Rolling mill for solid long products

The rolling mill design addresses the complexity and maintenance issues of existing mills by using a simplified control system and roll arrangement to allow all cages to be removed from the same side, reducing costs and maintenance through the elimination of special angle gearboxes and water ingress.

JP7743255B2Active Publication Date: 2025-09-24SMS GRP SPA
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Patent Information

Application Number
JP2021165022
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-08
Filing Date
2021-10-06
Publication Date
2025-09-24
Estimated Expiration
2041-10-06

AI Technical Summary

Technical Problem

Existing multi-cage rolling mills for solid long products face challenges with complex and expensive control systems that require special angle gearboxes, leading to corrosion issues and high maintenance costs, while also lacking the ability to remove all cages from the same side of the mill.

Method used

A rolling mill design with a simplified control system using gear motor groups and single extensions for each roll, eliminating the need for special angle gearboxes, and allowing all roll holder cartridges to be removed from the same side by rearranging the angular positions of rolls and movable actuators.

Benefits of technology

The solution enables efficient, cost-effective roll replacement with reduced maintenance needs and simplified logistics, while maintaining operational efficiency and avoiding water penetration into the lubrication system.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a rolling machine for a solid long product having a simplified roll control system capable of extracting all cages from a same side of the rolling machine and simultaneously eliminating need for a special angle gearbox.SOLUTION: All rolling stations 100 are configured to allow lateral withdrawal of respective roll holder cartridges 120 from a same side of a rolling mill, corresponding to a first side 1a or a second side 1b. A station having a vertical roll disposed on a cartridge withdrawal side has an actuator 141 of the vertical roll movable relative to a load-bearing structure 110, and actuators 142 and 143 having a fixed other roll. All stations having vertical rolls arranged on opposite sides of the cartridge withdrawal side have fixed actuators 142 and 143. Single extension parts of the all stations are movable relative to the load-bearing structure.SELECTED DRAWING: Figure 11
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Description

[Technical Field]

[0001] The present invention relates to a rolling mill for solid long products such as bars, rods and wire rods.

[0002] Advantageously, the rolling mill according to the invention is intended in particular for carrying out finish rolling. [Background technology]

[0003] Longitudinal rolling of solid elongated products has been carried out for several years by means of multi-cage rolling mills with electrically driven rolls.

[0004] A multi-cage rolling mill includes multiple rolling stations arranged in series along a rolling axis, each station containing multiple rolling rolls inserted into roll holder cartridges or cages.

[0005] Typically, each cage is provided with three rolls, although solutions using two-roll or four-roll cages have been proposed. In operation, the position of the rolls in each cage can be adjusted by varying their radial distance from the rolling axis so as to vary the rolling action depending on the diameter obtained on the long product being processed.

[0006] The term "finish rolling" is used herein to refer to a step in the processing of long products in the steel industry, such as bars, rods, or wire rods, where a long semi-finished product is subjected to longitudinal rolling by rolls to its final size. This processing essentially results in a reduction in the size of the semi-finished product until it reaches its nominal value.

[0007] As is well known, rolling rolls are subject to wear and tear and must be replaced periodically, and therefore easy roll replacement is essential in the operation management of a rolling mill.

[0008] Generally, in a multi-cage mill, roll changes are performed by first removing each cage from the mill structure.

[0009] Typically, multi-cage mills are configured for lateral stripping of the cage, i.e., obtained through movement of the cage perpendicular to the rolling axis.

[0010] Multi-cage mills are known which allow lateral stripping of all cages from the same side of the mill, which is very advantageous as it simplifies the logistics of managing the cages themselves.

[0011] An example of a multi-cage rolling mill with all cages stripped from the same side is shown in Figures 1 and 2.

[0012] More specifically, rolling mills generally include four or five cages arranged in series along the rolling axis. Each cage S is provided with three rolls R1, R2, and R3, evenly distributed around the rolling axis X at 120° relative to each other. One of the rolls, R1, has a horizontal rotation axis. The odd-numbered cages have rolls rotated 60° around the rolling axis relative to the even-numbered cages in order to roll the material using the groove roots of their respective rolls on parts of the product not affected by the action of the rolls in the previous cage. With this configuration, the odd-numbered cages are rotated around a horizontal axis relative to the even-numbered cages. Each roll is provided with its own adjusting actuator A1, A2, and A3, particularly hydraulic, mounted on the stationary structure F of the rolling mill. The actuators A1, A2, and A3 have the purpose of adjusting the radial distance of each roll from the rolling axis so that the rolling action can be varied depending on the diameter obtained on the long product being processed. The adjustment actuators are aligned radially with each roll and are therefore evenly distributed at 120° around the rolling axis X. Thus, in the illustrated configuration, one of the three actuators is positioned vertically through the rolling axis. Figures 1 and 2 show a section of a rolling mill with an even cage.

[0013] The rolling mill's control system includes a single motor M for each cage, connected to each roll by a three-output gear distributor group RD. The horizontal-axis roll R1 is directly connected to the distributor gear group by a kinematic connection extension L1, while the two tilt rolls R2 and R3 are each connected to the gear distributor group RD by double extensions L2+L2' and L3+L3', interspersed with special-angle gearboxes G2 and G3. The motors and distributor gear groups for the different cages are all located on the same side of the mill, leaving the opposite side free for cage removal. During the cage removal step to create a free path for cage movement, the hydraulic actuator A2 of roll R2, located on the cage removal side, is rotatable (shown in its rotated, inoperative state in the figure) so that it can be temporarily removed from the removal path.

[0014] Although such rolling mill solutions are effective, they still have some limitations.

[0015] The control system is complex and expensive and includes, for each cage, a three output gear distributor group RD and special angle gearboxes G2 and G3 with an angle of approximately 50° to 60° between the input and output shafts.

