Machine and method for carrying out one operation on articles
10118772 ยท 2018-11-06
Assignee
Inventors
Cpc classification
B65C9/0062
PERFORMING OPERATIONS; TRANSPORTING
B65G43/08
PERFORMING OPERATIONS; TRANSPORTING
B65G29/00
PERFORMING OPERATIONS; TRANSPORTING
B65C9/1876
PERFORMING OPERATIONS; TRANSPORTING
B65C9/02
PERFORMING OPERATIONS; TRANSPORTING
B65C3/16
PERFORMING OPERATIONS; TRANSPORTING
B65C9/1815
PERFORMING OPERATIONS; TRANSPORTING
B65G47/28
PERFORMING OPERATIONS; TRANSPORTING
B29C49/4205
PERFORMING OPERATIONS; TRANSPORTING
B65C9/1819
PERFORMING OPERATIONS; TRANSPORTING
B65C3/163
PERFORMING OPERATIONS; TRANSPORTING
B65C3/14
PERFORMING OPERATIONS; TRANSPORTING
B65C3/26
PERFORMING OPERATIONS; TRANSPORTING
Y10T156/1744
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T156/1771
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B65C9/1884
PERFORMING OPERATIONS; TRANSPORTING
B65C9/1826
PERFORMING OPERATIONS; TRANSPORTING
B65C3/06
PERFORMING OPERATIONS; TRANSPORTING
Y10T156/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B65G29/00
PERFORMING OPERATIONS; TRANSPORTING
B65C9/00
PERFORMING OPERATIONS; TRANSPORTING
B65G47/28
PERFORMING OPERATIONS; TRANSPORTING
B29C49/42
PERFORMING OPERATIONS; TRANSPORTING
B65C9/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A machine for carrying out at least one operation onto a first article and a second article is disclosed. The machine comprises feeding means for advancing a succession of the first article and the second article along a path and with a first speed; a first operative group, which comprises a first tool configured for carrying out operation onto the first article and which can be operated with a second speed associated to the first speed; gap creating means selectively controllable to create a first gap, which is arranged inside succession and is bounded between the first article and the second article; and a second operative group, which comprises a second tool configured for carrying out operation onto the second article and which can be operated at the second speed.
Claims
1. A labelling machine for applying at least one first label onto a first article and at least one second label onto a second article, comprising: a carousel rotatable about a vertical axis and configured to advance a succession of spaced-apart articles including the first article and the second article along an arc-shaped path at a first tangential speed; an input station configured to feed the articles to be labelled to the carousel; an output station configured to receive labelled articles exiting the carousel, wherein the path extends between the input station and the output station; a first labelling assembly located at a first application station and having a first transfer mechanism, the first transfer mechanism being configured to apply the first label onto the first article and operable at a second tangential speed, the first labelling assembly being configured to feed labels to the first transfer mechanism, and the first labelling assembly being movable between: an operative position, in which the first transfer mechanism transfers labels onto the articles advanced along the path, and an inoperative position, in which the first transfer mechanism is separated from the first application station and prevented from transferring labels onto the articles; a gap-creating mechanism configured to create a predetermined gap in the succession of spaced articles advancing along the path, the gap being a distance bounded by an adjacent downstream article and an adjacent upstream article; a second labelling assembly located at a second application station and having a second transfer mechanism, the second transfer mechanism being configured to apply the second label onto the second article at the second tangential speed, the second labelling assembly being configured to feed labels to the second transfer mechanism, and the second labelling assembly being movable between: an operative position, in which the second transfer mechanism transfers labels onto the articles advanced along the path, and an inoperative position, in which the second transfer mechanism is separated from the second application station and prevented from transferring labels onto the articles; and a control unit programmed to: decelerate the first labelling assembly from the second tangential speed and move the first labelling assembly from the operative position to the inoperative position after labelling the downstream article; and accelerate the second labelling assembly up to the second tangential speed and move the second labelling assembly from the inoperative position to the operative position for labelling the upstream article and successive articles to be labelled, wherein the control unit decelerates the first labelling assembly from the second tangential speed and accelerates the second labelling assembly up to the second tangential speed when the gap-creating mechanism creates the predetermined gap between the at least one first article and the at least one second article.
