Squaring machine
The squaring machine's innovative load-bearing frame with movable bridge supports and integrated platforms simplifies maintenance access to abrasive tools, addressing the obstruction issue in existing machines and enhancing operational efficiency.
Patent Information
- Application Number
- EP2025177522
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-05-23
- Filing Date
- 2025-05-20
- Publication Date
- 2025-11-26
AI Technical Summary
Existing squaring machines for processing ceramic slabs face a drawback where the baseplate obstructs access to abrasive tools during maintenance, making it difficult for operators to reach and perform maintenance operations.
The squaring machine features a load-bearing frame with bridge supports that allow side banks to move freely, enabling easy access to abrasive tools without interference from the frame, and includes platforms for operators to reach spindles comfortably, along with suction ducts that do not obstruct the movement of the banks.
The design facilitates easy and efficient maintenance of abrasive tools by allowing unhindered access and reduces operational complexity, while maintaining structural rigidity and minimizing overall dimensions.
Smart Images

Figure IMGAF001_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present invention concerns the field of processing ceramic slabs.
[0002] In particular, the present invention concerns a squaring machine for processing ceramic slabs, such as for example marble or granite stoneware slabs.PRIOR ART
[0003] In the field of processing ceramic slabs, such as for example marble or granite stoneware slabs, as well as glass slabs or other similar slabs, it is known to use squaring machines which, in particular, are used to bring two opposed sides of the slab substantially parallel and the adjacent sides substantially square to the first.
[0004] Such known squaring machines generally comprise a base frame comprising a baseplate, provided with common rests on the ground, and defining an upper floor that develops for the entire length of the squaring machine.
[0005] The base frame then comprises a pair of parallel longitudinal banks or flanks associated with the baseplate, above the floor defined by the same, in a movable manner in mutual approach and distancing, along a sliding direction.
[0006] These banks or flanks each support a respective set of abrasive tools, each set of which is adapted to intercept a respective side of the slab, and each a conveyor belt, where said conveyor belts make a resting surface available for the movable slab as a whole in order to advance the slab along said set of abrasive tools.
[0007] The set of tools are, therefore, integral in movement on the respective flanks with respect to said sliding direction.
[0008] In use, before starting processing a type of slab, the squaring machine is equipped and the banks, and with them the conveyor belts and the tools of the respective set, positioned at a mutual distance suitable for the width of the slab to be processed.
[0009] As is known, it is often necessary to work on the abrasive tools mounted on the bank, for example for ordinary and / or extraordinary maintenance.
[0010] A known drawback of such known squaring machines, however, is that often the banks come to be at a mutual distance above the baseplate, such that the baseplate becomes an obstacle for the operator to reach the tool or tools on which it is necessary to operate.
[0011] An object of the present invention is to solve the aforementioned drawback of the prior art, within the framework of a simple, rational and relatively lowcost solution.
[0012] Such object is achieved by the features of the invention reported in the independent claim.
[0013] The dependent claims outline preferred and / or particularly advantageous aspects of the invention.DISCLOSURE OF THE INVENTION
[0014] The invention, in particular, makes available a squaring machine for processing slabs, for example ceramic or glass slabs or the like, comprising: a load-bearing frame; a pair of side banks (or flanks) supported by said load-bearing frame and movable in mutual approach / distancing along a mutual horizontal flanking direction, wherein each side bank carries: ∘ a set of spindles each having an abrasive tool rotating about a respective rotation axis; and ∘ at least one belt (or tape) of a conveyor (e.g. each a belt or tape of a respective conveyor), wherein said belts (carried by the side banks) make available a movable resting surface adapted to receive and move at least one slab or a succession of slabs along a horizontal advancement direction orthogonal to the flanking direction; wherein the load-bearing frame comprises a plurality of bridge supports aligned along the advancement direction, wherein each bridge support comprises: ∘ a pair of uprights each of which has a lower end resting on the ground, and ∘ a crossbar (for connection between the uprights) parallel to the flanking direction, the side banks being slidably associated with the crossbars of the bridge supports along the flanking direction in mutual approach / distancing.
[0015] Thanks to this solution, the invention makes available a squaring machine in which the architecture of the load-bearing frame makes it easy to perform maintenance operations of the abrasive tools.
[0016] In particular, thanks to these bridge supports that below support the movable side banks on which the spindles are mounted, it is possible for the operator to reach the various spindles and the abrasive grindstones mounted on them in total comfort, without obstacles given by the load-bearing frame, regardless of the position assumed by the side banks with respect to the flanking direction.
[0017] Another aspect of the invention provides that each of said bridge supports may further comprise a reinforcing crossbar (for connection between the uprights) parallel to the crossbar and proximal to the lower end of the uprights to which it is fixed.
[0018] Thanks to this solution, the architecture of the bridge supports gives them a high structural rigidity, which makes them able to support all the necessary weight, and at the same time allows them to minimise the overall dimensions thereof compared to the squaring machine.
[0019] Yet another aspect of the invention provides that the load-bearing frame may further comprise a plurality of little crossbars for connection of the bridge supports connecting two consecutive bridge supports.
[0020] Thanks to this solution, the structure of the load-bearing frame is further able to confer a high structural rigidity to the same, without affecting the accessibility for the operators involved in the ordinary and / or extraordinary maintenance of the tools regardless of the positioning of the side banks along the sliding direction, and with them of the spindles, along the sliding direction.
[0021] A further aspect of the invention provides that the spindles of said set can be misaligned in plan view with respect to the bridge supports of the load-bearing frame.
[0022] Thanks to this solution, the arrangement of the spindles and of the bridge supports of the base frame is optimal in order to allow easy access to the spindles regardless of their positioning along the sliding direction.
[0023] In fact, at the spindles the operator does not meet the bridge supports which, therefore, do not represent an obstacle to manoeuvres.
[0024] Another aspect of the invention provides that the squaring machine may comprise at least one pair of platforms each of which is fixed (externally, i.e. on the opposite side with respect to the resting surface) to a respective side bank and integral therewith (in movement) along the flanking direction, so as to be arranged below one or more of said spindles of a respective set of spindles at a distance therefrom.
[0025] Thanks to this solution, accessibility for the operator to the abrasive tools is greatly facilitated.
[0026] In fact, the operator will be able to climb onto the platform, moving to a height from the ground such as to easily reach the spindles mounted on the banks.
[0027] In addition, since the platforms are fixed to the side banks and movable therewith, they are always correctly positioned with respect to the spindles and ready for use.
[0028] Overall, therefore, maintenance operations are easier and faster.
[0029] Another aspect of the invention provides that each platform may comprise a floor and (at least) a pair of support legs connected below the floor, each of which rests on the ground by means of a rolling body.
[0030] Thanks to this solution, the structure of the platforms is particularly rational and effective in order to allow them to move along the flanking direction integrally with the side banks. Yet another aspect of the invention provides that the platforms can be offset along the advancement direction with respect to the bridge supports.
[0031] Thanks to this solution, the positioning of the platforms is optimal.
[0032] Yet another aspect of the invention provides that the squaring machine can comprise a pair of suction ducts, each of which is associated with a respective set of tools and adapted to allow the suction of dust generated by the removal of material from the slab made by them.