[0016] Furthermore, the special angle gearbox G2, located below the rolling mill and connected to each roll with an extension L2' at 30° to the vertical, inevitably hits the drainage channel for the cooling water. Upon reaching gearbox G2, the water penetrates the lubrication system and thus reaches the other gearboxes. This causes corrosion problems that affect not only the double extension L2+L2' and the lower angle gearbox G2 but all the gearboxes as well, resulting in significant maintenance costs.

[0017] A second example of a rolling mill with lateral cage removal on the same side is shown in Figures 3 and 4. This mill employs a general configuration of rolls and control systems similar to those present in the rolling mill of Figure 1. However, the radial adjustment system of the rolls consists of a mechanical adjustment system incorporated in each roll holder cartridge and suitable for synchronously adjusting the radial movement of the rolls. The movement of the adjustment system is provided by an external control device C mounted on a fixed structure of the rolling mill on the cage removal side. Such external control device C is rotatable relative to the fixed structure F to create a free path for cage removal.

[0018] However, this solution still suffers from the limitations mentioned above related to the complexity and expense of the control system and the presence of special angle gearboxes located below the rolling mill and therefore exposed to the cooling water drains.

[0019] To overcome the above limitations, a multi-cage rolling mill has been proposed, which comprises:

[0020] a simplified control system including a gear motor group for each roll of each cage and kinematic connection extensions between the gear motor group and the respective roll without special angle gearboxes;

[0021] - (hydraulic) roll adjustment actuators located outside the cage and fixedly associated with the rolling mill structure;

[0022] - Different arrangement of the three rolls in the cage.

[0023] Multi-cage rolling mills of this type are described, for example, in WO 2009141414 A1 and EP 2560771 B1.

[0024] More specifically, each cage has three rolls evenly distributed at 120° relative to each other around the rolling axis. One of the three rolls has a vertical, rather than horizontal, rotation axis. The odd-numbered cages have rolls rotated 60° around the rolling axis relative to the even-numbered cages. Each roll has its own adjustment actuator, typically hydraulic, mounted on the rolling mill's stationary structure. The adjustment actuators are radially aligned with the respective roll, thus evenly distributed at 120° relative to the rolling axis, with one of them positioned horizontally through the rolling axis. This roll arrangement, along with the absence of special angle gearboxes located below the rolling mill, avoids problems with water penetration into the lubrication system.

[0025] Each cage is removed from the opposite side of the rolling mill to the side where the vertical-axis roll is located, after the connecting extension of one of the inclined rolls has been moved to free the path. However, in this configuration, the cages are not removed on the same side of the mill, but alternately, i.e., the even cages are removed on one side and the odd cages on the other.

[0026] Therefore, despite the significant simplification of the plant, the rolling mills described in WO 2009141414 A1 and EP 2560771 B1 do not have the operational advantage of being able to remove all cages from the same side of the mill.

[0027] To date, there are no multi-cage mills with a simplified roll control system that allows for the withdrawal of all cages from the same side of the mill while at the same time not requiring special angle gearboxes.

[0028] In the field of rolling mills for solid long products, the differentiation of roll calibration requires more frequent roll changes, so in this field there is a greater need to have multi-cage mills that combine the possibility of stripping all cages from the same side with a simplified roll control system that does not require special angle gearboxes. Summary of the Invention

[0029] It is therefore a main object of the present invention to eliminate or at least mitigate the above-mentioned drawbacks of the prior art by providing a rolling mill for solid long products which combines the possibility of withdrawal of all cages from the same side with a simplified roll control system which does not require special angle gearboxes.

[0030] A further object of the present invention is to provide a rolling mill for solid long products that is structurally simple to manufacture and has substantially lower manufacturing costs than conventional solutions, allowing all cartridges to be removed from the same side of the mill. [Brief explanation of the drawings]

[0031] According to the above objectives, the technical features of the present invention can be clearly seen in the content of the following claims, and its advantages will become better apparent in the following detailed description, which is given with reference to the accompanying drawings showing one or more purely exemplary and non-limiting embodiments thereof.

[0032] [Figure 1] FIG. 1 is a partial view of a first example of a conventional type solid long product rolling mill configured to allow removal of all cages from the same side of the mill, this section being made up of an even number of cages.

[0033] [Figure 2] FIG. 2 is an enlarged detailed view of the rolling mill of FIG. 1.

[0034] [Figure 3] FIG. 1 is a perspective view of a second example of a conventional type solid long product rolling mill configured to allow all cages to be removed from the same side of the mill, shown with the external controls for the radial roll adjustment systems in an inoperative state.

[0035] [Figure 4]4 is an orthogonal side view of the rolling mill of FIG. 3 shown with the external controls of the radial roll adjustment system in operation.

[0036] [Figure 5] 1 is a schematic view of the distribution of rolling stations along the rolling axis in a rolling mill for solid long products according to the invention;

[0037] [Figure 6] 2 is a schematic view of the arrangement of rolls in a rolling station of a rolling mill according to the invention, belonging to a first plurality of rolling stations; FIG.

[0038] [Figure 7] 3 is a schematic view of the arrangement of rolls in the rolling stations of the rolling mill according to the invention, which belong to a second plurality of rolling stations;

[0039] [Figure 8] FIG. 1 is a cross-sectional view of a preferred embodiment of a rolling mill according to the present invention, said cross-section being taken on a plane perpendicular to the rolling axis immediately upstream of the input of a station of a first plurality of stations, said station being shown with its associated roll holder cartridge in an operating position already operatively connected to the actuators of the roll control system and the roll adjustment system.

[0040] [Figure 9] FIG. 9 is an enlarged view of a portion of the rolling mill shown in FIG. 8.