2. The machine of claim 1, wherein the control unit is programmed to perform at least one of the following: decelerate the first transfer mechanism from the second tangential speed, after the first labelling assembly has carried out the labelling operation onto the downstream article; or accelerate the second transfer mechanism up to the second tangential speed, before the second labelling assembly has carried out the labelling operation onto the upstream article.
3. The machine of claim 1, wherein at least one of the first labelling assembly and the second labelling assembly is movable along a direction transversal to the path towards and away from the first application station and second application station, respectively.
4. The machine of claim 1, wherein at least one: the first tangential speed is substantially constant; or the second tangential speed substantially equals the first tangential speed.
5. The machine of claim 1, further comprising a sensor configured to generate a signal associated with the operation of the first or second labelling assemblies being interrupted; the gap creating mechanism being controllable to create the gap in response to the signal.
6. The machine of claim 1, wherein the gap creating mechanism includes an expelling device for expelling at least one article upstream of the first labelling assembly and the second labelling assembly, proceeding according to an advancing direction of the articles.
7. A plant for producing the first article and the second article, comprising: a second carousel configured to advance a succession of a first pre-form and a second pre-form; a blowing unit for blowing the first pre-form and the second pre-form, so as to form the first article and the second article; a machine according to claim 1, wherein the carousel is a first carousel and the gap is a first gap; and the gap creating mechanism being configured to create a second gap inside the succession of the first pre-form and the second pre-form.
8. The machine of claim 1, wherein the first transfer mechanism and the second transfer mechanism each comprise: a drum rotatable about an axis for transferring labels from the first or second labelling group onto the articles advanced along the path; and a diverting device movable between a first configuration, in which the diverting device enables the drum to transfer labels onto the articles to be labelled, and a second configuration, in which the diverting device prevents the drum from transferring labels onto the articles to be labelled.
9. The machine of claim 8, further comprising a label discarding station, the drum being configured to transfer labels from the first or second labelling assembly to the label discarding station when the diverting device is located in the second configuration.
10. The machine of claim 9, wherein the label discarding station comprises a device for removing discarded labels from the drum.
11. The machine of claim 1, wherein the control unit is programmed to: move the first labelling assembly from the operative position to the inoperative position after transfer of a label from the first application station to the downstream article; and move the second labelling assembly from the inoperative position to the operative position before the upstream article reaches the second application station, whereby none of the succession of spaced articles remains unlabeled.
12. The machine of claim 8, further comprising a label discarding station, wherein the control unit is programmed to: move the first labelling assembly from the operative position to the inoperative position after transfer of a label from the first application station to the downstream article; and move the second labelling assembly from the inoperative position to the operative position before the upstream article reaches the second application station, whereby none of the succession of spaced articles remains unlabeled.
13. The machine of claim 12, wherein the drum transfers at least the first and second labels from the first or second labelling assembly to the label discarding station when the diverting device is located in the second configuration, and wherein the discarding station comprises a suction device.
Description
(1) In the following a preferred, non-limiting embodiment of the present invention will be described by way of example with reference to the accompanying drawings, in which:
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(14) Number 1 in
(15) In the embodiment shown, machine 1 is a labelling machine for applying labels 10a, 10b to respective articles 11, 11a, 11b (shown in
(16) In the following of the present description, machine 1 will be recalled as labelling machine 1.
(17) In particular, labelling machine 1 is a so-called roll-fed labelling machine.
(18) Labelling machine 1 substantially comprises (
(19) Labelling machine 1 is incorporated in a plant 100 for producing labelling articles 11, 11a, 11b.
(20) Plant 100 is only partially shown in
(21) Alternatively, labelling machine 1 could be interposed between the blowing machine and the filling machine.
(22) In particular, conveying line 160 is shown only with reference to a conveyor 101 for feeding a plurality of pre-forms 108 and carousel 3.
(23) Conveying line 160 further comprises further conveyors (not-shown) interposed between conveyor 101 and carousel 3 as well further conveyor (not-shown) upstream of conveyor 101 and downstream of carousel 3, proceeding according to the advancing direction of pre-forms 3 and articles 11a, 11b, 11.
(24) Preferably, conveyor 101, carousel 3 and the other conveyors are operatively connected to each other, so that their speed are directly dependent on one another.
(25) In other words, conveying line 160 preferably does not contain any buffer of stationary pre-forms 108 or articles 11, 11a, 11b.