[0033] Thanks to this solution, the squaring machine is designed to allow the suction of dust generated during processing.
[0034] A further aspect of the invention provides that each suction duct can be fixed to a respective side bank and movable therewith along the flanking direction, and furthermore be subservient to the abrasive tools of at least one part of the set of spindles of a side bank; and that each suction duct can be adapted to allow the suction of dust generated by the removal of material from the slab made by the abrasive tools of the respective set of spindles.
[0035] Yet another aspect of the invention provides that each of said suction ducts can be arranged with the longitudinal axis substantially parallel to the advancement direction (or in any case orthogonal to the flanking direction) and also arranged at a (vertical) height below the crossbars of the bridge supports and above the lower end of the uprights thereof.
[0036] Thanks to this solution, the ducts do not interfere with the banks, which can therefore be supported and movable without obstacles along the sliding direction.
[0037] Thanks to this solution, the banks can be supported effectively and constantly regardless of the position assumed with respect to the flanking direction. Another aspect of the invention provides that each suction duct can be arranged at a (vertical) height below the crossbars of the bridge supports and above the reinforcing crossbars and movable in the interspace therebetween.
[0038] Thanks to this solution, the positioning of the suction ducts is particularly intuitive and easy.
[0039] In addition, thanks to the presence of the reinforcing crossbar, the suction ducts are supported below, making the squaring machine particularly robust overall.
[0040] Yet another aspect of the invention provides that the load-bearing frame may comprise (for example only) three bridge supports aligned with each other and at a mutual non-zero distance along the advancement direction, of which two end bridge supports and one central bridge support (equidistant from the two end bridge supports).
[0041] Thanks to this solution, the structure of the load-bearing frame is minimal and at the same time structurally effective in order to support the various other components of the squaring machine.
[0042] A further aspect of the invention provides that each spindle of each set of spindles can be misaligned, according to a plan view, with respect to the bridge supports of the load-bearing frame, i.e. that each spindle can be offset along the advancement direction with respect to the bridge supports of the load-bearing frame.
[0043] Thanks to this solution, the ordinary or extraordinary maintenance operations of the spindles or abrasive grindstones mounted thereon are even easier.
[0044] Another aspect of the invention provides that the squaring machine may comprise a translation movement of the side banks, and that said translation movement may comprise at least one drive mechanism associated with (i.e. mounted on) a respective bridge support, said drive mechanism comprising: a screw, connected (i.e. fixed) to the crossbar of the respective bridge support, and arranged with its own longitudinal axis parallel to the flanking direction, said screw being provided along its longitudinal development with a first thread and a second thread (distinct) mutually opposed (i.e. with opposed winding directions), and a pair of augers, of which a first auger and a second auger, each of which is screwed at a respective one between said first thread and second thread, the first auger and the second auger each being connected to a respective side bank so as to move the same along the flanking direction.
[0045] Yet another aspect of the invention provides that each drive mechanism may comprise an electric motor connected to the screw and configured to drive the screw in rotation on itself with respect to a rotation axis parallel to the flanking direction.
[0046] A further aspect of the invention provides that the screw, the first auger and the second auger can be at least partially, for example preferably entirely, contained in an accommodating channel made in the crossbar of the respective bridge support.
[0047] Another aspect of the invention provides that the transfer assembly may further comprise at least one guide mechanism of the side banks along the flanking direction, for example a guide mechanism for each bridge support, said guide mechanism comprising: (at least) a pair of carriages each of which is movable (in translation) along a sliding guide, for example preferably a recirculating ball guide, which develops longitudinally along the flanking direction, wherein each carriage is connected (and fixed) to a respective side bank of said side banks (for example by means of a respective support bracket that can be fixed, for example screwed, to the respective carriage and also fixed, for example screwed, to the respective side bank), and also connected to a respective one between the first auger and the second auger.
[0048] A further aspect of the invention provides that the sliding guide can be fixed (without residual degrees of freedom) to the crossbar of a bridge support (for example in particular to the crossbar of a bridge support to which a drive mechanism is associated).
[0049] Still, a further aspect of the invention provides that the sliding guide and the pair of carriages can preferably be at least partially, for example preferably entirely, contained in an accommodating channel made in the crossbar of the respective bridge support (for example in particular in the crossbar of a respective bridge support to which a drive mechanism is associated).
[0050] Still, a further aspect of the invention provides that the first auger and the second auger can each be made as a single body with a respective carriage.BRIEF DESCRIPTION OF THE DRAWINGS
[0051] Further features and advantages of the invention will be more apparent after reading the following description provided by way of a non-limiting example, with the aid of the figures illustrated in the accompanying drawings. Figure 1 is a first perspective view of a squaring machine according to the invention. Figure 2 is a front view from above of the squaring machine of figure 1. Figure 3 is a side front view of the squaring machine of figure 1. Figure 4 is a perspective view of a bridge support of the squaring machine of figure 1. Figure 5 is a front view of another embodiment of a bridge support usable in the squaring machine according to the invention. Figure 6 is a sectional view along trace VI-VI of figure 3 of the squaring machine itself. Figure 7 is an enlarged view of a portion of figure 6. Figure 8 is a front view from behind of a spindle of the squaring machine of figure 1. Figure 9 is a side view in partial section / transparency of the spindle of figure. 8. Figure 10 is a sectional view along trace X-X of figure 9. Figure 11 is a schematic perspective view of a portion of the spindle in which a transmission and a tensioning assembly are better visible. Figure 12 is a schematic longitudinal sectional view of the spindle of figure 8. Figure 13 is a particularly schematic view of a secondary motor shaft and a gear reducer connected thereto. Figure 14 is a schematic perspective view in partial transparency of a bridge support and of a tract of lower portions of the side banks slidably associated with the bridge support. Figure 15 is the view of figure 13 in section with respect to a vertical median sectional plane of the bridge support parallel to the longitudinal development thereof. DETAILED DESCRIPTION
[0052] With particular reference to these figures, 10 denotes overall a squaring machine for processing slabs 15 such as, for example, ceramic slabs 15 in marble or stoneware (for example single-fired or double-fired porcelain stoneware) or granite or other natural stone, or even slabs 15 in glass or similar.
[0053] Each slab 15 substantially has a shape of a parallelepiped with a reduced height (thickness) and a substantially quadrangular base (in plan), for example rectangular or square. In practice, the slab has two first opposed flanks that are substantially parallel and two second flanks adjacent to the first flanks and opposed to each other and substantially parallel.
[0054] The squaring machine 10, as will better appear below, comprises a load-bearing frame 20 that supports a movable resting surface P, preferably substantially horizontal, adapted to receive restingly at least one slab 15 (for example a succession of slabs) and to advance it (in an advancement sense) along a advancement direction A (for example horizontal or substantially horizontal).
[0055] This load-bearing frame 20 comprises, first of all, a plurality of bridge supports 25 for the squaring machine 10 to rest on the ground.
[0056] Such bridge supports 25 of the load-bearing frame 20 are preferably all homologous in shape and dimensions.
[0057] These bridge supports 25 are between them preferably aligned with respect to the advancement direction A, and also arranged at a mutual non-zero distance along the advancement direction itself.
