Numerically controlled machine tool with multi-spindle turret and tool gripping device
The multi-spindle turret with independently controlled spindles and a tool gripping device enables simultaneous tool changes during machining, reducing downtime and energy use while preventing collisions, suitable for micromechanical workpieces.
Patent Information
- Application Number
- JP2024141038
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-09-01
- Filing Date
- 2024-08-22
- Publication Date
- 2025-11-28
- Estimated Expiration
- 2044-08-22
AI Technical Summary
Existing multi-spindle turrets in numerically controlled machine tools require non-simultaneous tool changes, leading to increased downtime, energy consumption, and are unsuitable for micromechanical workpieces due to high inertia and collision risks.
A multi-spindle turret with independently controlled spindles and a tool gripping device allows simultaneous tool acceleration and deceleration with machining operations, enabling tool changes during processing by using a tool magazine with translational and rotational degrees of freedom.
Reduces non-productive time for tool changes to the duration of head rotation, minimizes energy consumption, and prevents collisions, making it suitable for micromechanical workpieces.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of numerically controlled machine tools for machining workpieces, preferably micromechanical workpieces, and to the field of equipment for such machine tools.
[0002] In particular, the present invention relates to a numerically controlled machine tool with a multi-spindle turret and a tool gripping device. [Background technology]
[0003] Numerically controlled machine tools are intended to produce mass-produced parts, particularly by machining, according to the instructions of a computer program. Such machine tools have tools mounted on tool-holding spindles and are usually equipped with a tool changer for changing the tools held by the tool-holding spindles to suit machining operations being performed on workpieces held in place in a fixture.
[0004] During tool changes, the machine tool is unable to produce and machining operations are interrupted. In such situations, the goal has been to minimize the time required for tool changes. To this end, tool changers have been developed to operate as concurrently as possible with machining operations, minimizing machine downtime and improving productivity.
[0005] For example, multi-spindle turrets are known in which a head has multiple tool-holding spindles arranged therein, one of which is active and the others are idle. In particular, the active tool-holding spindle is engaged with the drive mechanism by utilizing a coupling system. Thus, between two machining operations, a tool can be changed by disengaging the active tool-holding spindle, i.e., the spindle carrying the tool to be changed, rotating the head to the next tool-holding spindle, and coupling this tool-holding spindle to the drive mechanism.
[0006] However, this approach is not entirely satisfactory because, although it reduces tool change time, it is not performed completely simultaneously with the machining operation. Specifically, in this type of multi-spindle turret, between each tool change, the tool being changed must be braked before the tool change is performed, and the next tool must be accelerated to the machining rotational speed after being coupled to the drive mechanism. Also, in such a multi-spindle turret, some time is required to disengage the tool being changed, rotate the head to index the next tool, align it with the coupling system, and couple it. Furthermore, this approach is particularly complex and expensive due to the coupling system.
[0007] In a multi-spindle turret, all tools are driven in rotation synchronously, solving the problem of accelerating and braking the tool-holding spindle. Therefore, when a tool is replaced, the next tool is already driven at its processing rotation speed and can begin processing the workpiece. However, such a multi-spindle turret requires a large amount of energy to rotate all the tools simultaneously. In addition, the maximum rotation speed of the tools carried by such a multi-spindle turret is relatively limited due to the kinematic chain that transmits the motion.
[0008] Overall, whether the tools it carries are rotated individually or simultaneously, prior art multi-spindle turrets are bulky, which results in a high moment of inertia and an increased risk of collision between the fixtures and tools carried by the turret.
[0009] In addition to the above challenges, such techniques are considered unsuitable for machining micromechanical workpieces. Summary of the Invention [Problem to be solved by the invention]
[0010] The present invention solves this problem by providing a method that allows a tool change to be fully simultaneous with the machining operation, in particular by performing tool acceleration and deceleration phases simultaneously with the machining operation, and by engaging a multi-spindle turret with a tool gripping device simultaneously with the machining operation. [Means for solving the problem]
[0011] To this end, the invention relates to a numerically controlled machine tool comprising a multi-spindle turret with a body extending along an axis AA between a first end fixed to a frame of the machine tool and a second end on which a rotatable head is located, and with at least two tool-holding spindles, each of which is intended to engage and receive a cutting tool, and which, depending on the angular position of the head, occupy a work position intended to perform a machining operation on a workpiece held in a predetermined position in a fixture, and a standby position disengaged from the workpiece, each spindle being adapted to be controlled independently of the other spindles in order to immobilize or to rotate the tool it carries, regardless of the position it occupies, and the machine tool further comprises a tool-grasping device adapted to interact with a spindle in its standby position in order to extract the tool carried by it for storage and to insert a replacement tool into it.