(26) Furthermore, carousel 3 travels along path P substantially with a constant nominal speed V0. The expression nominal speed indicates that carousel 3 travels at speed V0, after the start-up step and before the slowing down step of labelling machine 1.
(27) In addition, it is important to note that nominal speed of carousel 3 can oscillate up and down speed V0, within a slight range, e.g. 10%.
(28) In the present description, the term speed indicates tangential speed of articles 11, 11a, 11b.
(29) In greater detail, path P comprises: an input station I, at which carousel 3 is fed with articles 11, 11a, 11b to be labelled; and an output station O, at which carousel 3 outputs labelled articles 11, 11a, 11b.
(30) Proceeding according to the advancing direction of articles 11, 11a, 11b from station I to station O, path P comprises: an application station B2; and an application station B1.
(31) In the embodiment shown, path P is shaped as an arch of circumference having centre on axis A.
(32) Labelling groups 4, 5 are arranged peripherally with respect to carousel 3.
(33) Each labelling groups 4, 5 substantially comprises (
(34) Labelling group 4 can be selectively arranged in a first operative position (
(35) Advantageously, labelling machine 1 comprises a gap creating element 110 (
(36) Furthermore, labelling group 4 is selectively arrangeable in a first rest configuration (
(37) Labelling group 5 is selectively movable between: a second operative configuration, in which it transfers labels 10b to respective articles 11b at application station B2 (
(38) In particular, before gap 82 is created, one (4 in
(39) When gap 82 is created, labelling group 4 (5) previously acting as the master labelling group is moved to the first (second) rest configuration and becomes the slave labelling group, while labelling group 5 (4) acting as the slave labelling group moves to the second (first) operative configuration and becomes the master labelling group.
(40) As it will be evident in the following of the present description, when labelling group 4 (5) is in the first (second) operative configuration, transfer element 13 transfers labels 10a (10b) to first (second) articles 11a (11b) at application station B1 (B2), and transfer element 13 is tangent to articles 11a (11b) travelling along path P at application station B1 (B2).
(41) Conversely, when labelling group 4 (5) is in the first (second) rest configuration, transfer element 13 is prevented from transferring labels 10a (10b) to first (second) articles 11a (11b) at application station B1 (B2), and transfer element 13 is spaced from application station B1 (B2).
(42) In greater detail, gap 82 is bounded by an adjacent downstream article 11a and an immediately adjacent upstream article 11b, proceeding according to the advancing direction of articles 11, 11a, 11b along path P.
(43) With reference to
(44) Furthermore, control unit 60 is programmed for moving labelling group 5 from the second rest configuration to the second operative configuration, before labelling group 5 transfers labels 10b onto immediately adjacent upstream article 11b (
(45) Control unit 60 is also programmed for moving first labelling group 4 from the first operative position to the first rest position and for moving labelling group 5 from the first rest position to the second operative position, when gap 82 travels along path P and between application stations B1, 82 (
(46) In this way, none of articles 11a, 11b remain unlabelled.
(47) Labelling machine 1 further comprises (
(48) Furthermore, gap creating element 110 comprises a switch 111 (only schematically shown) for interrupting the flow of pre-forms 108 along conveyor 101 and for creating, therefore, a gap 109 inside that flow.
(49) In particular, switch 111 is operated to interrupt the flow of pre-forms 108 along conveyor 101, as a consequence of the signal generated by sensor 80.
(50) Starting from a situation in which labelling group 4 is in the first operative configuration and labelling group 5 is in the second rest configuration, control unit 60 is programmed, as a consequence of the signal generated by sensor 80 (as shown in
(51) In particular, control unit 60 is programmed for: moving transfer element 13 (and therefore strip 8) of labelling group 4 (5) at a substantially highest speed V1, when the latter is in the operative configuration; decelerating transfer element 13 (and therefore strip 8) of labelling group 4 (5) from highest speed V1 to a speed V2 lower than speed V1 and then to a null speed, so as to allow the splicing of a new reel 7b to the existing reel 7a.
(52) Highest speed V1 is associated to speed V0 of carousel 3. In the embodiment shown, speed V1 equals speed V0.