[0041] [Figure 10] 9 is the same cross-sectional view of the rolling station of FIG. 8, the station shown with the associated roll holder cartridge in an extracted position, operatively disconnected from the control system and the actuators of the roll adjustment system.

[0042] [Figure 11] FIG. 11 is an enlarged view of a portion of the rolling mill shown in FIG.

[0043] [Figure 12] FIG. 1 is a cross-sectional view of a preferred embodiment of a rolling mill according to the present invention, said cross-section being taken on a plane perpendicular to the rolling axis immediately upstream of the input of a station of a second plurality of stations, said station being shown with its associated roll holder cartridge in an operating position already operatively connected to the actuators of the roll control system and the roll adjustment system.

[0044] [Figure 13] FIG. 13 is an enlarged view of a portion of the rolling mill shown in FIG. 12.

[0045] [Figure 14] 13 is the same cross-sectional view of the rolling station of FIG. 12, the station shown with the associated roll holder cartridge in an extracted position, operatively disconnected from the control system and the actuators of the roll adjustment system.

[0046] [Figure 15] FIG. 15 is an enlarged view of a portion of the rolling mill shown in FIG. 14.

[0047] [Figure 16] 1 is an enlarged cross-sectional view of a roll holder cartridge of a rolling mill according to a preferred embodiment of the present invention, provided with a system for synchronous mechanical adjustment of the rolls; FIG.

[0048] Elements or parts of elements that are common to the embodiments described below are referred to by the same reference numerals. DETAILED DESCRIPTION OF THE INVENTION

[0049] MODE FOR CARRYING OUT THE INVENTION

[0050] The present invention relates to rolling mills for solid long products in the steel industry, such as bars, rods and wire rods.

[0051] Advantageously, the rolling mill according to the invention is intended in particular for carrying out finish rolling.

[0052] The term "finish rolling" is used herein to refer to a step in the processing of long products in the steel industry, such as bars, rods, or wire rods, where a long semi-finished product is subjected to longitudinal rolling by rolls to its final size. This processing essentially results in a reduction in the size of the semi-finished product until it reaches its nominal value.

[0053] With reference to the accompanying Figures 5 to 16, the reference number 1 indicates as a whole a rolling mill for solid long products of the steel industry according to the invention.

[0054] In this specification, as well as in the following description and claims, reference is made to the rolling mill 1 in use, and any references to a lowered or upper position, or a horizontal or vertical orientation, should therefore be construed in that context.

[0055] The rolling mill 1 for solid elongated products defines a rolling axis X along which the elongated products to be rolled are made to slide.

[0056] According to a general embodiment of the invention, the rolling mill 1 comprises a first plurality of rolling stations 100 and a second plurality of rolling stations 200 arranged in series along a rolling axis X and alternating with one another between the input and the output of the rolling mill 1. This configuration of the rolling mill 1 is represented diagrammatically in Figure 5, in which the individual stations 100 and 200 (for example six in total) are indicated diagrammatically by rectangles.

[0057] Each of the aforementioned rolling stations 100 or 200 includes:

[0058] - Load-bearing structures 110, 210, and

[0059] - a roll holder cartridge 120, 220 connected in a detachable manner to the load-bearing structure 110, 210 so that it can be extracted from the load-bearing structure itself and subjected to replacement and / or maintenance.

[0060] Preferably, as shown in Figures 8 to 15, the load-bearing structures 110, 210 of the rolling stations are fixed to a common support base 2 extending parallel to the aforementioned rolling axis X.

[0061] Advantageously, each load-bearing structure 110, 210 defines an operable housing seat 4 for a roll-holder cartridge. Such housing seat 4 is bounded at the bottom by a horizontal bottom wall 5 which serves as a support base for the roll-holder cartridge 120, 220 inside the housing seat 4.

[0062] Preferably, the load-bearing structure of each station may include a support structure 6 for the cartridges, which constitutes an extension of the aforementioned horizontal bottom wall 5 outside the housing sheet 4. This support structure 6 serves as a support base for the cartridges outside the housing sheet 4.

[0063] For example, as shown in Figures 11 and 15, each roll holder cartridge 120 or 220 includes three rolling rolls 131, 132, 133 or 231, 232, 233 mounted thereon so as to be radially movable relative to the rolling axis X along respective radial axes T1, T2, T3 passing through the rolling axis.

[0064] As shown in schematic detail in Figures 6 and 7, the three rolls 131, 132, 133 or 231, 232, 233 of each cartridge 120 or 220 are rotatable about three respective rotation axes R1, R2, R3 that are set at 120° relative to one another. One of the rolls 131, 231 has its own rotation axis R1 arranged vertically, while the other two rolls 132, 133 or 232, 233 have respective rotation axes R2, R3 that are inclined relative to the vertical. The inclined rotation axes R2, R3 each form an angle of 60° with the vertical.

[0065] Each of the aforementioned rolling stations 100 or 200 is mounted on a load-bearing structure 110, 220 and includes three actuators 141, 142, 143 or 241, 242, 243, each suitable for operating relative to a respective roll 131, 132, 133 or 231, 232, 233 along three respective radial axes T1, T2, T3 arranged at 120° from each other.

[0066] The "radial axes" T1, T2, T3 of the rolls refer to axes perpendicular to the rotation axes R1, R2, R3 and the rolling axis X of the rolls.

[0067] In operation, each of the actuators is suitable to act on the respective roll in order to maintain the same predetermined radial distance of the rolls 131, 132, 133 or 231, 232, 233 from the rolling axis X. The predetermined radial distance is adjustable in order to optimize its tolerance according to the nominal dimensions of the long product to be rolled by receiving values ​​measured by a special measuring system located downstream of the rolling mill.

