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EP 2 631 048 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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19.03.2014 Bulletin 2014/12 |
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Date of filing: 05.02.2013 |
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International Patent Classification (IPC):
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Multi-functional tool-carrier rotary head for glass working applications and system
for cutting glass slabs using such head
Multifunktionaler Werkzeugträgerdrehkopf für Glasbearbeitungsanwendungen und System
zum Schneiden von Glasplatten mit einem derartigen Kopf
Tête rotative de porte-outils multifonctionnelle pour applications de travail du verre
et système de découpage de plaques de verre utilisant cette tête
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
21.02.2012 IT TO20120150 21.02.2012 IT TO20120151
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Date of publication of application: |
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28.08.2013 Bulletin 2013/35 |
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Proprietor: Forvet S.r.l. |
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10040 Volvera (IT) |
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Inventor: |
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- Gariglio, Davide
I-10040 Volvera (TO) (IT)
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Representative: Garavelli, Paolo |
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A.Bre.Mar. s.r.l.
Consulenza in Proprietà Industriale
Via Servais 27 10146 Torino 10146 Torino (IT) |
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References cited: :
EP-A2- 0 669 187 FR-A- 1 422 266 US-A- 4 872 293
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WO-A1-2004/048052 US-A- 4 827 679 US-A1- 2011 209 529
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The present invention refers to a multi-functional tool-carrier rotary head for glass
working applications as per the preamble of claim 1 and to a system for cutting glass
through high-pressure water using such rotary head. Such a device and system are known
from
FR 1 422 266.
[0002] In the field of glass working and cutting, classical working technologies are known
(drilling, flaring and milling) through the help of diamond tools.
[0003] The glass cutting technique through pressurised water is also known, together with
handling glass on dynamic vacuum belts.
[0004] All these known techniques and solutions however have never been employed together,
in the field of glass working.
[0005] Object of the present invention is solving the above prior art problems, by providing
a multi-functional tool-carrier rotary head for glass working applications comprising
the combination of features of independent claim 1.
[0006] Preferred embodiments of the invention are disclosed by the dependent claims.
[0007] The water cutting implementation in plants that use the classical working technologies
(drilling, flaring and milling) through the help of diamond tools, has made it possible
to obtain a production synergy that makes this system unique.
[0008] The two technologies interact without mutually limiting, and instead are a mutual
complement, and each one benefits from the capabilities of the other, widening the
production capacity.
[0009] This results in en enormous advantage for manufacturing, since it is possible to
choose which type of cutting must be used, depending on required working and quality.
[0010] Implementing this water cutting technology inside a tool-carrier turret has made
this system the only numerically controlled drill with an unlimited number of drilling,
flaring and milling tools.
[0011] The preferred automatic glass positioning allows a water cutting aligned with other
production processes that do not require manual interventions for placing the slabs.
[0012] Handling of glass on preferred dynamic vacuum belts allows positioning the slab without
contact with the upper surface, and therefore makes the machine safe and quick for
every type of glass, including low emissive glass.
[0013] Vacuum in any belt sector is activated/deactivated depending on glass position. The
automatic managing system takes also into account the geometry of shaped glasses,
thereby obtaining, in any situation, the maximum capacity for containing slabs.
[0014] In order to optimise the life of the high-pressure pump used for cutting water, commonly
limited by the continuous pressure drops, it is preferably provided that the connection
of the high-pressure jet onto the glass is performed in an hole obtained with diamond
tools, instead of with the water jet with differentiated pressure. This, in addition
to extend the pump life, prevents the abrasive material from bouncing onto the glass
surface.
[0015] The system allows integrating the milling and drilling processes in automatic production
lines, since loading, positioning and unloading the glass are completely automatic.
[0016] The preferred use of the automatic collecting assembly for scraps, following a cutting,
has made this plant completely automatic and capable of being integrated in a production
line free from human interventions during the whole production cycle.
[0017] The present invention will be better described by some preferred embodiments thereof,
provided as a non-limiting example, with reference to the enclosed drawings, in which:
- Figure 1 is a front view of an embodiment of the multi-functional tool-carrier head
according to the present invention;
- Figure 2 is a perspective view of the head of Figure 1;
- Figure 3 is a front view of the head of Figure 1 coupled with means for reducing the
water energy;
- Figure 4 is a perspective view of the head and the means of Figure 3;
- Figure 5 is a perspective cut-out view of the means for reducing the water energy
to be coupled with the inventive head;
- Figure 6 is a perspective view of the inventive head when working a glass slab on
a vacuum transport;
- Figure 7 is a side view of the working unit whose parts are shown in Figure 6; and
- Figure 8 is a perspective view of the working unit of Figure 7.