(53) Control unit 60 is also programmed, after the joining of new reel 7b to reel 7a, and with the labelling group 4 (5) in the rest position, for: moving transfer element 13 (and therefore strip 8) of labelling group 4 (5) at speed V2 lower than highest speed V1; accelerating transfer element 13 (and therefore strip 8) of labelling group 4 (5) at a third speed V3 higher than speed V2 and lower than highest speed V1; and decelerating transfer element 13 (and therefore strip 8) of labelling group 4 (5) up to a null speed.
(54) Furthermore, control unit 60 is programmed for accelerating transfer element 13 of labelling group 5 (4) from a null-speed to highest speed V1 according a linear ascending ramp (
(55) In particular, as shown in
(56) With reference to
(57) In particular, expelling device 115 expels articles 11, as a consequence of the signal generated by sensor 85.
(58) Expelling device 120 expels articles 11a, 11b, as a consequence of the signal generated by sensor 85.
(59) Control unit 60 is programmed, as a consequence of the signal generated by sensor 85, for (
(60) Furthermore, control unit 60 is programmed, while transfer element 13 of labelling group 4 (5) moves from the first (second) operative configuration to the first (second) rest configuration, for: decelerating transfer element 13 of labelling group 4 (5) form highest first speed V1 to a null speed, according to a linear descending ramp in the embodiment shown (
(61) Preferably, transfer element 13 (and therefore strip 8) of labelling group 4 (5) stops, before labelling group 4 (5) reaches the first (second) rest position.
(62) In a completely analogous way, transfer element 13 (and therefore strip 8) of labelling group 5 (4) preferably reaches highest first speed V1, before labelling group 4 (5) reaches the second (first) operative position.
(63) In particular, transfer system 13 transfers labels 10a, 10b to be applied on respective articles 11a, 11b from input station J to transfer station H, whereas it transfers labels 10a, 10b to be discarded from input station J to discarding station D (
(64) During application of labels 10a, 10b on relative articles 11a, 11b transfer element 13 of labelling group 4, 5 is arranged in an operative position, in which trajectory Q is tangent to articles 11a, 11, 11b travelling along path P at application station B1 (B2).
(65) In greater detail, when transfer element 13 of labelling group 4, 5 is in the operative position, transfer station H is coincident with application station B1, B2.
(66) Discarding station D is arranged downstream of transfer station H, proceeding according to the advancing rotation direction of drum 15.
(67) Application station B1, B2 is arranged at a first angular distance from input station J and discarding station D is arranged at a second angular distance form station J. The second angular distance is greater than the first angular distance (
(68) Axis C is parallel and distinct from axis A.
(69) With reference to
(70) Visual control system 150 controls the correct positioning of labels 10a, 10b in sucking device 21 at discarding station D. Alternatively or in combination, visual control system 150 controls the positioning of labels 10a, 10b on drum 15, upstream of cutting element 9.
(71) Stator 14 comprises, in turn, a plurality of vacuum sources arranged in respective stationary channels 30a, 30b shaped as arch having centre on axis C (
(72) Drum 15 is independently driven by a motor (not shown) about axis C.
(73) Drum 15 comprises, in turn, a lateral outer surface 18 extending cylindrically about axis C.
(74) Surface 18 comprises a plurality, five in the embodiment shown, of conveying sections adapted to convey respective labels 10a, 10b along the arch-shaped trajectory.
(75) Each conveying section is circumferentially bounded by an upstream elastic pad and by a downstream elastic pad, which are angularly spaced from one another.
(76) Drum 15 comprises (
(77) Channels 30a, 30b; 31 extend at given distances from axis A and for given arches about axis C.
(78) In particular, for some angular positions of drum 15, one of channels 31 is superimposed to at least one respective channel 30a, 30b.
(79) In this way, air ports 17 are connected to the vacuum source and can exert a suction action on label 10a, 10b.
(80) For some other angular positions of drum 15, channels 31 interact with different sections of channels 30a, 30b.
(81) Accordingly, for these other angular positions of drum 15, air ports 17 are fluidly disconnected from the vacuum source and do not exert any suction action on label 10a, 10b.
(82) In greater detail, at station J, air ports 17 of the upstream pad of each conveying section are fluidly connected with the vacuum source, so as to suck the trailing edge of respective label 10a, 10b.
(83) As each conveying section rotates about axis C from station J to transfer station H, respective air ports 17 of that conveying station and of the downstream pad are connected with the vacuum source, so as to suck the remaining part of respective label 10a, 10b.