[0068] A set of three actuators in a rolling station defines a radial adjustment system for the rolls of the station itself.

[0069] Each of the aforementioned rolling stations 100 or 200 also includes three gear motor groups 161, 162, 163 or 261, 262, 263 connected to the rolls by single extensions 171, 172, 173 or 271, 272, 273 so as to provide the rolls themselves with the rotation and torque required to force the product forward along the rolling axis X. In other words, as shown in the accompanying drawings, each individual rolling station 100 or 200 is provided with three single extensions, one for each gear motor group and associated roll.

[0070] At each rolling station, a set of three gear motors and associated single extensions constitute the control system for the rolls with a single control device.

[0071] As can be seen, for example, by comparing FIGS. 9 and 13, the positions of the rolls 231, 232, 233 of the second plurality of stations 200 are rotated 60° about the rolling axis X relative to the positions of the first plurality of stations 100.

[0072] Such an angular arrangement of the rolls rotated between the first plurality of stations 100 and the second plurality of stations 200 makes it possible to uniformly roll the product sliding along the rolling axis: at a given station, the groove root of each roll actually acts on a part of the product that was not affected by the action of the roll at the previous station.

[0073] Furthermore, due to the aforementioned angular arrangement of the rolls rotated between two consecutive stations, the rolls 131 with vertical axes of the first plurality of stations 100 are arranged on a first side 1a of the rolling mill 1, and the rolls 231 with vertical axes of the second plurality of stations 200 are arranged on a second side 1b of the rolling mill 1, opposite the first, with respect to the rolling axis X.

[0074] The roll arrangements at the first and second plurality of stations 100 and 200 are shown in simplified form in Figures 6 and 7, respectively. It can be seen that the vertically-axed rolls 131, 231 have associated radial axes T1 that are horizontal, while the inclined rolls 132, 133 and 232, 233 have respective radial axes T2 and T3 that are inclined 30° to the vertical. It is also possible to distinguish the upper inclined rolls 132, 232 and the lower inclined rolls 133, 233 relative to a horizontal plane passing through the rolling axis X.

[0075] The expression "rolls on one side of the rolling mill" means that said rolls extend radially from the rolling axis towards the outside of the rolling axis and horizontally on that side.

[0076] In accordance with the present invention, all rolling stations 100, 200 of the rolling mill 1 are configured to allow lateral removal of the respective roll holder cartridges 120 and 220 from the same side of the rolling mill 1, hereinafter identified as the "cartridge removal side."

[0077] Such a cartridge removal side (which is the same for all rolling stations 100 and 200) may accommodate:

[0078] the aforementioned first side 1a, i.e. the side of the rolling mill 1 on which the rolls 131 with vertical axes of the first plurality of stations 100 are located, or

[0079] the aforementioned second side 1b, ie the side of the rolling mill 1 opposite the first, on which the rolls 231 with vertical axes of the second plurality of stations 200 are arranged.

[0080] Preferably, as shown in the accompanying drawings, the cartridges 120, 220 are extracted from the associated stations 100, 200 by following an extraction path that lies on a horizontal plane defined by the aforementioned horizontal bottom wall 5 and the support structure 6 outside the housing sheet 4.

[0081] Also according to the invention, the rolling stations whose respective roll vertical axes are arranged on the cartridge removal side have roll actuators whose vertical axes are movable relative to the load-bearing structure.

[0082] In operation, the possibility of moving these actuators is aimed at freeing up the extraction path for the respective cartridge. In these stations, the actuators of the rolls with tilting axes are instead fixed relative to the associated load-bearing structure.

[0083] Instead, the rolling stations whose rolls have their vertical axes positioned on the opposite side from the cartridge removal side have all of their actuators fixed to the load-bearing structure, and in these stations, none of the actuators are actually located along the cartridge removal path.

[0084] The accompanying Figures 8 to 15 show an embodiment of the rolling mill 1 in which the cartridge removal side is the first side 1a and therefore the rolling station with the movable actuators is station 100 of the first plurality of stations, while the station with all actuators fixed is station 200 of the second plurality of stations.

[0085] Obviously, it is also possible to provide an embodiment of the rolling mill 1 in which the removal side is the second side 1b and therefore the rolling station with the movable actuators is station 200 of the second plurality of stations, while the station in which all actuators are fixed is station 100 of the first plurality of stations.

[0086] Preferably, each rolling station 100 having a movable actuator is provided with means 144 for moving the actuator 141 operatively associated with a roll having a vertical axis between an operating position and a resting position. Such moving means 144 may be any suitable means for the purpose. In the embodiment shown in Figures 8 to 11, these moving means 144 consist of hydraulic and pneumatic cylinders arranged above the respective rolling station 100, 200 by means of scaffolding 164.

[0087] Furthermore, the single extensions 171, 172, 173 and 271, 272, 273 of all rolling stations 100, 200 can move relative to the load-bearing structure 110, 210 of the respective station so as to disengage the respective rolls 131, 132, 133 and 231, 232, 233 and possibly free an extraction path for the cartridge.

[0088] The solid long product rolling mill 1 having the above-mentioned features combines the possibility of extracting all cartridges from the same side with a simplified roll control system that does not require special angle gearboxes.

[0089] As already mentioned, the control system for the rolls of each single station consists of three gear motor groups 161, 162, 163 or 261, 262, 263 connected to the rolls by single extensions 171, 172, 173 or 271, 272, 273. The control system thus provides each roll with its own gear motor group. This allows for spatially positioning each gear motor group according to the position of the respective roll, with a kinematic connection between the group and the roll defined by the single extension. This avoids the need for a kinematic solution with double extensions connected to each other by special angle gearboxes, which is unavoidable in rolling mills with a single motor control system for all rolls of the cartridge.