[0018] With reference to the Figures, a preferred embodiment of the multi-function tool-carrier
head of the present invention is shown and described. It will be immediately obvious
that numerous variations and modifications (for example related to shape, sizes, arrangements
and parts with equivalent functionality) can be made to what is described, without
departing from the scope of the the enclosed claims.
[0019] The multi-functional tool-carrier rotary head 1 of the invention is mainly used for
glass 3 working applications and is equipped with a plurality of diamond tools 5,
7, 9, 11 and with at least one water-cutting type spindle 13 composed of at least
one high-pressure valve 15, at least one abrasive head 16 and at least one nozzle
18 for the exit of high-pressure water 19 with abrasive.
[0020] Commonly, the diamond tools 5, 7, 9, 11 are composed of flaring tools 5, milling
tools 7, 11 or drilling tools 9.
[0021] The innovation of the present invention therefore consists in inserting the spindle
13 for water cutting integrated in the rotary head 1 with diamond tools 5, 7, 9, 11
of any shape/size.
[0022] The tools 5, 7, 9, 11, as well as the spindles 13, can be used in any sequence and
placed in any position.
[0023] Advantageously, the rotary head 1 can be equipped with means 20 for reducing energy
of the high-pressure water 19 with abrasive, wherein such means 20 operate such reduction
by impacting water 19 against hard solid material 22 in pieces contained therein.
[0024] In particular, but not as a limitation, the means 20 are composed of a container
24, preferably of a cylindrical shape, internally coated with a sheath 26 adapted
to protect the container 24 from the action of water with abrasive 19; the container
24 contains therein the hard solid material 22 in pieces and is equipped with an upper
cover 28 (preferably of the overhanging type with triangular section, as shown in
Figures 4 and 5) equipped with at least one hole 29 for entering water with abrasive
19. Moreover, the container 24 is equipped with at least one lower discharge hole
30 suitable to outflow water with abrasive 19 after it has come in contact with the
hard solid material 22 in pieces and after it has dissipated its own energy.
[0025] Still in particular, but not as a limitation, the container 24 can be of a metallic
type, while the sheath 26, in case of container 24 with a cylindrical shape, can be
a hollow ceramic cylinder and the hard solid material 22 in pieces can be composed
of a multitude of ceramic balls 22 (even if other equivalent materials are possible).
[0026] Summarising, the means 20 dampen/convert the residual energy of the jet of high-pressure
water 19, after having impacted upon and cut the glass 3. The residual energy is transformed
into heat following the impact against polyhedrical and/or spherical and/or cylindrical
objects 22 made of solid material present inside the container 24.
[0027] The collecting means 20 placed by an axle controlled by the CNC are placed perfectly
axial with the spindle 13.
[0028] In the application example shown in the Figures, the balls 22 made of ceramic material
allow dampening the energy with the advantage of outflowing water 19 with abrasive
between the interstices created thereby.
[0029] In order to dissipate the water 19 cutting energy following an impact against the
glass 3, it is necessary to have a height space equal to about 800 mm, with the consequent
emission of noise, reaching a maximum frequency equal to about 130 - 140 dB.
[0030] With the use of the above described technical solution, the necessary space is reduced
by half, with a lowering of the sound impact of about 50 dB.
[0031] The above described rotary head 1, due to its versatility, is among others able to
operate with a dynamic vacuum transport system 30 composed of at least one vacuum
transport belt assembly 42, 44 suitable to support and operatively translate at least
one glass slab 3, as shown in Figure 6.
[0032] Due to the dynamic vacuum system 30, the glass slab 3 is blocked, allowing an accurate
positioning without the help of mechanical members in contact with the glass 3 surface.
[0033] With this system 30, the abrasive that is deposited onto the glass 3 surface following
a cut cannot generate any surface scratch.
[0034] The currently marketed plants, lacking this system 30, need to block the slab 3 with
technical solutions that are able to transmit forces onto the two (upper and lower)
surfaces of the glass slab 3. In this way, highly increasing the chances of scratching
on its surface the slab 3 with the following rejection from its production cycle.
[0035] Moreover, always due to its versatility, the above described rotary head 1 can be
suitable to be used in an automatic assembly 50 for taking and managing glass scraps
52 equipped with means 54 (preferably of the suction cup 56 type), for taking and
unloading the scraps 52, as shown in Figures 7 and 8, following a cutting operation
of the slab 3 through the abrasive diamond tools 5, 7, 9, 11 or after a cutting with
water with abrasive perforned with the spindle 13.