[0058] Each bridge support 25 is rigid, i.e. non-deformable when subjected to the usual loads for which it is envisaged, for example metallic.
[0059] Each bridge support 25, as best visible in figure 4 or 5, comprises a pair of opposed and parallel uprights 30, vertical or substantially vertical, each of which has a lower end for resting on the ground G and an opposed upper end.
[0060] Each bridge support 25 then comprises a crossbar 35 for connecting the uprights 30, which develops longitudinally orthogonally thereto, i.e. substantially horizontally and also orthogonally to the advancement direction A, fixed to the uprights 30 at the upper ends thereof (for example above the uprights 30).
[0061] Each bridge support 25 may also comprise at least one reinforcing crossbar 40 for connection between the uprights 30, which (is parallel to the crossbar 35, that is) develops longitudinally orthogonally to the uprights 30, i.e. substantially horizontally and also orthogonally to the advancement direction A.
[0062] Said reinforcing crossbar 40 is fixed to the uprights 30 at or in any case near the lower end thereof, i.e. it is fixed to each of said uprights 30 at a distance from the lower end thereof greater than the distance between said reinforcing crossbar 40 and the upper end of the upright 30.
[0063] In other words, as best visible in figures 4 or 5, the reinforcing crossbar 40 can substantially define an "H"-shaped structure with the uprights 30.
[0064] Preferably, as best visible in these figures 4 or 5, the reinforcing crossbar 40 can be provided below with feet for resting 45 on the ground G.
[0065] Still, each bridge support 25 may comprise a reinforcing upright 50, which is parallel to the uprights 30 and axially interposed therebetween, preferably in a position equidistant from each of the uprights 30.
[0066] Said reinforcing upright 50 develops longitudinally substantially vertically and has a first (lower) longitudinal end fixed, for example screwed, to the reinforcing crossbar 40 and a second longitudinal end fixed, for example screwed, to the crossbar 35.
[0067] Returning to the crossbar 35 of the bridge support 25, as visible in figure 5, this can be defined by a single profile K (for example metallic) that makes the entire development of the crossbar 35 available, or as visible in figure 4, this can be defined by several profiles (for example homologous to each other in shape and dimensions) which are arranged in succession to each other to make the (longitudinal) development of the crossbar 35 available as a whole.
[0068] In this case, as visible in figure 4, each profile K may have one end fixed to a respective upright 30 and the other end fixed to the reinforcing upright 50.
[0069] Similarly, the reinforcing crossbar 40, as visible in figure 5, can be defined by a single profile K (for example metallic) which makes the entire development of the reinforcing crossbar 40 available, or, as visible in figure 4, this can be defined by several respective profiles (for example homologous to each other in shape and dimensions) which are arranged in succession to each other to make the development of the reinforcing crossbar 40 available as a whole.
[0070] In this case, as visible in figure 4, each profile K of the reinforcing crossbar 40 may have one end fixed to a respective upright 30 and the other end fixed to the reinforcing upright 50.
[0071] This possible modularity of the crossbar 35 and of the reinforcing crossbar 40 allows the load-bearing frame 20 to be adapted (in width) to the format of the slabs 15 being processed.
[0072] As better visible in figure 1 or 2, said plurality of bridge supports 25 comprises at least two end bridge supports 25, i.e. each of which is arranged at (or in any case near) a respective (longitudinal) end of the squaring machine 10 with respect to the advancement direction A, and at least one intermediate bridge support 25 interposed between the end bridge supports 25.
[0073] For example, the load-bearing frame 20 can comprise three bridge supports 25, for example only three bridge supports 25, aligned with each other and at a mutual non-zero distance along the advancement direction, of which said two end bridge supports 25, and a central (intermediate) bridge support 25, which is preferably equidistant from the two end bridge supports 25, i.e. it is preferably placed at a median vertical plane of the squaring machine 10 orthogonal to the advancement direction A.
[0074] Optionally, the load-bearing frame 20 may then comprise a plurality of little crossbars 25 for connecting the bridge support which connect two consecutive bridge supports 25 along the advancement direction A.
[0075] Each little crossbar is elongated along its own longitudinal axis and has a first longitudinal end fixed to one of the bridge supports 25, preferably proximally to the lower end of one of the uprights 30 of said bridge support 25, and the opposed end fixed to a consecutive bridge support 25, for example proximally to the lower end of one of the uprights 30 of said consecutive bridge support 25.
[0076] In this case, i.e. in the event that said little crossbars can be present, preferably, two consecutive bridge supports 25 are connected to each other by at least one pair of (reinforcing) little crossbars, each of which connects two respective uprights of the bridge supports 25, i.e. a little crossbar connecting one upright 30 of one bridge support 25 to one upright 30 of the other bridge support 25 and a little crossbar connecting the other upright 30 of said bridge support 25 with the other upright 30 of the other bridge support 25.
[0077] It is possible to provide that, for example, the load-bearing frame 20 can only comprise said plurality of bridge supports 25.
[0078] The squaring machine 10 then comprises a pair of parallel side banks 60, which develop longitudinally along the advancement direction A, and which are supported by the load-bearing frame 20.
[0079] The side banks 60 are slidably associated with the bridge supports 25 of the plurality, that is, slidably associated with the crossbars 35 of the bridge supports 25, in a movable manner in mutual approach / distancing, along a mutual flanking direction B orthogonal to the longitudinal axis of the side banks themselves, that is, with respect to a horizontal or substantially horizontal flanking direction B (and parallel to the resting surface P) and orthogonal to the advancement direction A.
[0080] In other words, the side banks 60 by moving in mutual approach / distancing along said flanking direction B slide along the longitudinal development of the crossbars 35 of the bridge supports 25.
[0081] These crossbars 35 of the bridge supports, in use, are therefore horizontal or substantially horizontal and develop (longitudinally) parallel to the flanking direction B.
[0082] Advantageously, the squaring machine 10 comprises a translation movement of the side banks 60.
[0083] Said translation assembly comprises, first of all, at least one drive mechanism, for example at least one pair of drive mechanisms each of which is associated with, i.e. mounted on, a respective one of said bridge supports 25, preferably at least one pair of drive mechanisms each of which is associated (that is, mounted) on a respective one of said end bridge supports 25.
[0084] It is not excluded, however, that the squaring machine may comprise a drive mechanism for each bridge support 25.
[0085] Each drive mechanism comprises a screw 65, connected (i.e. fixed) to the crossbar 35 of the respective bridge support 25, and arranged with its own longitudinal axis parallel to the flanking direction B.
[0086] The screw 65 is provided along its longitudinal development with a first thread F1 and a second thread F2 (distinct) mutually opposed (i.e. with opposed winding senses).
[0087] Each drive mechanism then comprises a pair of nuts C1,C2, of which a first nut C1 and a second nut C2, each of which is screwed at a respective one of said first thread F1 and second thread F2.
[0088] Each drive mechanism again comprises an electric motor M1, for example brushless, connected to the screw 65 and configured to drive the screw 65 in rotation (on itself), around a rotation axis parallel to the flanking direction B, selectively in one sense or in the opposite sense.