[0090] Due to this configuration of the control system and the spatial distribution of the rolls, which provides at each station rolls with a vertical axis of rotation, it is also possible to arrange at each station one of the three extensions vertically and the remaining two extensions (dedicated to the two inclined rolls) on two axes at substantially 60° to the vertical. In other words, at every rolling station it is possible in a simple way to avoid having extensions (with their associated gear motor groups) directly below the rolling station, allowing easier access for maintenance work.

[0091] According to the invention, the preparation of this free path on the same side of the rolling mill requires, in addition to the movement of the extensions, only the movement of the actuators dedicated to the rolls with vertical axes. As already pointed out, it should be noted that the movement of these actuators is not necessary at all stations, but only at stations with vertical axis rolls located on the cartridge removal side.

[0092] The control system configuration also avoids locating the gearbox directly below the rolling station, which essentially avoids problems with water penetration into the lubrication system through the gearbox.

[0093] Preferably, as shown in the accompanying drawings, the single extensions 171, 172, 173 and 271, 272, 273 are arranged so that when operatively connected, they are substantially axially aligned with the axes of rotation R1, R2, R3 of the respective rolls 131, 132, 133 and 231, 232, 233.

[0094] The expression "extensions having axes aligned with the rotational axes of the respective rolls" means the average alignment position that occurs during the transmission of motion to the rolls, excluding the net radial adjustment and tolerance optimization of the rolls according to the nominal dimensions of the product.

[0095] Thus, preferably, in each rolling station, the extensions 171, 271 dedicated to the rolls with vertical axes are arranged vertically, and the remaining two extensions 172, 173 and 272, 273 (dedicated to the two inclined rolls) are arranged on two axes at substantially 60° to the vertical.

[0096] According to the embodiment shown in the accompanying drawings, the extensions 171, 271 associated with the vertical axis rolls 131, 231 are vertically axially arranged and associated with respective gear motor groups 161, 261, each of which includes a horizontally arranged motor 161a, 261a and an angular gearbox 161b, 261b whose input and output shafts form a 90° angle. In particular, each such gear motor group 161, 261 is supported above the respective rolling station 100, 200 by means of scaffolding 164, 264.

[0097] According to an alternative embodiment not shown in the accompanying drawings, the extensions 171, 271 associated with the rolls 131, 231 having vertical axes may be vertically axially arranged and associated with respective gear motor groups 161, 261, each of which includes a vertically arranged motor and a gearbox having parallel axes of input and output shafts. In particular, each such gear motor group 161, 261 is supported above the respective rolling station 100, 200 by a scaffolding 164, 264.

[0098] Preferably, the extensions 172, 173 and 272, 273 associated with the rolls 132, 133 and 232, 233 having inclined axes are associated with respective gear motor groups 162, 163 and 262, 263, each of which includes a motor and a gearbox having parallel axes of input and output shafts. In particular, as shown in the accompanying drawings, each of such gear motor groups 162, 163 and 262, 263 is arranged on a base 3a or 3b (foundation) defined by an inclined plane (preferably at 60° to the vertical) extending alongside the common support base 2, on one of the two sides 1a or 1b of the rolling mill parallel to the rolling axis X. Alternatively, the base 3a or 3b (foundation) may define a horizontal plane and the gear motor groups may be mounted on the base with the required inclination.

[0099] Preferably, the gear motor groups 161, 162, 163 and 261, 262, 263 of all rolling stations are fixedly mounted on their respective support bases. In this case (which is entirely preferred), as will become clear later in the description, the movement to disengage the extensions from the rolls (and possibly to free the cartridge extraction path) is obtained by moving only the extensions, and therefore without affecting the gear motor groups. This greatly simplifies the system.

[0100] As already highlighted above, the single extensions of all rolling stations 100, 200 can be moved relative to the load-bearing structures 110, 210 to disengage the respective rolls 131, 132, 133 and 231, 232, 233 and possibly free up an extraction path for the cartridge.

[0101] Preferably, the extensions 171, 172, 173 and 271, 272, 273 of all rolling stations 100, 200 are movable relative to the load-bearing structure of the respective rolling station by at least one translational movement along its axis.

[0102] According to a preferred embodiment shown in the accompanying drawings, the single extensions 171, 172, 173 and 271, 272, 273 have a telescopic structure, in which case the aforementioned translational movement of the extensions along their axes (which serves to disengage the respective rolls and possibly free the extraction path of the cartridge) can be obtained by an axial sliding movement between two or more different parts of the telescopic structure of the single extensions.

[0103] According to an embodiment not shown in the accompanying drawings, the single extensions 171, 172, 173 and 271, 272, 273 can be configured to be able to slide along the gearbox shaft of the respective gear motor group. This sliding movement causes the extension to translate along its own axis. Such axial sliding makes it possible to separate the extension from the hub of the respective roll and, if necessary, to free the extraction path for the associated cartridge.

[0104] The use of telescoping extensions may be provided as an alternative to, or in combination with, the use of extensions that slide along the shafts of the respective gear motor groups.

[0105] According to the preferred embodiment shown in the accompanying drawings, in all rolling stations 100, 200 at least one of the single extensions 172, 272 is capable of undergoing rotational translation to disengage the respective roll 132, 232 so as to release the associated cartridge for extraction and, in some cases, to free the extraction path of the cartridge itself.

[0106] Compared to simple translation, from an operational point of view with the same amplitude of translational movement, rotational translation allows the extension to be more significantly removed from the associated cartridge, thus allowing the removal path of the cartridge from the rolling mill to be freed up without excessive translational stroke.