[0012] Because the spindles are controlled independently of each other, they can be accelerated and decelerated simultaneously with the machining operation. Thus, the present invention allows for tools to be changed simultaneously with the machining operation, with the spindle in a standby position, while reducing the non-productive time for tool changes to only the duration of the head rotation until the next tool contacts the workpiece.
[0013] In particular embodiments, the invention may further comprise one or more of the following features, which must be considered alone or according to any technically possible combination:
[0014] In certain embodiments, the tool gripping device comprises a tool magazine held in a cantilevered position by a support structure fixed to the body of the turret, the magazine comprising a storage barrel with a rotational degree of freedom about axis CC.
[0015] In certain embodiments, the magazine is configured such that the axis CC is parallel to the main axis B'-B' or B"-B" of the interacting spindle, and the storage barrel and the spindle are mutually translatable along the axis CC.
[0016] In certain embodiments, the magazine has at least one translational or rotational degree of freedom that allows it to move between an active position and a disengaged position, in which the magazine is in close proximity to the spindle with which it is configured to interact, and in which the magazine is further from the axis AA than it is in the active position.
[0017] In certain embodiments, the support structure includes a connecting member secured to the body of the turret and connected to the magazine by an arm configured to move the magazine between an active position and a disengaged position.
[0018] In certain embodiments, the arm has a distal portion secured to the magazine that is slidably or pivotally connected to a proximal portion secured to the connecting member.
[0019] In certain embodiments, the at least two standby positions are occupied, and the connecting member is rotatably fixed to the body of the turret about the axis AA to move the magazine from one spindle occupying a standby position to another spindle.
[0020] In certain embodiments, the magazine is further capable of translational movement relative to the coupling member along an axis parallel to the axis AA, thereby moving the magazine away from the head of the turret when the magazine is in a disengaged position.
[0021] In certain embodiments, the connecting member is secured to the body of the turret so as to be slidable along the axis AA, thereby moving the magazine away from the head of the turret when the magazine is in a disengaged position.
[0022] In certain embodiments, the magazine has a protective casing with a groove having an axial portion and a radial portion, which allows both the spindle and the tool to be stored to be inserted into the magazine, and allows the magazine to be removed after the tool has been replaced.
[0023] In certain embodiments, the shape of the radial portion of the groove corresponds to the shape of the spindle when the tool is replaced.
[0024] Other characteristics and advantages of the invention will become apparent from a reading of the detailed description given by way of example and not of limitation with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0025] [Figure 1] 1 shows a perspective view of a multi-spindle turret according to a preferred exemplary embodiment of the present invention, comprising a tool gripping device capable of replacing tools carried by one or more spindles of the turret; [Figure 2] 2 shows a view of the turret shown in FIG. 1 oriented in the direction of the main axis of the turret body. [Figure 3] 2 shows a perspective view of the turret of FIG. 1 with a smaller tool-gripping device, illustrating the mobility of this tool-gripping device over a particular angular range. DETAILED DESCRIPTION OF THE INVENTION
[0026] For clarity, the figures are not necessarily drawn to scale.
[0027] The present invention relates to a numerically controlled machine tool 10, as shown in FIG. 1, preferably for machining micromechanical workpieces, comprising a multi-spindle turret 20 and a tool gripping device 30.
[0028] The turret 20 has a body 21 extending along a main axis referred to as the "AA axis," one end of which has a base 22 for fixing to the frame 11 of the machine tool 10, and the other end of which has a head 23 which, in the exemplary embodiment of the invention shown in the drawings, can rotate about an axis which coincides with the axis AA.
[0029] The head 23 has at least two tool-holding spindles 24, 24' or 24", each spindle 24, 24' or 24" intended to engage a tool 25, 25' or 25". Depending on the angular position of the head 23, each spindle 24, 24' and 24" occupies a work position intended to perform a machining operation on a workpiece held in place in the fixture, or a standby position disengaged from the workpiece. In Figures 1 to 4, the turret 20 has three spindles 24, 24' and 24", one of which is in the work position and two of which are in standby positions. It can be seen here that as the head 23 rotates, the tools are changed so that the tool 25 occupying the work position is moved to the standby position and one of the tools 25' or 25" that was in the standby position is moved into the work position.
[0030] It should be noted that the turret 20 can be moved translationally, for example, by fixing the base 22 to a carriage (not shown) of the machine tool 10 that can move with at least one translational degree of freedom, preferably three translational degrees of freedom, based on the XYZ trihedron.