(84) In this way, each label 10a, 10b is advanced from station J to transfer station H with its leading edge held on the upstream pad and its trailing edge held on the downstream pad.
(85) In particular, when each label 10a, 10b reaches transfer station H, channels 30a, 31 are superimposed.
(86) When diverting device 20 is arranged in the first configuration, the fluidic connection between air ports 17 travelling at transfer station H and the vacuum source is interrupted.
(87) In this way, each label 10a, 10b is gradually released by drum 15 and transferred outside drum 15 at transfer station H.
(88) As it will evident from the foregoing of the present description, when diverting device 20 is arranged in the first configuration, air ports 17 travelling at transfer station H eject an air jet on label 10a, 10b, so as to ease the release of labels 10a, 10b at transfer station H.
(89) When diverting device 20 is arranged in the second configuration, the fluidic connection between air ports 17 travelling at transfer station H and the vacuum source is maintained.
(90) Furthermore, when diverting device 20 is arranged in the second configuration, air ports 17 do not eject any air jet on labels 10a, 10b travelling at transfer station H.
(91) In this way, labels 10a, 10b can reach discarding station D, whereat they are sucked by sucking device 21.
(92) Diverting device 20 substantially comprises (
(93) In greater detail, actuator 36 is arranged on stator 14 at transfer station H and comprises, in turn: a housing 41 fitted to stator 14; and a shutter 45 (or locking piston) movable inside a seat 43 of housing 41 along an axis F parallel to axis C between a first position and a second position; and a flange 42 fitted to housing.
(94) Seat 43 opens, on one side, in channel 30a and, on the other side, in a hole 44 of flange 42 which is connected to electro-valve 35a by a duct 46.
(95) Shutter 45 comprises, in turn: a stem 50 elongated along axis F and arranged on the side of channel 30a; and a base 57 enlarged with respect to stem 50, orthogonal to axis F, and arranged on the side of flange 42.
(96) Stem 50 comprises an annular groove 55 which extends about axis F.
(97) Furthermore, stem 50 defines a duct 56 which is fluidly connected with groove 55 and is fluidly connected with channel 30a (
(98) When shutter 45 is in the first position (raised in
(99) Furthermore, when the shutter 45 is in the first position, base 57 is spaced along axis F from flange 42 and abuts against a shoulder defined by housing 41.
(100) When the shutter 45 is in the second position, stem 50 leaves free part of channel 30a, thus maintaining the fluidic connection between the vacuum source and channel 31a connected to air ports 17 travelling at transfer station H. In this way, the vacuum action is exerted on labels 10a, 10b travelling at transfer station H.
(101) Furthermore, when the shutter 45 is in the second position, base 57 contacts flange 42 and is spaced by shoulder.
(102) Electro-valve 35a can be actuated for generating a flow of air in pressure inside duct 46, thus increasing the pressure in the volume between flange 42 and base 57 and causing shutter 45 to move from the second position to the first position parallel to axis F.
(103) Base 57 is elastically connected to flange 42 by a spring 58, which causes the return of shutter 45 from the first position to the second position.
(104) Housing 41 also comprises a pair of channels 51, 52, between which seat 43 is arranged (
(105) Each channel 51, 52 is fluidly connected, on one side thereof, to a respective duct 47, 48.
(106) Each channel 51, 52 is fluidly connected with air ports 17 set at transfer station H, when shutter 45 is in the first position.
(107) Each channel 51, 52 is fluidly isolated by air ports 17 set at transfer station H, when shutter 45 is in the second position.
(108) More precisely, each channel 51, 52 also comprises: a portion 53 parallel to axis F and originating from a hole 49a, 49b (
(109) When shutter 45 is in the first position, groove 55 faces portions 54 of channels 51, 52, thus establishing a fluidic connection between ducts 47, 48 and air ports 17 arranged at transfer station H, by means of superimposed channels 30a, 31.
(110) In this way, when shutter 45 is in the first position (
(111) When shutter 45 is in the second position (
(112) Accordingly, when shutter 45 is in the second position, no jet of air is ejected on label 10 travelling at transfer station H.
(113) Transfer element 13 of each labelling group 4, 5 is also movable in a fully rest position, in which trajectory Q is spaced from application station B1, B2.