[0107] This solution can be adopted for all extensions of the rolling station, but is preferably adopted only for the extensions 172, 272 operatively associated with the upper inclined rolls 132, 232. In fact, as can be observed in particular in Figures 9 and 13, the extensions that penetrate the most into the operable housing sheet 4 are the extensions 172, 272 associated with the upper inclined rolls 132, 232.

[0108] It should be noted that the rotation-translation solution is preferably adopted for the extensions 272 associated with the upper inclined rolls in rolling stations with vertical rolls located on the opposite side to the cartridge extraction side. In fact, in these stations, the extensions of the upper inclined rolls are located along the cartridge extraction path, which is why their complete movement is important.

[0109] In contrast, the extensions 173, 273 associated with the lower inclined rolls 133, 233 and the extensions 171, 271 associated with the vertical rolls 131, 231 penetrate into their respective operable housing sheets 4 to a much lesser extent and therefore require a more limited width of movement, which can be performed by simple axial translation.

[0110] Preferably, each rolling station 100, 200 having a movable actuator is provided with means for moving the respective extension 174, 175. Such moving means 174, 175 may be any means suitable for the purpose.

[0111] In the embodiment shown in accompanying Figures 8 to 15, these movement means may consist of a simple lever mechanism 174 actuated by a hydraulic / pneumatic cylinder piston to produce a simple translational movement (particularly for extensions 171, 173, 271, 273). These movement means may alternatively consist of a device for axial translation of the extensions 175 mounted on a rotatable base to produce a rotational translation (for extensions 172, 272).

[0112] Advantageously, the actuators 141, 142, 143 and 241, 242, 243 include:

[0113] - an adjusting element suitable for directly engaging the respective roll, and

[0114] a control device suitable for actuating said adjusting element;

[0115] According to the embodiment shown in the accompanying drawings, the actuators may be fully implemented in the load-bearing structure 110, 220 of the respective station, in which case both the control device and the regulating element are implemented in the load-bearing structure 110, 220.

[0116] In particular, as shown in the accompanying drawings, the actuators 141, 142, 143 and 241, 242, 243 may comprise hydraulic capsules in which the respective adjusting elements comprise pistons 151, 152, 153 and 251, 252, 253 movable along the respective radial axes T1, T2, T3 of the rolls. As an alternative to hydraulic capsules, the actuators may be mechanical. In this case, preferably, the respective adjusting elements comprise adjusting screws movable along the respective radial axes T1, T2, T3 of the rolls.

[0117] According to an embodiment not shown in the accompanying drawings, the actuators may be partly mounted on the load-bearing structure 110, 220 of the respective station. In this case, the control device is mounted on the load-bearing structure and the adjusting element is mounted on the respective roll holder cartridge. Preferably, in this case, the actuators are mechanical, and in particular, each adjusting element consists of an adjusting screw movable along the radial axis T1, T2, T3 of the respective roll.

[0118] In the case of actuators fully implemented in the load-bearing structure of the respective station (whether hydraulic capsules or mechanical actuators), the actuators 142, 143 and 242, 243 of each station associated with the rolls with inclined axes are preferably arranged such that, when the associated adjustment elements 152, 153 and 252, 253 are fully retracted, an unobstructed extraction path is created for the respective cartridge, parallel to the radial axis of the actuators 141, 241 associated with the vertical axis rolls.

[0119] Preferably, this configuration of actuators is employed in rolling stations 200 having rolls whose vertical axes are arranged on the opposite side to the unloading side. In this case, in fact, the adjusting elements of the actuators associated with the inclined rolls will be positioned along the unloading path of the cartridge when not fully retracted, thus creating an undercut of the cartridge itself. On the other hand, the actuators associated with rolls with vertical axes that are not along the unloading path can always maintain their associated adjusting elements in an advanced position.

[0120] More specifically, the rolling station 200 having the vertical axis rolls arranged on the side opposite the removal side is configured such that the adjusting elements 152, 153, 252, 253 of the actuators 142, 143, 242, 243 associated with the two inclined rolls are fully retracted, and the minimum distance between the adjusting elements of the two actuators is greater than the maximum overall dimension of the cartridge measured in the same direction.

[0121] The aforementioned configuration of actuators may not be employed in rolling stations 100 with rolls whose vertical axes are arranged on the unloading side. In this case, the actuators associated with the inclined rolls are not actually located on the cartridge unloading path. Therefore, even if the respective adjusting elements are not fully retracted, they are not in any way along the cartridge unloading path and do not create an undercut in the cartridge itself. The problem of full or partial retraction of the adjusting elements does not arise for the actuators of the vertical rolls. In fact, these actuators must move as a block to free the unloading path.

[0122] Advantageously, each rolling station 100, 200 may include a device 300 for moving a respective cartridge along a cartridge extraction path.

[0123] In particular, this device 300 may be suitable both for removing a cartridge from an operable housing seat 4 and for bringing it into said housing seat.

[0124] Preferably, said transfer device 300 is arranged on the side 1b of the rolling mill 1 opposite to the cartridge removal side 1a.

[0125] More specifically, during the cartridge extraction step, the device 300 exerts a pushing action on the cartridge, and during positioning of the cartridge in the housing seat 4, the device 300 exerts a pulling action on the cartridge.

[0126] This configuration ensures that the transfer device 300 is never positioned within the space for handling and replacing cartridges. This ensures that there is always free space for cartridge handling and replacement, and allows for a direct connection from the rolling mill to the cartridge maintenance workshop. This configuration also simplifies the structure of the transfer device. In particular, no special structural measures are required to prevent the transfer device from interfering with the movement of cartridges.

[0127] According to a preferred embodiment shown in the accompanying drawings, the aforementioned moving device 300 consists of at least one hydraulic / pneumatic cylinder.