[0036] This assembly 50 has an automatic positioning managed by software and perfectly integrated
in the plant. Usually, in on-line machines, this operation is performed by men: due
to the use of this assembly 50, it can be stated that the plant, in all its workings
(meant as drilling, flaring, milling and water cutting) is able to be completely automatic
and free from human interventions during its whole production process.
[0037] In this specific application example, as shown, the assembly 50 is composed of a
positioning performed by two controlled axes (X and Y directions), a pneumatic actuator
for movements along the Z axis and a venturi system 54 with its related suction cup
56 for taking and unloading the scraps 52.
[0038] Finally, the invention relates to a system for cutting the glass slabs 3 according
to claim 9.
1. Multi-functional tool-carrier rotary head (1) for glass (3) working applications characterised in that it is equipped with a plurality of diamond tools (5, 7, 9, 11) and with at least
one water-cutting type spindle (13) composed of at least one high-pressure valve (15),
at least one abrasive head (16) and at least one nozzle (18) for exiting high-pressure
water (19) with abrasive.
2. Rotary head (1) according to claim 1, characterised in that said diamond tools (5, 7, 9, 11) are composed of flaring tools (5), milling tools
(7, 11) or drilling tools (9).
3. Rotary head (1) according to claim 1 or 2, characterised in that it is further equipped with means (20) for reducing energy of high-pressure water
(19) with abrasive, said means (20) performing said reduction by impacting water (19)
against hard solid material (22) in pieces contained therein.
4. Rotary head (1) according to claim 3, characterised in that said means (20) are composed of a container (24), preferably of a cylindrical shape,
internally coated with a sheath (26) suitable to protect said container (24) from
an action of water (19) with abrasive, said container (24) containing therein said
hard solid material (22) in pieces and being equipped with an upper cover (28) equipped
with at least one hole (29) for entering water (19) with abrasive, said container
(24) being further equipped with at least one lower discharge hole (30) suitable to
outflow water (19) with abrasive after it came in contact with said hard solid material
(22) in pieces and after it dissipated its own energy.
5. Rotary head (1) according to claim 4, characterised in that said container (24) is of a metallic type, said sheath (26) is an hollow ceramic
cylinder and said hard solid material (22) in pieces is composed of a multitude of
ceramic balls (22).
6. Rotary head (1) according to any one of the previous claims, characterised in that it is adapted to operate with a dynamic vacuum transport system (30) composed of
at least one vacuum transport belt assembly (42, 44) suitable to support and operatively
translate at least one glass slab (3).
7. Rotary head (1) according to any one of the previous claims, characterised in that it is suitable to be employed in an automatic unit (50) for taking and managing glass
scraps (52) equipped with means (54) for taking and unloading said scraps (52).
8. Rotary head (1) according to claim 7, characterised in that said means (54) for taking and unloading said scraps (52) are of a suction cup (56)
type.
9. System for cutting glass slabs (3) through high-pressure water,
characterised in that the system comprises:
- at least one multi-functional tool-carrier rotary head according to claim 1 ; and
- at least one device (20) for reducing energy of high-pressure water (19) with abrasive
for cutting glass slabs, said device (20) performing said reduction by impacting water
(19) against hard solid material (22) in pieces contained therein, said device (20)
being composed of a container (24), preferably of a cylindrical shape, internally
coated with a sheath (26) suitable to protect said container (24) from an action of
water (19) with abrasive, said container (24) containing therein said hard solid material
(22) in pieces and being equipped with an upper cover (28) equipped with at least
one hole (29) for entering water (19) with abrasive, said container (24) being further
equipped with at least one lower discharge hole (30) suitable to outflow water (19)
with abrasive after it came in contact with said hard solid material (22) in pieces
and after it dissiped its own energy.
1. Multifunktionaler Werkzeugträgerdrehkopf (1) für Glasbearbeitungsanwendungen (3),
der dadurch gekennzeichnet ist, dass er mit mehreren Diamantwerkzeugen (5, 7, 9, 11) und mindestens einer Wasserstrahlschneidespindel
(13) ausgestattet ist, die aus mindestens einem Hochdruckventil (15), mindestens einem
Schleifkopf (16) und mindestens einer Düse (18) für den Austritt des Hochdruckwasserstrahls
(19) mit abrasivem Material besteht.