(114) In greater detail, transfer station H is spaced from application station B1, B2 when transfer element 13 of labelling group 4, 5 is in the fully rest position.
(115) When labelling group 4 (5) is in the first (second) operative configuration, respective diverting device 20 is set in the first (second) configuration and respective transfer element 13 is in the first (second) operative position.
(116) When labelling group 4 (5) is in the first (second) rest configuration, respective diverting device 20 is set in the second configuration and respective transfer element 13 is in the fully rest position.
(117) Transfer element 13 can also assume a plurality of partially rest positions (not shown in
(118) Accordingly, labelling group 4 (5) can assume a plurality of first (second) partially rest configuration, which are interposed between the first (second) operative configuration and the first (second) rest configuration.
(119) Preferably, diverting device 20 is set in the second configuration, when transfer element 13 is set in one of the partially rest positions.
(120) In particular, transfer element 13 is movable between the fully rest position and the operative position along a rectilinear path parallel to a direction E.
(121) Direction E is, in the embodiment shown, radial to path P and trajectory Q and lies on a plane orthogonal to axes A, C.
(122) Each labelling group 4, 5 further comprises (
(123) In the embodiment shown, supporting structure 66 also supports cutting element 9 and glue roller 12.
(124) With reference to
(125) With reference to
(126) Rod 72 and shaft 71 are operatively connected to each other, in such a way that the rotation of shaft 71 about an its own axis parallel to axis E causes the translation of rod 72 parallel to axis E.
(127) In the embodiment shown, shaft 71 comprises, on the opposite side of rotary actuator 70, a portion with a female thread, which screws onto a male thread carried by a portion of rod 72. The male thread of rod 72 is, in particular, arranged on the side of rotary actuator 70.
(128) Connecting means 67 further comprise: a motor 75 controlled by control unit 60, and connected to rod 72, by means of a C-shaped element 79; a shaft 76 which is driven in rotation by motor 75 about an axis G; an element 77 which rotates integrally with shaft 76 about axis G orthogonal to direction E; and a bracket 78, which is operatively connected to supporting structure 66, in particular to table 68.
(129) Furthermore, bracket 78 and element 77 are coupled to each other, in such a way that the rotation of element 77 about axis G causes the sliding of bracket 78 parallel to direction E.
(130) Still more precisely, element 77 comprises: a first portion 83 fitted to shaft 76 and a second portion 84 protruding from portion 83 parallel to and spaced from axis G.
(131) Portion 83 is housed in a slot 85 (
(132) Accordingly, when element 77 rotates about axis G driven by motor 75, portion 84 eccentrically rotates about axis G inside slot 85, so causing the movement of bracket 78 and, therefore, of supporting structure 66 parallel to direction E.
(133) Preferably, rotary actuator 70 is operated for arranging transfer element 13 in the operative position, on the basis of the format of articles 11, 11a, 11b while motor 75 is controlled by control unit 60 for displacing transfer element 13 between the operative position and the fully rest position.
(134) The operation of labelling machine 1 and plant 100 is described in the following, starting from a condition (
(135) Conveyor 101 advances a plurality of pre-forms 108 which are blown in the blowing machine, so as to form respective articles 11, 11a, 11b. Articles 11, 11a, 11b are filled inside the filling machine and fed to carousel 3 of labelling machine 1.
(136) Carousel 3 rotates about axis A and conveys a sequence of articles 11a, 11, 11b at substantially constant speed V0 along path P from input station I to application stations B2, B1 and from application station B1 to output station O.
(137) Diverting device 20 of labelling group 4 is in the first configuration and transfer station H of labelling group 4 coincides with application station B1.
(138) Accordingly, transfer element 13 of labelling group 4 transfers, one after the other, labels 10a from reel 7a onto articles 11a travelling at application station B1.
(139) In that condition, control unit 60 keeps the rotational speed of drum 15and, therefore, of strip 8of labelling group 4 at highest first speed value V1.
(140) On the contrary, diverting device 20 of labelling group 5 is in the second configuration and transfer station H of labelling group 5 is spaced along direction E from by application station B2.
(141) Accordingly, transfer element 13 of labelling group 5 is idle, is prevented from transferring labels 10b onto articles 11b travelling at application station B2, and conveys labels 10b to sucking device 21 at discarding station D.