[0128] More specifically, the hydraulic and pneumatic cylinder 300 is arranged to act in an axial direction parallel to the aforementioned horizontal bottom wall 5 which serves as a support base for the roll-holder cartridges 120, 220 inside the housing sheet 4, and to the aforementioned support structure 6 for the cartridges which constitutes an extension of the bottom horizontal wall 5 outside the housing sheet 4. Preferably, the hydraulic and pneumatic cylinder is arranged near the sliding surface of the cartridge so as to exert its action on the base part of the cartridge itself.

[0129] In operation, once the three extensions and three actuators of the rolling station have disengaged from the rolls of the respective cartridges and a free path has been prepared from the housing seat towards the outside of the cartridge extraction side 1a, the transfer device is put into operation. The cartridge is then pushed by the device 300 from the housing seat 4 through the support structure 6 to the double position change carriage 310, which receives the used cartridges extracted from the rolling mill and, by pulling them through the structure 6 after translation along an axis parallel to the rolling axis X, brings new cartridges into position for insertion into the housing 4 via the device 300.

[0130] Preferably, the same carriage 310 may be directly connected to the maintenance yard by a rail transport system, as shown for example in FIG.

[0131] Advantageously, each rolling station 100, 200 is provided with a system for detecting the radial position of each of its respective rolls so as to be able to adjust the operation of the actuators of the rolls themselves.

[0132] Preferably, in rolling stations 100 provided with actuators 141, 241 that can move relative to at least the load-bearing structure, this system for detecting the radial position of the rolls can be mounted on the respective roll holder cartridges and operably connected to the respective actuators.

[0133] More particularly, as shown for example in Figure 16, such a cartridge-mounted detection system includes a transducer 331, 332, 333 for each roll 131, 132, 133. Each transducer is adapted to detect the radial position of the respective roll and transmit this to a respective actuator so that the respective actuator can be adjusted accordingly.

[0134] Such a detection system on the cartridge makes it possible to provide the actuators with accurate information about the radial position of the roll without being affected by asymmetric movements under load of the actuators themselves, due to the fact that in station 100 of the first plurality of stations, actuator 141 is movable relative to the load-bearing structure, while the other two actuators 142, 143 are fixed.

[0135] In operation, the fact of having a movable actuator 141 entails the drawback of reduced repeatability of the measurement of the radial position of each roll due to movement play and wear, as well as increased slack under load relative to fixed actuators. Employing an on-board detection system eliminates this drawback.

[0136] As already mentioned, a system for detecting the radial position of the rolls on the cartridge may be employed only in stations 100 having actuators that are movable relative to the load-bearing structure of the station. However, such a cartridge-mounted detection system may also be employed in stations with all fixed actuators, so as to simplify the components, maintenance, and logistics of the rolling mill 1.

[0137] The present invention makes it possible to obtain many advantages, which have been explained in the given premises.

[0138] The rolling mill 1 for solid long products according to the invention combines the possibility of unloading all cages from the same side with a simplified roll control system that does not require special angle gearboxes.

[0139] The rolling mill 1 for solid long products according to the invention is also structurally simpler to manufacture and has substantially lower manufacturing costs than conventional solutions, especially considering the fact that the gearbox of the rolling mill according to the invention is standard and therefore readily available on the market at a significantly lower cost. It also has the added advantage of a lower gearbox location: the latter, being farther from the rolling axis and therefore from sources of heat, water, and flakes in the mill, is more reliable and also more easily accessible in case of maintenance.

[0140] Thus, the invention thus conceived achieves its intended objects.

[0141] Obviously, the actual embodiment may assume different forms and configurations from those described above without departing from the scope of protection of the present invention.

[0142] Moreover, all the details may be replaced by technically equivalent elements and dimensions, and the shapes and materials employed may be whatever is required.

Claims

1. A rolling mill (1) for solid elongated products, defining a rolling axis X, comprising a first plurality of rolling stations (100) and a second plurality of rolling stations (200) arranged in series along said rolling axis (X) alternating with one another between an input and an output of said rolling mill (1), each of said first plurality of rolling stations (100) and said second plurality of rolling stations (200) comprising: - a load-bearing structure (110, 210), - said roll-holder cartridge (120; 220) detachably connected to said load-bearing structure (110, 220) and comprising three rolling rolls (131, 132, 133; 231, 232, 233) mounted in said roll-holder cartridge (120; 220) so as to be radially movable relative to said rolling axis (X), said three rolling rolls each having a first rotation axis (R1), a second rotation axis (R2) and a third rotation axis (R3) spaced apart from each other by 120°; a roll holder cartridge (120; 220) rotatable about three rotation axes (R1, R2, R3) of three rolls, one of which, a first roll (131; 231), has the first rotation axis (R1) arranged vertically, and the other two of which, a second roll (132, 133) and a third roll (232, 233), have the second rotation axis (R2) and the third rotation axis (R3), respectively, inclined with respect to the vertical; three actuators (141, 142, 143; 241, 242, 243) mounted on said load-bearing structure (110, 220) and acting on each of said three rolling rolls (131, 132, 133; 231, 232, 233) along three respective radial axes (T1, T2, T3) spaced at 120° from one another, and suitable for maintaining a predetermined radial distance of said three rolling rolls (131, 132, 133; 231, 232, 233) from said rolling axis (X); a group of three gear motors (161, 162, 163; 261, 262, 263) connected to the rolls by means of single extensions (171, 172, 173; 271, 272, 273) in order to provide the rolls with the rotation and torque necessary to force the product forward along the rolling axis (X); Including, the positions of the rolls (231, 232, 233) of the second plurality of stations (200) are rotated by 60° around the rolling axis (X) relative to the positions of the rolls of the first plurality of stations (100), such that the rolls (131) having the first rotation axis (R1) of the first plurality of stations (100) are arranged on a first side (1 a) of the rolling mill (1) and the rolls (231) having the second rotation axis (R2) of the second plurality of stations (200) are arranged on a second side (1 b) of the rolling mill (1) opposite the first side (1 a) with respect to the rolling axis (X); all rolling stations (100, 200) of the rolling mill (1) are configured to allow lateral removal of the respective roll holder cartridges (120; 220) from the same side of the rolling mill (1), depending on whether it is the first side (1 a) or the second side (1 b); the rolling station (100) having rolls (131) with their first rotation axes (R1) arranged on the cartridge removal side (1a) has actuators (141) of the rolls (131) with the first rotation axes (R1) movable relative to the load-bearing structure (100) to open an extraction path for the cartridge, while the actuators (142, 143) of the rolls (132, 133) with inclined axes are fixed relative to the load-bearing structure (110); The rolling station (200) has its respective rolls (231) arranged such that the first rotation axis (R1) is on the opposite side to the cartridge removal side (1b), and all of the actuators (241, 242, 243) of the rolls (231, 232, 233) are fixed to the load-bearing structure (210). It is characterized by the single extensions (171, 172, 173; 271, 272, 273) of all rolling stations (100, 200) are movable relative to the load-bearing structure to disengage the respective rolls (131, 132, 133; 231, 232, 233) and possibly release the cartridge removal path.