[0089] The electric motors M1 of the drive mechanisms are independent of each other and adapted to be driven synchronously, i.e. at the same speed and in the same sense.
[0090] The rotational actuation of the screw 65 in one direction results in a mutual approach of the first nut C1 and the second nut C2 along the flanking direction B, while the rotational actuation of the screw 65 in the opposite direction results in a mutual distancing of the first nut C1 and the second nut C2 with respect to the flanking direction B.
[0091] The first nut C1 and the second nut C2 are, as will appear better below, each connected (directly or indirectly) to a respective side bank 60 so as to move the same along the flanking direction B.
[0092] The screw 65 and the first and second nuts C1,C2 are preferably at least partially, for example preferably entirely, contained in an accommodating channel made in the crossbar 35 of the respective bridge support 25.
[0093] In other words, the crossbar 35 of the bridge support 25 can be substantially C-shaped, i.e. be concave and arranged with concavity facing the ground, i.e. towards the reinforcing crossbar 40, so as to define an accommodating channel inside which the screw 65 and the nuts C1,C2 (first and second) are at least partially accommodated.
[0094] The translation movement then comprises at least one guide mechanism of the side banks 60 along the flanking direction B, for example a guide mechanism for each bridge support 25.
[0095] This guide mechanism, better visible in figure 7, comprises (at least) a pair of carriages 75 each of which is movable (in translation) along a sliding guide 80, preferably a recirculating ball guide, which develops longitudinally along the flanking direction B.
[0096] For example, said sliding guide 80, which as said is preferably of the recirculating ball type, is fixed, without residual degrees of freedom, to the crossbar 35 of the bridge support 25.
[0097] The sliding guide 80 and the pair of carriages 75 are preferably at least partially, for example preferably entirely, contained in said accommodating channel made in the crossbar 35 of the respective bridge support 25.
[0098] Each carriage 75 is connected (and fixed) to a respective side bank 60 of said side banks, for example by means of a respective support bracket 85 which is fixed, for example screwed, to the respective carriage 75 and further fixed, for example screwed, to the respective side bank 60.
[0099] Preferably, each guide mechanism may comprise two pairs of carriages 75 movable along the sliding guide 80, each pair of which is connected to a respective side bank 60. For example, as best visible in figure 14, each pair of carriages 75 is connected to the respective side bank 60 by means of a same support bracket 85, which is fixed, for example screwed, to each of said carriages 75 of the respective pair and fixed to the respective side bank 60.
[0100] Each side bank 60 is therefore integral in translation along the flanking direction B to the respective carriage 75, i.e. to the carriages 75 of the respective pair, along the sliding guide.
[0101] Preferably, each guide mechanism may comprise a further sliding guide 95, for example of the recirculating ball type, which develops longitudinally along the flanking direction B. For example, said further sliding guide 95 can be associated, i.e. mounted, on the reinforcing crossbar 40 of the respective bridge support 25.
[0102] Each guide mechanism can therefore comprise a pair of further carriages 100 each of which is movable, in translation, along the further sliding guide 95 (and therefore movable along the flanking direction B) and connected to a respective side bank 60, for example screwed to the respective side bank.
[0103] Preferably, said further sliding guide 95 and said pair of further carriages 100 can be accommodated, at least partially, for example entirely, within a channel made in the reinforcing crossbar 40.
[0104] In other words, the reinforcing crossbar 40 can have a groove that develops longitudinally along the flanking direction, which substantially defines a concavity facing upwards, i.e. towards the crossbar 35 of the respective bridge support 25.
[0105] Said groove defines an accommodating channel within which said further sliding guide 95 and said pair of further carriages 100 are at least partially accommodated, preferably entirely accommodated.
[0106] Preferably, each guide mechanism, as best visible in figure 14, may comprise two pairs of further carriages 100 movable along the further sliding guide 100, each pair of which is connected, for example screwed, to a respective side bank 60.
[0107] In particular, each side bank 60 is arranged resting (and fixed) on the respective further carriage 100, i.e. on the respective pair of further carriages 100.
[0108] The guide mechanisms associated with the bridge supports 25 where a drive mechanism is provided are connected to said drive mechanism so as to transmit the motion of the first nut C1 and of the second nut C2 to the side banks 60.
[0109] In particular, the carriages 75 of said guide mechanisms are each connected to a respective one between the first nut C1 and the second nut C2.
[0110] Each (first and second) nut C1,C2, thanks to the sliding guide 80, is therefore prevented from rotating, and (when the screw is driven in rotation) translates along the flanking direction B in one sense or the other depending on a rotation sense of the screw 65.
[0111] For example, it is possible to envisage that the first nut C1 and the second nut C2 can each be made as a single body with a respective carriage 75, i.e. with a respective pair of carriages 75.
[0112] The translation of the first nut C1 and the second nut C2, in mutual approach / distancing along the flanking direction B, results in the translation in mutual approach / distancing of the carriages 75 of the respective guide mechanism and therefore the mutual approach / distancing of the side banks 60.
[0113] As mentioned above, the load-bearing frame 20 supports a movement assembly for the movement of the slabs 15 that makes available said resting surface P movable along the advancement direction A.
[0114] In particular, the movement assembly is configured to move each slab 15 so that it lies (with the large visible / laying surfaces) on said resting surface P, for example substantially horizontal, and advances along the advancement direction A, with the first flanks to be rectified parallel to the advancement direction.
[0115] The movement assembly comprises a pair of conveyors, in particular of the belt or tape type, each of which is supported on (i.e. mounted on) a respective side bank 60.
[0116] Each conveyor comprises a lower flexible member, in particular a belt 110, which has an upper branch parallel to the advancement direction and defines a portion of the resting surface P movable for the slabs 15.
[0117] The lower flexible members of the pair of conveyors, i.e. the respective upper branches, are substantially coplanar and, together, define (i.e. make available) said resting surface P.
[0118] For example, each lower flexible member comprises said belt 110 closed on itself into a ring and wound on at least one driving pulley, driven in rotation by a respective electric motor, and at least one driven pulley (in the example a plurality of driven pulleys).
[0119] Each (belt or tape) conveyor can then comprise an upper flexible member, which has a lower branch parallel to the advancement direction and defines a movable contact and pressure portion with the slabs 15.
[0120] Each upper flexible member is superimposed, for example superimposed in plan and vertically aligned with the lower flexible member, i.e. with said belt 110, of the respective conveyor.
[0121] For example, each upper flexible member can be associated with the respective side bank 60 in a height-adjustable manner, so as to vary the dimension of the gap existing between the lower flexible member and the upper flexible member, in particular between the upper branch of the lower flexible member and the lower branch of the upper flexible member, as a function of the thickness of the slabs 15.
[0122] The upper flexible members of the pair of tape conveyors, i.e. the respective lower branches, are substantially coplanar and, together, define a (horizontal) contact and pressure surface adapted to contact and press on the upper (visible) surface of the slabs 15. For example, each upper flexible member comprises or consists of a belt closed on itself into a ring and wound on at least one driving pulley, driven in rotation by a respective electric motor (for example coinciding with the electric motor), and at least one driven pulley (in the example a plurality of driven pulleys), not visible.