(142) In other words, labelling group 4 acts as the master labelling group while labelling group 5 acts as the slave labelling group.
(143) In case sensor 80 generates a signal associated to the fact that reel 7a is terminating, gap creating element 110 interrupts the flow of pre-forms 108 along conveyor 101.
(144) After a given amount of time, switch 111 of element 110 allows again the flow of pre-forms 108 along conveyor 101.
(145) Thus, gap 109 and, therefore, gap 82 is generated and is bounded by immediately adjacent downstream article 11a and immediately adjacent upstream article 11b.
(146) Control unit 60, as a consequences of the signal generated by sensor 80: decelerates transfer element 13 of labelling group 4 acting as master labelling group, starting from speed V1; and accelerates transfer element 13 of labelling group 4 acting as master labelling group, up to speed V1.
(147) Furthermore, control unit 60, as a consequence of that signal generated by sensor 80: moves diverting device 20 of labelling group 4 in the second configuration (
(148) When labelling group 5 has reached the second operative configuration, control unit 60 moves diverting device 20 of labelling group 5 in the first configuration (
(149) In this way, labelling group 4 now acts as the slave labelling group while labelling group 5 now acts as the master labelling group.
(150) Control unit 60 is programmed for moving labelling group 4 from the first operative configuration to the first rest configuration, after relative drum 15 has transferred label 10a onto downstream immediately adjacent article 11a at application station B1.
(151) Control unit 60 is also programmed for moving labelling group 5 to the second operative configuration, before upstream immediately adjacent article 11b has reached application station B2.
(152) In other words, gap 82 moves along path between application stations B1, B2, after labelling group 4 has been moved away from the first operative configuration and before labelling group 5 has been set in the second operative configuration.
(153) In this way, no articles 11, 11a, 11b remains unlabelled.
(154) Still more precisely, control unit 60: decelerates, along a linear descending ramp in the embodiment shown, the speed of transfer element 13 (and therefore of strip 8) of labelling group 4 up to the second speed V2 reached when the latter is in the first rest configuration (
(155) In particular, when transfer element 13 moves at speed V2, visual control system 150 checks the correct positioning of labels 10a at discarding station D, thus checking out the correct joining of new reel 7b to reel 7a.
(156) Furthermore, control unit 60 accelerates, according a liner ascending ramp in the embodiment shown in
(157) With particular reference to
(158) The operation of labelling machine 1 and plant 100 is now described with reference to
(159) In case sensor 85 detects that labelling group 4 is not properly applying labels 10a onto respective articles 11a at application station B1, expelling device 115 is operated to expel, for a certain amount of time, articles 11 from path P upstream of application station B2, with reference to the advancing direction of articles 11, 11a, 11b along path P (
(160) In this way, gap 82 is generated.
(161) Furthermore, control unit 60, in response to the signal generated by sensor 85: moves diverting device 20 of labelling group 4 in the second configuration (
(162) When labelling group 5 has reached the second operative configuration, control unit 60 moves diverting device 21 of labelling group 5 in the first configuration (
(163) In this way, labelling group 4 now acts as the slave labelling group while labelling group 5 now acts as the master labelling group (
(164) Still more precisely, control unit 60 slows down up to a null value the speed of transfer element 13and therefore of strip 8of labelling group 4, according to a liner descending ramp in the embodiment shown in
(165) Control unit 60 further accelerates the speed of transfer element 13and, therefore, of strip 8, of labelling group 5, according to a liner ascending ramp in the embodiment shown in
(166) In the meanwhile, not properly labelled articles 11b are discarded at expelling device 120, which is arranged downstream of application station B1, with reference to the advancing direction of articles 11, 11a, 11b along path P.
(167) From an analysis of the features of machine 1 and the method made according to the present invention, the advantages it allows to obtain are apparent.
(168) In particular, gap creating element 110 creates gap 82 inside succession of articles 11a, 11b travelling along path at speed V1, while one (4) of labelling group 4 (5) acts as master labelling group and applies labels 10a on article 11a and the other one (5) of labelling group acts as slave labelling group.
(169) In this way, it is possible matching carousel 3 operating at constant speed V0 with labelling groups 4 (5) which require respective transfer elements 13 (and, therefore, respective drums 15 and strips 8) be accelerated at speed V1.