2. 2. The rolling mill of claim 1, wherein the single extensions (171, 172, 173; 271, 272, 273) are axially aligned with the rotation axes (R1, R2, R3) of the respective rolls (131, 132, 133; 231, 232, 233) when operatively connected.

3. the single extension (171; 271) associated with the roll (131; 231) having a vertical axis is vertically axially arranged and associated with the respective gear motor group (161; 261); The gear motor group (161; 261) has an angular gearbox (161b, 261b), 3. A rolling mill according to claim 1 or 2, wherein the angular gearbox (161b, 261b) has an input shaft and an output shaft which form an angle of 90° therebetween or which have an input shaft and an output shaft which are parallel to each other.

4. the single extensions (172, 173; 272, 273) associated with the rolls (132, 133; 232, 233) having inclined axes are associated with the respective gear motor groups (162, 163; 262, 263); 4. The rolling mill of claim 3, wherein the angular gearbox has the input shaft and the output shaft parallel to each other.

5. 5. The rolling mill of claim 1, wherein the single extensions (171, 172, 173; 271, 272, 273) of all rolling stations (100, 200) are translatable along their axes relative to the load-bearing structure to disengage the respective rolls (131, 132, 133; 231, 232, 233) and release the associated cartridges for extraction.

6. 6. A rolling mill according to claim 5, wherein said single extension (171, 172, 173; 271, 272, 273) is telescopic and said translational movement along its axis can be obtained by a sliding movement of said associated telescopic structure.

7. 7. A rolling mill according to any one of claims 1 to 6, wherein the single extension (171, 172, 173; 271, 272, 273) can be slid along the gearbox shaft of the respective gear motor group to separate it from the hub of the respective roll.

8. 8. The rolling mill according to claim 1, wherein at all rolling stations (100, 200), at least one of the single extensions (172; 272) is capable of undergoing rotational translation to disengage the respective roll (132; 232) and release the respective cartridge for extraction.

9. 9. Rolling mill according to any one of claims 1 to 8, wherein the gear motor groups (161, 162, 163; 261, 262, 263) of all rolling stations are fixedly mounted on their respective bases.

10. Each of the actuators (141, 142, 143; 241, 242, 243) - an adjusting element suitable for direct engagement with each of said rolls; a control device suitable for actuating said adjusting element; 10. The rolling mill of claim 1, comprising:

11. 11. The rolling mill according to claim 10, wherein the actuators are fully mounted on the load-bearing structure (110, 220) of the respective roll-holder cartridge (120; 220), and both the control device and the adjusting element are mounted on the load-bearing structure (110, 220).

12. 12. The rolling mill according to claim 11, wherein the actuators (141, 142, 143; 241, 242, 243) are hydraulic capsules and the respective adjusting elements consist of pistons (151, 152, 153; 251, 252, 253) movable along the respective radial axes (T1, T2, T3).

13. 12. A rolling mill according to claim 11, wherein the actuators (141, 142, 143; 241, 242, 243) are mechanical and preferably the respective adjusting elements consist of adjusting screws movable along the respective radial axes (T1, T2, T3).

14. 11. The rolling mill according to claim 10, wherein the actuators are partly mounted on the load-bearing structure (110, 220) of the respective roll holder cartridges (120; 220), the control devices are mounted on the load-bearing structure and the adjusting elements are instead mounted on the respective roll holder cartridges.

15. 15. A rolling mill according to claim 14, wherein the actuators (141, 142, 143; 241, 242, 243) are mechanical and preferably the respective adjusting element comprises an adjusting screw movable along the respective radial axis (T1, T2, T3).

16. 16. A rolling mill according to any one of claims 1 to 15, wherein each rolling station (100, 200) comprises a device (300) for moving the respective cartridge along the extraction path.

17. 17. The rolling mill according to claim 16, wherein the moving device (300) is arranged on a side (1b) of the rolling mill (1) opposite the cartridge removal side (1a).

18. 18. Rolling mill according to claim 16 or 17, wherein said moving device (300) consists of at least one hydraulic / pneumatic cylinder.

19. 19. The rolling mill of claim 1, wherein each rolling station (100, 200) comprises a system for detecting the radial position of the respective roll, the system being mounted on the respective roll holder cartridge and operably connectable to the respective actuator.

Citation Information

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