (22, 23, 24, 25) et définies par le noyau pour l'égalisation rotationnelle
du couple continu et de la pression axiale du mandrin entre chaque élément d'extrémité
et le noyau.