2. Drehkopf (1) gemäß Patentanspruch 1, der dadurch gekennzeichnet ist, dass die genannten Diamantwerkzeuge (5, 7, 9, 11) aus Spitzsenk- (5), Fräs- (7, 11) oder
Lochungswerkzeugen (9) bestehen.
3. Drehkopf (1) gemäß Patentanspruch 1 oder 2, der dadurch gekennzeichnet ist, dass er außerdem mit Vorrichtungen (20) für die Reduzierung der Energie des Hochdruckwasserstrahls
(19) mit abrasivem Material ausgestattet ist, die genannten Vorrichtungen (20) bewirken
die genannte Reduzierung durch einen Aufprall des Wassers (19) gegen hartes Festkörpermaterial
(22), das in diesen enthalten ist.
4. Drehkopf (1) gemäß Patentanspruch 3, der dadurch gekennzeichnet ist, dass die genannten Vorrichtungen (20) aus einem vorzugsweise zylinderförmigen Behälter
(24) bestehen, der intern mit einem Mantel (26) verkleidet ist, der dazu dient, den
genannten Behälter (24) vor der Wirkung des Wasserstrahls mit abrasivem Material (19)
zu schützen, der genannte Behälter (24) enthält das genannte harte Festkörpermaterial
(22) und ist mit einer oberen Abdeckung (28) ausgestattet, die mit mindestens einer
Öffnung (29) für den Eintritt des Wasserstrahls mit abrasivem Material (19) ausgestattet
ist, der genannte Behälter (24) ist außerdem mit mindestens einer unteren Ablassöffnung
(30) ausgestattet, die dazu dient, den Wasserstrahl mit abrasivem Material (19) abzulassen,
nachdem er mit dem genannten harten Festkörpermaterial (22) in Kontakt gekommen ist
und seine Energie aufgebraucht hat.
5. Drehkopf (1) gemäß Patentanspruch 4, der dadurch gekennzeichnet ist, dass der genannte Behälter (24) ein Metallbehälter ist, der genannte Mantel (26) ein hohler
Keramikzylinder ist und das genannte harte Festkörpermaterial (22) aus vielen Keramikkugeln
(22) besteht.
6. Drehkopf (1) gemäß einem beliebigen der vorhergehenden Patentansprüche, der dadurch gekennzeichnet ist, dass er dazu dient, mit einem dynamischen Vakuumtransportsystem (30) zusammenzuarbeiten,
das aus mindestens einer Vakuumtransportriemengruppe (42, 44) besteht, die dazu dient,
operativ mindestens eine Glasplatte (3) zu tragen und zu verschieben.
7. Drehkopf (1) gemäß einem beliebigen der vorhergehenden Patentansprüche, der dadurch gekennzeichnet ist, dass er zur Verwendung einer automatischen Entnahme- (50) und Verwaltungsgruppe der Glasabfälle
(52) dient, die mit Entnahme- und Entladungsvorrichtungen (54) der genannten Abfälle
(52) ausgestattet ist.
8. Drehkopf (1) gemäß Patentanspruch 7, der dadurch gekennzeichnet ist, dass die genannten Entnahme- und Entladungsvorrichtungen (54) der genannten Abfälle (52)
Saugköpfe (56) sind.
9. System zum Hochdruckwasserstrahlschneiden von Glasplatten (3), das
dadurch gekennzeichnet ist, folgendes einzuschließen:
- mindestens einen multifunktionalen Werkzeugträgerdrehkopf gemäß Patentanspruch 1;
und
- mindestens eine Vorrichtung (20) für die Reduzierung der Energie des Hochdruckwasserstrahls
(19) mit abrasivem Material zum Schneiden von Glasplatten, die genannte Vorrichtung
(20) bewirkt die genannte Reduzierung durch den Aufprall des Wasserstrahls (19) gegen
hartes Festkörpermaterial (22), das in diesen enthalten ist, die genannte Vorrichtung
(20) besteht aus einem vorzugsweise zylinderförmigen Behälter (24), der intern mit
einem Mantel (26) verkleidet ist, der dazu dient, den genannten Behälter (24) vor
der Wirkung des Wasserstrahls mit abrasivem Material (19) zu schützen, der genannte
Behälter (24) enthält das genannte harte Festkörpermaterial (22) und ist mit einer
oberen Abdeckung (28) ausgestattet, die mit mindestens einer Öffnung (29) für den
Eintritt des Wasserstrahls (19) mit abrasivem Material ausgestattet ist, der genannte
Behälter (24) ist außerdem mit mindestens einer unteren Ablassöffnung (30) ausgestattet,
die dazu dient, den Wasserstrahl (19) mit abrasivem Material abzulassen, nachdem er
mit dem genannten harten Festkörpermaterial (22) in Kontakt gekommen ist und seine
Energie aufgebraucht hat.