(170) As a matter of fact, in case labelling group (5) acts as a master labelling group, it is enough: activating gap creating element 110, so as to create gap 82; and accelerating transfer element 13 (and, therefore, respective drums 15 and strips 8) of the other labelling group 5 (4) up to speed V1, while the other labelling group 5 (4) moves from the second (first) rest configuration to the second (first) operative configuration.
(171) Moreover, the creation of gap 82 further allows to connect carousel 3 to the remaining parts of conveying line 160, without requiring the introduction of buffers to decouple the speed of carousel 3 and the speed of the remaining parts of conveying line 160.
(172) Furthermore, thanks to the fact that, as it is displaced from the first (second) rest configuration to the first (second) operative configuration, labelling group 4 (5) moves along direction E, it is possible to accelerate transfer element 13 thereof at very high speed V1, thus allowing also conveyor 3 to be advanced at very high speed V0.
(173) Furthermore, in case the operation of one labelling group 4 (5) applying labels 10a (10b) onto articles 11a (11b) and acting as the master labelling group needs to be interrupted, it is no longer necessary interrupting the operation of whole labelling machine 1 and of upstream machines of plant 100.
(174) As a matter of fact, it is enough activating gap creating element 110 and moving the other labelling group 5 (4) acting as the slave labelling group from the second (first) rest configuration into the second (first) operative configuration.
(175) In this way, the other labelling group 5 (4) can apply labels 10b (10a) onto articles 11b (11a).
(176) Furthermore, control unit 60 is programmed for moving labelling group 4 from the first operative configuration to the first rest configuration after transfer element 13 of labelling group 4 has transferred label 10a onto immediately adjacent downstream article 11a at application station B1, while control unit 60 is programmed for moving labelling group 5 from second rest configuration to second operative position before transfer element 13 of labelling group transfer labels 10b onto immediately adjacent upstream article 11b at application station B2.
(177) In this way, no articles 11a, 11b remains unlabelled.
(178) In case reel 7a must be replaced (
(179) Accordingly, new reel 7b can be joined to a substantially stationary reel 7a, regardless of the throughput of labelling machine 1.
(180) In this way, when the joining of new reel 7b to reel 7a is carried out by non skilled technical staff or with automatic systems, there is substantially no risk to misalign new reel 7b with reel 7a and, therefore, there is substantially no risk of misaligning labels 10a, 10b.
(181) Furthermore, when the labelling group 4 (5) is in the first (second) rest configuration and after new reel 7b has been joined to reel 7a, it is possible to control the position of cut labels 10a (10b) on drum 15 at discarding station D, by using visual control system 150.
(182) In case sensor 85 detects that labelling group 4 (5) acting as the master labelling group is not properly applying labels 10a (10b) onto articles 11a (11b), control unit 60 moves labelling group 4 into the first (second) rest configuration and labelling group 5 (4) into the second (first) operative configuration (
(183) In this way, it is possible to repair the labelling group 4 (5) set in the first (second) rest configuration, without interrupting the operation of labelling machine 1.
(184) It is important to mention that all the above advantages apply substantially unchanged to operative groups of plant 100 others than labelling groups 4, 5 and to machines of plant 100 other than labelling machine 1
(185) Finally, it is apparent that modifications and variants not departing from the scope of protection of the claims may be made to machine 1 and to the method.
(186) In particular, labelling group 4, 5 could comprise, instead of diverting device 20, a different device which can selectively deviate strip 8 from path Q upstream of cutting device 9.
(187) In other words, that different device prevents strips 8 from reaching cutting device 9 and, therefore, drum 15.
(188) Control unit 60 could be programmed for moving strip 8 and drum 15 of transfer element 13 of labelling groups 4, 5, according to different motion laws, when it moves transfer element 13 between the operative position and the fully rest position.
(189) Furthermore, labelling machine 1 could comprise different kind of sensor for detecting that the operation of labelling group 4, 5 in the first (second) operative configuration needs to be interrupted.
(190) Switch 111 could be used for interrupting the flow of pre-forms 108, in case sensor 85 detects that labelling group 4, 5 in the first (second) operative configuration is not properly transferring labels 10a, 10b to articles 11a, 11b.
(191) Finally, expulsing device 115 could be used for expelling articles 11 upstream of application stations B1, B2 in case that reel 7a of labelling group 4, 5 in the first (second) operative configuration needs to be replaced.