[0123] The electric motors of both conveyors are driven synchronously (i.e. at the same speed and in the same sense) so as to allow the advancement of the slabs 15 along the advancement direction A with the first flanks parallel to the advancement direction itself.
[0124] The lower flexible members (i.e. said belts 110), i.e. the upper branches thereof, may preferably have a greater length than the respective upper flexible members, i.e. the lower branches thereof, so that one end of the lower flexible members, advantageously the upstream end in the advancement sense of the slabs 15 along the advancement direction A imparted by the movement assembly, is offset with respect to the respective upper flexible member.
[0125] In practice, said offset end of the lower flexible members, i.e. of the belts 110, defines an inlet tract of the movement assembly on which the slab 15 rests before being wedged between the lower flexible members, i.e. said belts 110, and the upper flexible members, i.e. before being wedged between the resting surface P and said contact and pressure surface, and being firmly pressed therebetween.
[0126] The variation of the spacing of the side banks 60 actually defines (i.e. entails) a corresponding variation of the spacing of the conveyors and, therefore, the variation of the amplitude of the resting surface P defined by them as a function of the format of the slabs 15.
[0127] In addition, the spacing of the side banks 60 (i.e. the distance between them with respect to the flanking direction) is adjusted, from time to time according to the dimensions of the slabs 15, in particular the distance between the first flanks thereof, so that the first flanks of the slabs 15 protrude laterally (for a small tract), along a direction parallel to the flanking direction B, with respect to the resting surface P or substantially cantilevered from it.
[0128] Each conveyor may comprise a presser device (not illustrated, per se known and therefore not described in detail), which is configured to push the upper branch of the lower flexible member, i.e. of the belt 110, and the lower branch of the upper flexible member in mutual approach.
[0129] For example the pressor device can comprise one or more support rods arranged inside the ring defined by each flexible member or by the only upper flexible member that support a plurality of sliding blocks aligned and adjacent along the advancement direction C and pushed towards the other flexible member by compression springs.
[0130] For example, the squaring machine 10 may preferably also comprise a centring assembly (not illustrated) configured to centre, with respect to a centring direction parallel to the flanking direction B, the slab 15 on the resting surface P.
[0131] The centring assembly may comprise, for example, a pair of sideboards each slidably associated with respect to a respective side bank 60 and operable, e.g. by a preferably pneumatic actuator, in mutual approach / distancing from the resting surface P.
[0132] The squaring machine 10 then comprises a pair of set of spindles 120, each set of which (comprises a plurality of spindles and) is (carried, i.e. mounted i.e.) fixed to a respective one of said side banks 65 and movable therewith along the flanking direction B.
[0133] Each set of spindles 120, as visible in figure 1 or 2, comprises a plurality of spindles 120 aligned along an alignment direction parallel to the advancement direction A of the slabs 15.
[0134] Each spindle 120 comprises, first of all, a support frame 125, for example substantially cylindrical, internally hollow (i.e. provided with a cavity passing from one axial end to the other of the support frame 125).
[0135] The support frame 125 is rigid, i.e. non-deformable under torsion and / or flexion and / or compression when subjected to the usual loads for which it is envisaged.
[0136] The spindle 120 then comprises a main motor 130, supported by the support frame 125 (i.e. connected, for example indirectly, to the support frame such as to be supported by the same) provided with a main motor shaft W rotating about its own central rotation axis R1.
[0137] The main motor 130 is for example an electric motor provided with a stator and a rotor associated with the main motor shaft W and preferably coaxial therewith.
[0138] The main motor shaft W comprises an (rear) end and an opposed free (front) end, to which a tool-holder plate is rigidly fixed, directly or indirectly, to which an abrasive tool, for example an abrasive grindstone U, is adapted to be fixed.
[0139] Each spindle 120 is thus provided with an abrasive tool, i.e. said abrasive grindstone U, connected to the main motor shaft W and rotating (with the main motor shaft itself) about said central rotation axis R1.
[0140] The abrasive grindstone U is defined by a discoidal / annular body (coaxial to the central axis) comprising an attachment surface, facing the electric motor, which is fixed (in a removable way) to the free end of the motor shaft, for example at said tool-holder plate provided therein, and an opposed free abrasive surface.
[0141] The abrasive surface represents the abrasive front of the abrasive grindstone U, i.e. the front end (i.e. proximal to the resting surface P) of the abrasive grindstone U.
[0142] In particular, the main motor shaft W is inserted rotatably, and preferably coaxially, inside a tube E.
[0143] This tube E (preferably rigid, i.e. not deformable by torsion and / or flexion and / or compression when subjected to the usual loads for which it is envisaged, for example metallic), for example substantially cylindrical, defines a through channel, preferably also cylindrical and coaxial to the tube E.
[0144] The tube E is preferably inserted (preferably coaxially) inside the support frame 125 with the possibility of sliding axially inside (and with respect to) the same along a translation direction parallel to the central rotation axis R1 of the main motor shaft W.
[0145] In particular, the tube E is elongated along its own longitudinal central axis, and has a first axial end, in use distal from the resting surface P, and an opposed second axial end, in use proximal to the resting surface P.
[0146] The tube E is, therefore, inserted inside the support frame 125 and preferably arranged so that the first axial end is (at least partially) arranged externally to the support frame 125.
[0147] The main motor shaft W can therefore be locked axially inside the tube E itself by means of rolling members, and integral with the tube E itself along the translation direction.
[0148] In other words, the main motor shaft W can be fixed inside the tube E with a single rotational degree of freedom.
[0149] Preferably, the rolling members comprise thrust bearings, for example ball bearings.
[0150] In addition, the free end of the main motor shaft W (to which the abrasive grindstone U is fixed) opens (at least partially, along the translation direction) from (i.e. it projects beyond) the (through) channel defined by the tube E at the second end thereof, with the abrasive grindstone U which, in use, is therefore axially interposed between the resting surface P and the tube E.
[0151] Furthermore, the main motor 130 is (by means of the stator or by means of a casing of the main motor 130) fixed to the tube E and movable therewith (integral in translation thereto) along the translation direction.
[0152] The spindle 120 further comprises a bushing 145 (rigid, i.e. not deformable when subjected to the usual torsional and / or traction and / or flexion loads for which it is provided, preferably metallic), internally hollow.
[0153] The bushing 145 is rotatably associated with the support frame 125 with respect to a rotation axis parallel (and for example coincident) with the central rotation axis R1 of the main motor shaft 130.
[0154] The bushing 145, for example in the manner that will best appear below, is connected (indirectly) to the main motor shaft W in such a way that, by rotating, it causes a translation of the main motor shaft W along said translation direction parallel to the central rotation axis R1 of the main motor shaft.
[0155] This bushing 145, in particular, defines with the support frame 125 a screw-nut screw coupling, by means of a thread and a counter-thread (of a shape conjugated to the thread so as to define a shape coupling with it) made respectively on the bushing 145 and on the support frame 125.
[0156] In particular, said screw-nut screw coupling is such that a rotation of the bushing 145 in one direction (for example clockwise) causes a translation thereof along the translation direction in a first sense, while the rotation of the bushing 145 in the opposite direction (for example counterclockwise) causes a translation thereof in a second sense opposite to the first sense.