1. Tête tournante porte-instruments multifonctions (1) pour applications d'usinage du
verre (3) caractérisée par le fait d'être dotée d'une pluralité d'instruments diamantés (5, 7, 9, 11) et d'au
moins un mandrin de coupe à eau (13) composé d'au moins une valve à haute pression
(15), au moins une tête abrasive (16) et au moins une buse (18) pour la sortie d'eau
(19) à haute pression avec abrasif.
2. Tête tournante (1) selon la revendication 1, caractérisée par le fait que lesdits instruments diamantés (5, 7, 9, 11) sont constitués d'instruments d'usinage
(5), instruments de fraisage (7, 11) ou instruments de perçage (9).
3. Tête tournante (1) selon la revendication 1 ou 2, caractérisée par le fait d'être dotée en outre de moyens (20) pour la réduction de l'énergie de l'eau
(19) à haute pression avec abrasif, lesdits moyens (20) en opérant ladite réduction
au moyen de choc de l'eau (19) contre matériel solide dur (22) en pièces contenu dans
ceux-ci.
4. Tête tournante (1) selon la revendication 3, caractérisée par le fait que lesdits moyens (20) sont constitués d'un conteneur (24), de préférence de forme cylindrique,
revêtu à l'intérieur d'une chemise (26) apte à protéger ledit conteneur (24) contre
l'action de l'eau avec abrasif (19), ledit conteneur (24) contenant à l'intérieur
ledit matériel solide dur en pièces (22) et étant doté d'une couverture supérieure
(28) dotée d'au moins un trou (29) pour l'entrée de l'eau avec abrasif (19), ledit
conteneur (24) étant doté en outre d'au moins un trou d'évacuation inférieur (30)
apte à faire couler l'eau avec abrasif (19) après qu'elle soit entrée en contact avec
ledit matériel solide dur en pièces (22) et après qu'elle a dissipé sa propre énergie.
5. Tête tournante (1) selon la revendication 4, caractérisée par le fait que ledit conteneur (24) est de type métallique, ladite chemise (26) est un cylindre
céramique creux et ledit matériel solide dur en pièces (22) est constitué d'une multitude
de sphères en céramique (22).
6. Tête tournante (1) selon une quelconque des revendications précédentes, caractérisée par le fait d'être apte à opérer avec un système de transport à vide dynamique (30) constitué
d'au moins un groupe de courroie de transport sous vide (42, 44) apte à soutenir et
faire transférer en mode opératif au moins une plaque de verre (3).
7. Tête tournante (1) selon une quelconque des revendications précédentes, caractérisée par le fait d'être apte à l'emploi dans un groupe automatique (50) de prélèvement et
gestion de déchets de verre (52) doté de moyens (54) de prélèvement et déchargement
desdits déchets (52).
8. Tête tournante (1) selon la revendication 7, caractérisée par le fait que lesdits moyens (54) de prélèvement et déchargement desdits déchets (52) sont du type
à ventouse (56).
9. Système pour la coupe de plaque de verre (3) au moyen d'eau à haute pression,
caractérisé par le fait que le système comprend:
- au moins une tête tournante porte-instruments multifonctions selon la revendication
1; et
- au moins un dispositif (20) pour la réduction de l'énergie d'eau à haute pression
(19) avec abrasif pour la coupe de plaque de verre, ledit dispositif (20) en opérant
ladite réduction au moyen de choc de l'eau (19) contre matériel solide dur (22) en
pièces contenu dans celui-ci, ledit dispositif (20) étant constitué d'un conteneur
(24), de préférence de forme cylindrique, revêtu à l'intérieur d'une chemise (26)
apte à protéger ledit conteneur (24) contre l'action de l'eau (19) avec abrasif, ledit
conteneur (24) en contenant à l'intérieur ledit matériel solide dur en pièces (22)
et étant doté d'une couverture supérieure (28) dotée d'au moins un trou (29) pour
l'entrée de l'eau (19) avec abrasif, ledit conteneur (24) étant doté en outre d'au
moins un trou de déchargement inférieur (30) apte à faire couler l'eau (19) avec abrasif
après qu'elle soit entrée en contact avec ledit matériel solide dur en pièces (22)
et après qu'elle a dissipé sa propre énergie.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description