[0157] The bushing 145 wraps (circumferentially) around the tube E (which is therefore inserted coaxially inside the bushing 145), i.e. said first axial end of the tube E protruding from the support frame 125.
[0158] In particular, the tube E is inserted inside the bushing 145 and integral in translation thereto along the translation direction.
[0159] For example, the tube E can have a dragging ring that radially derives from the tube E itself (for example made as a single body with the tube E), and said dragging ring is substantially fitted to size (with reduced play) inside a circumferential slot, made at the inner surface of the bushing 145.
[0160] In this way, when the bushing 145, by rotating, translates along the translation direction, it pushes on the dragging ring, dragging therewith the tube E along the translation direction (in both senses, and with it the main motor shaft W and for example also the main motor 130).
[0161] For example, such a bushing 145 may be made available by a graduated vernier.
[0162] The spindle 120 can also comprise an anti-rotational pin 150 which is fixed (without residual degrees of freedom) to the support frame 125 so as to open into the cavity defined by the same that houses the tube E.
[0163] The pin 150 is also inserted (by means of a lower axial end thereof, in use) and accommodated inside a slot made in the tube E that develops longitudinally parallel to the translation direction.
[0164] In this way, the tube E can translate (dragged by the bushing 145), with respect to the support frame 125, along the translation direction with the (anti-rotational) pin 150 which, during said translation, remains contained inside the slot.
[0165] At the same time, the tube E is prevented from rotating (with respect to the support frame 125) by means of the anti-rotation pin 150 (which by mechanically interfering with the slot prevents the rotation of the tube E).
[0166] In this way, a rotation of the bushing 145 in a clockwise direction causes a translation of the tube E along the translation direction in a first sense, while a rotation of the bushing 145 in a counterclockwise direction causes a translation of the tube E in the translation direction in a second sense opposite to the first sense.
[0167] It is not excluded that the spindle 120 can be made constructively differently as long as it is provided with a bushing rotating about a rotation axis parallel to the central rotation axis R1 of the main motor shaft W and connected to the main motor shaft W so that a rotation of the bushing causes a translation of the main motor shaft W along the translation direction.
[0168] The spindle 120 then comprises an adjustment assembly configured to translate the main motor shaft W along said translation direction parallel to the central rotation axis R1 thereof with respect to the support frame 125.
[0169] The adjustment assembly, in particular, is connected (for example indirectly) to the bushing 145, as will better appear below, so as to impose the rotation thereof (selectively in one rotation sense or in the opposite sense), with consequent translation thereof along the translation direction in both directions (i.e. selectively in one sense or the other), thereby translating the main motor shaft (and the main motor 130) and the abrasive grindstone U connected to the end thereof.
[0170] The adjustment assembly comprises, for example, a secondary motor 155 of the electric type, provided with a stator and a rotor connected to a secondary motor shaft 160 so as to rotate the same (in both directions, i.e. selectively in one sense or in the opposite sense) around a respective central rotation axis R2 orthogonal to the central rotation axis R1 of the main motor shaft 130.
[0171] In particular, the secondary motor 155 may comprise a rigid support body (i.e. not deformable when subjected to the usual torsional and / or traction and / or flexion loads for which it is provided) and adapted to contain the secondary motor 160 itself, and the secondary motor shaft 160 is provided with a first (rear) end that remains axially contained inside the support body and with an opposed free (front) end protruding from the support body.
[0172] The adjustment assembly then comprises a transmission (for example of the belt type as will appear better below) configured to transmit the rotary motion of the secondary motor shaft 160 to the bushing 145.
[0173] In this way, the rotation of the secondary motor shaft 160 in one sense results in the rotation of the bushing 145 in one sense and therefore the translation of the main motor shaft 130 in one sense along said translation direction, while the rotation of the secondary motor shaft 160 in the opposite sense results in the rotation of the bushing 145 in the opposite sense and therefore the translation of the main motor shaft 130 in the opposite sense along the translation direction.
[0174] In particular, the secondary motor shaft 160 is connected to said transmission by means of a mechanism that allows the rotary motion of the secondary motor shaft 160 to be transmitted to an outlet shaft T orthogonal to the secondary motor shaft 160, i.e. rotating (on itself) about a rotation axis orthogonal to the central rotation axis R2 of the secondary motor shaft 160 and parallel and eccentric with respect to the central rotation axis R1 of the main motor shaft W.
[0175] Such a mechanism, for example, comprises (for example only) a reducer 165.
[0176] Preferably, said reducer 165 may be of the worm screw type S.
[0177] For example, this reducer 165 can be provided, first of all, with an inlet gear 170 connected, directly or indirectly, to the secondary motor shaft 160 so as to be driven by the same.
[0178] This inlet gear 170, for example, comprises a first toothed wheel and a second toothed wheel that mesh with each other (so that the rotation of the first toothed wheel results in the rotation of the second toothed wheel), each of which is rotating about a rotation axis parallel to the central rotation axis R2 of the secondary motor shaft 160.
[0179] In particular, the first toothed wheel is connected, for example keyed or otherwise connected (for example by interposition of an auxiliary toothed wheel), to the secondary motor shaft 160 so as to be placed in rotation by it.
[0180] The reducer 165 then comprises an outlet gear Q, connected to the inlet gear 170 to receive the motion imposed by the secondary motor shaft 160.
[0181] The outlet gear Q comprises, first of all, a worm screw S, which is connected to the inlet gear 170 so as to be driven by it in rotation (on itself) about its own rotation axis parallel (and for example eccentric) to the central rotation axis R2 of the secondary motor shaft 160.
[0182] More in detail, the second toothed wheel of the inlet gear 170 is connected to the worm screw S, for example keyed on the worm screw S or in any case connected to the worm screw S, so that the rotation of the secondary motor shaft 160 (and therefore of the inlet gear 170) results in the rotation (on itself) of the worm screw S around said rotation axis. The worm screw S, by rotating, meshes on a respective toothed wheel of the outlet gear Q placing the same in rotation around a rotation axis orthogonal to the central rotation axis R2 of the secondary motor shaft 160 and parallel and eccentric to the central rotation axis R1 of the main motor shaft W.
[0183] The reducer 165, i.e. said outlet gear Q, therefore comprises said outlet shaft T adapted to be placed in rotation by it around said rotation axis parallel to and eccentric to the central rotation axis R1 of the main motor shaft W.
[0184] In particular, the toothed wheel of the outlet gear Q is connected to said outlet shaft T, for example keyed (or otherwise fixed) or otherwise connected, to said outlet shaft T so that the rotation of the toothed wheel (imposed by the rotation of the worm screw S) about its own rotation axis results in the rotation of the outlet shaft T about said rotation axis parallel and eccentric to the central rotation axis R1 of the main motor shaft W.
[0185] This outlet shaft T is connected, via the transmission, to the actuation bushing 145 of the main motor shaft 130.
[0186] This transmission comprises a drive pulley 180, which is mounted (fixed without residual degrees of freedom) to the outlet shaft T, i.e. to one (free) end of the outlet shaft T, of the reducer 165 and placed in rotation by (and integral in rotation with) it around said rotation axis of the outlet shaft T parallel (and eccentric) to the central rotation axis R1 of the main motor shaft W (i.e. parallel to the translation direction of the main motor shaft W).
[0187] The transmission then comprises a driven pulley or toothed crown 185, preferably of greater diameter than the drive pulley 180, associated (for example keyed or fixed or possibly made) on the bushing 145.
[0188] The transmission again comprises a flexible member, in particular preferably consisting of a belt 190 (preferably toothed), closed on itself into a ring and wound on the toothed pulley connected (fixed and integral in rotation) to the outlet shaft T of the reducer 165 and on the pulley or toothed crown 185 associated with the bushing 145 (i.e. said graduated vernier) so as to transmit the (rotary) motion imposed by the outlet shaft T to the bushing 145 (actually placing the same in rotation with respect to said rotation axis parallel to the flanking direction, i.e. parallel to the rotation axis of the main motor shaft 130) and, therefore, by means of the screw-nut screw coupling between the bushing 145 and the support frame 125, translate (the bushing 145 and with it the tube E and) the main motor shaft W along the translation direction.
[0189] The transmission may further comprise, a tensioning assembly of the flexible member, i.e. of the belt 190.
[0190] This tensioning assembly, as best visible in figure 10, may comprise an eccentric hub 195 fitted on the outlet shaft T (of the reducer 165), which is inserted into a cylindrical cavity 200 with a central axis parallel (and eccentric) to the central rotation axis R1 of the main motor shaft W and orientable with respect to the support frame 125 by rotation within the cylindrical cavity itself.
[0191] Said cylindrical cavity 200 is made in a support casing C, better visible in figure 9, and said support casing C is fixed, for example screwed, to the main motor 130 (for example to the stator or to a casing of the main motor 130 itself) and integral in translation along the translation direction thereto.
[0192] Preferably, to said support casing C (where said cylindrical cavity 200 is made, there can also be fixed (for example screwed), a casing of the reducer 165 such that the reducer is also integral in translation with the main motor 130 along the translation direction.
[0193] The drive pulley 180 of the transmission is mounted on the eccentric hub 195.
[0194] A variation in the orientation of the eccentric hub 195 inside the cylindrical cavity 200 therefore results in a variation in the spacing between the driving toothed pulley and the driven pulley or toothed crown 185, increasing or decreasing (depending on the rotation sense) the tension of the flexible member, i.e. of the belt 190.
[0195] The spindle 120 is rigidly fixed to a respective side bank 60, by means of the support frame 125, and further arranged so that the translation direction imposed by the adjustment assembly on the main motor shaft 130 (and on the abrasive grindstone U) is transverse, for example orthogonal, to the advancement direction A imposed on the slab(s) 15.
[0196] The adjustment assembly is therefore able to move (for fine adjustment) the abrasive grindstone U closer to / away from the resting surface P and thus to the slab 15 placed on the resting surface P itself.
[0197] During use, the abrasive grindstone U of each spindle 120, i.e. the abrasive surface thereof, is adapted to be placed in a predetermined working position, wherein the abrasive surface of the abrasive grindstone U is intended to come into contact with a first flank to be rectified of the slab 15.
[0198] Each spindle 120 of each set is offset along the advancement direction with respect to the bridge supports 25 of the load-bearing frame 20, i.e. it is misaligned in plan (view) with respect to the bridge supports 25 of the load-bearing frame 20.
[0199] In particular, with reference to the squaring machine 10 illustrated in figure 1 which comprises three bridge supports 25, each set of spindles 120 comprises a first group of spindles 120 interposed axially (i.e. along the advancement direction) between an end bridge support 25 and the central bridge support 25 and a second group of spindles 120 interposed axially (i.e. along the advancement direction) between the central bridge support 25 and the other end bridge support 25.
[0200] Furthermore, each set of spindles 120 comprises at least one spindle 120 facing a spindle 120 of the other set of spindles 120, wherein the central rotation axes of the main drive shafts of the facing spindles 120 are coaxial with each other.
[0201] Each set of spindles 120 comprises a plurality of spindles 120 arranged with the central rotation axis R1 (of the main motor shaft W, and therefore of the abrasive grindstone U) horizontal (or substantially horizontal, i.e. parallel to the resting surface P) and orthogonal to the advancement direction A.
[0202] Each set of spindles 120, as can be understood from figure 6, can comprise at least one spindle 120, arranged with the main rotation axis R1 (of the main motor shaft W, and therefore of the abrasive grindstone U) lying on a plane inclined with respect to the horizontal plane and in any case orthogonal to the advancement direction A (adapted to carry out a so-called chamfering operation).
[0203] The squaring machine 10 then comprises at least one pair of platforms 205 each of which is fixed externally (i.e. on the opposite side with respect to the spacing between the side banks 60, i.e. fixed to a respective side bank on the opposite side with respect to the resting surface P) to a respective side bank 60 and movable therewith along the flanking direction B.
[0204] Each platform 205, as will better appear below, is adapted to make available a substantially horizontal walkable surface 210, placed at a greater vertical height than the ground G for the squaring machine 10 to rest on, to facilitate the operator in reaching the spindles 120 mounted on the side bank 60.
[0205] In particular, each platform 205 is fixed to the respective bank so as to be arranged below one or more of said spindles 120 of a respective set of spindles 120 at a (not zero) distance therefrom.
[0206] Preferably, as best visible in figure 1 or 2, the squaring machine 10 may comprise a platform 205 associated with each side bank 60 for each pair of bridge supports 25 (and axially interposed therebetween along the advancement direction A).
[0207] For example, with reference to the illustrated squaring machine 10 comprising three bridge supports 25, the squaring machine 10 comprises a pair of platforms 205 fixed externally (i.e. on the opposite side with respect to the spacing between the side banks) to one side bank 60, and a pair of platforms 205 fixed externally to the other side bank 60.
[0208] Each pair of said platforms 205 comprises a platform 205 interposed axially between one end bridge support 25 and the central bridge support 25 and arranged below the first group of spindles 125 of the respective set, and a platform interposed axially between the central bridge support 25 and the other end bridge support 25 and arranged below the second group of spindles 125 of the respective set.
[0209] Each platform comprises a floor 215, rigid or non-deformable when subjected to the usual loads for which it is envisaged, and at least one pair of support legs 220 connected below the floor 215.
[0210] For example, each platform 205 may comprise three support legs 220 connected below the floor, preferably homologous to each other, and also preferably placed equidistant from each other.
[0211] Preferably, the support legs 220 can also be aligned with each other along the advancement direction A.
[0212] For example, said support legs 220 can be connected to the floor 215, below it, at an edge of the floor 215 distal from the respective side bank 60.
[0213] Each of the support legs 220 rests on the ground G by means of a rolling body 225, preferably a wheel having at least one horizontal rotation axis orthogonal to the flanking direction (i.e. parallel to the advancement direction).
[0214] For example, it is possible to provide that each floor 215 can be hinged to the respective side bank 60 around a horizontal hinging axis orthogonal to the flanking direction B (i.e. parallel to the advancement direction A), so that the platform 205 is alternately movable between a working position, in which the floor 215 defines a horizontal walkable surface, and a rest position, in which the floor 215 is inclined with respect to the horizontal. Alternatively, it is possible to provide that the floor 215 can be rigidly fixed to the respective bank in such a way as to always define (or make available) said horizontal walkable surface.
[0215] Each platform, as can be better appreciated in figure 2, is axially offset with respect to the bridge supports 25 of the load-bearing frame 20 along the advancement direction A, i.e. misaligned (according to a plan view) with respect to the bridge supports 25 of the load-bearing frame 20.
[0216] The squaring machine 10 then comprises at least one pair of suction ducts 230, each of which is fixed to a respective side bank 60 and movable therewith along the flanking direction B.
[0217] Each suction duct 230 is adapted to allow the suction of dust generated by the removal of material from the slab made by the abrasive tools of the respective set of spindles 120. In this sense, each suction duct is adapted to be connected to a suction impeller, for example forming part of the squaring machine 10 or external thereto, so as to allow the suction of dust generated during the squaring processing of the slab.
[0218] Each suction duct may be subservient to the abrasive tools of at least a part of the set of spindles 120 of a side bank 60.
[0219] For example, with reference to the squaring machine 10 illustrated in the attached figures, this may comprise a pair of suction ducts 230 for each set of spindles 120, of which a suction duct subservient to the first group of spindles 120 of the set and a second suction duct subservient to the second group of spindles 120 of the respective set.
[0220] Each of said suction ducts 230 is arranged with the longitudinal axis substantially parallel to the advancement direction A and is arranged at a height below the crossbars connecting the bridge supports 25 and above the lower end of the uprights 30 thereof.
[0221] In particular, each suction duct 230 is arranged at a height below the crossbars 35 of the bridge supports 25 and above the reinforcing crossbar 40 and movable in the interspace therebetween.
[0222] Each suction duct 230 then comprises (or is in any case connected to) at least one suction nozzle that opens above towards the spindles 120, for example at a vertical height below (or at most substantially equal to) that of the resting surface P 65.
[0223] In particular, each suction duct may comprise (i.e. be connected to) a plurality of suction nozzles each of which is associated with a respective spindle 120, i.e. each of which is arranged (and opens) at a respective spindle 120.
[0224] Each suction nozzle can branch from the respective suction duct, developing substantially vertically away therefrom, and has an end distal from the suction duct by means of which it opens towards (for example at) the respective spindle 120.
[0225] Preferably, each suction nozzle is vertically (at least partially) aligned with (and placed below) the respective spindle 120 to which it is associated, for example in particular vertically aligned with (and placed below) the abrasive grindstone U of the respective spindle 120.
[0226] The squaring machine 10 can also comprise an electronic control unit Y (only schematically illustrated in figure 1), provided with a memory unit, and which can be operatively connected to a user interface of the squaring machine 10 by means of which the electronic control unit Y can emit one or more signals, for example of the visible and / or sound type, perceptible by a user or possibly receive one or more inputs.
[0227] For example, the user interface could be defined by a PC with monitor and, for example, be fixed to the load-bearing frame 20 of the squaring machine 10 or alternatively positioned remotely or still be of the type of a movable device.
[0228] The electronic control unit can be configured for the management and control of the operation of the squaring machine 10.
[0229] In particular, the electronic control unit can be operatively connected to the main motor 130 (of each spindle) to command its activation and deactivation, thus activating and deactivating the rotation of the relative grindstone U around the central rotation axis R1.
[0230] The electronic control unit Y can also be operatively connected to the adjustment assembly (of each spindle) to command the activation and deactivation thereof so as to selectively adjust the position of the abrasive grindstone U along the advancement direction. Still, the electronic control unit Y can be operatively connected to the translation movement of the side bank 60 to command the activation and deactivation thereof so as to adjust the mutual position of the side banks 60 along the flanking direction B.
[0231] The invention thus conceived is susceptible to many modifications and variants, all falling within the same inventive concept.
[0232] Moreover, all details can be replaced by other technically equivalent elements.
[0233] In practice, the materials used, as well as the contingent shapes and dimensions, can be whatever according to the requirements without for this reason departing from the scope of protection of the following claims.
Claims
1. A squaring machine (10) for processing slabs (15) comprising: - a load-bearing frame (20); - a pair of side banks (60) supported by said load-bearing frame (20) and movable in mutual approach / distancing along a mutual horizontal flanking direction (B), wherein each side bank (60) carries: ∘ a set of spindles (120) each having an abrasive tool (U) rotating about a respective rotation axis (R1); and ∘ at least one belt (110) of a conveyor, wherein said belts make available a movable resting surface (P) adapted to receive and move at least one slab (15) or a succession of slabs (15) along a horizontal advancement direction (A) orthogonal to the flanking direction (B); wherein the load-bearing frame (20) comprises a plurality of bridge supports (25) aligned along the advancement direction (A), wherein each bridge support (25) comprises: ∘ a pair of uprights (30) each of which has a lower end resting on the ground, and ∘ a crossbar (35) parallel to the flanking direction (A), the side banks (60) being slidably associated with the crossbars (35) of the bridge supports (25) along the flanking direction (B) in mutual approach / distancing.
2. The squaring machine (10) according to claim 1, wherein each of said bridge supports (25) further comprises a reinforcing crossbar (40) parallel to the crossbar (35) and proximal to the lower end of the uprights (30) to which it is fixed.
3. The squaring machine (10) according to claim 1, further comprising at least one pair of platforms (205) each of which is fixed to a respective side bank (60) and integral therewith along the flanking direction (B), so as to be arranged below one or more of said spindles (125) of a respective set of spindles (125) at a distance therefrom.
4. The squaring machine (10) according to the preceding claim, wherein each platform comprises a floor (215) and a pair of support legs (220) connected below the floor (215) each of which rests on the ground by means of a rolling body (225).
5. The squaring machine (10) according to claim 1, comprising at least one pair of suction ducts (230), each of which is fixed to a respective side bank (60) and movable therewith along the flanking direction (B) and is subservient to the abrasive tools (U) of at least one part of the set of spindles (125) of a side bank (60); each suction duct being adapted to allow the suction of dust generated by the removal of material from the slab (159) made by the abrasive tools (U) of the respective set of spindles (125).
6. The squaring machine (10) according to the preceding claim, wherein each of said suction ducts (230) is arranged with the longitudinal axis substantially parallel to the advancement direction (A) and is arranged at a height below the crossbars of the bridge supports (25) and above the lower end of the uprights (30) thereof.
7. The squaring machine (10) according to the preceding claim, in relation with claim 2, wherein each suction duct (230) is arranged at a height below the crossbars (35) of the bridge supports (25) and above the reinforcing crossbars (40) and movable in the interspace therebetween.
8. The squaring machine (10) according to claim 1, wherein the load-bearing frame (20) comprises three bridge supports (25) aligned with each other and at a mutual non-zero distance along the advancement direction (A), of which two end bridge supports (25) and one central bridge support (25).
9. The squaring machine (10) according to claim 1, wherein each spindle (125) of each set of spindles (125) is misaligned, according to a plan view, with respect to the bridge supports (25) of the load-bearing frame (20).
Citation Information
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