[0031] Alternatively, the turret 20 may be immobile, for example, if the base 22 is fixed directly to the frame 11 of the machine tool 10. Optionally, a fixture is therefore provided with said degrees of freedom, e.g., three translational degrees of freedom in the directions X, Y and Z, or one or two rotational degrees of freedom about the directions X and / or Y.
[0032] The spindles 24, 24' and 24" are advantageously configured so that they can be controlled independently of one another to rotate or immobilize the tool 25, 25' or 25" that they carry. This feature is particularly advantageous when changing tools. Preferably, the spindles 24, 24' and 24" are motorized spindles, also known as "electric spindles", each having a dedicated motor for rotating or immobilizing the tool 25, 25' or 25" that it carries.
[0033] In particular, to replace a first tool 25 performing a first machining step with a second tool 25' or 25" intended to perform a second machining step, the latter second tool 25' or 25" is driven in rotation before the end of the first machining step until it reaches a rotational speed specific to the second machining step.
[0034] A first tool 25 is engaged with the spindle 24 in the work position, and a second tool 25' or 25'' is engaged with one of the spindles 24' or 24'' in the standby position.
[0035] Once the first machining stage is completed, the head 23 rotates to move the spindle 24 that was in the work position to the standby position and the spindle 24' or 24" that was in the standby position to the work position. The second machining stage is then immediately initiated by the second tool 25' or 25" reaching its machining rotational speed while the engaged spindle 24' or 24" is in the standby position. Once the spindle 24 carrying the first tool 25 is in the standby position, its rotational movement is stopped.
[0036] Thus, when the second tool 25' or 25" rotates and the first tool 25 stops rotating concurrently with the machining operation, the non-productive time when the tools are changed is reduced to the duration of the rotation of the head 23 along the axis AA.
[0037] As shown in FIG. 1, each spindle 24, 24', and 24" extends along a main axis, designated "axis BB," "axis B'-B'," and "axis B"-B", respectively, which also constitutes an axis of rotation. In the work position, as shown in FIGS. 1 and 3, spindle 24 is preferably oriented so that its axis BB is parallel to the vertical axis.
[0038] Advantageously, the present invention allows for the replacement and storage of a tool 25' or 25" while a machining operation is being performed, the tool being carried and stored by one of the spindles 24' or 24" in a standby position and not rotating. In particular, as will be explained below, the machine tool 10 includes a tool gripping device 30 that is capable of picking up a tool 25' or 25" stored on the spindle 24' or 24" and inserting a new tool, referred to as a "replacement tool" 25''', into the spindle 24' or 24".
[0039] As shown in FIGS. 1-3, the tool gripping device 30 is fixed to the body 21 of the turret 20, for example when the base 22 is fixed to a carriage that is movable relative to the frame 11.
[0040] 1 to 3, the tool gripping device 30 comprises a tool magazine 34 held in a cantilevered fashion by a support structure 31. The magazine 34 comprises a tool storage barrel 340 with a number of recesses 341 intended to receive replacement tools 25''' or replaced tools. In particular, the recesses 341 may each have a radially opening that can engage and receive the replacement tools 25''' or replaced tools.
[0041] In this example, the storage barrel 340 may be in the form of a disk with recesses 341 evenly distributed around its circumference.
[0042] Each recess 341 may have a gripping member formed by a clamp 342, shown diagrammatically in detail in Figure 2. Each clamp 342 is elastically deformable so as to engage with a tool to receive the tool and hold it in place within recess 341 by friction. In particular, the tool may have an annular groove 250 in which clamp 342 is intended to engage. It should be noted that such elastic clamps are known to those skilled in the art and are within the capabilities of those skilled in the art to design.
[0043] In the exemplary embodiment of the invention shown in Figures 1 to 3, the storage barrel 340 has a degree of freedom of rotation in the standby position about an axis CC parallel to the axis B'-B' or axis B"-B" of one of the spindles 24' or 24", in particular the interacting spindle 24', so that each formed recess 341 can face the spindle 24'. This degree of freedom is represented by arrow 40 in Figure 3.
[0044] Additionally, the storage barrel 340 and the spindle 24' with which it interacts can move translationally relative to one another along an axis parallel to the axis B'-B' of the spindle 24'. As shown by arrow 41 in Figure 3, this relative mobility is preferably ensured by a translational degree of freedom of the storage barrel 340 along the axis CC. Alternatively, this relative mobility can be ensured by a translational degree of freedom of the spindle 24' along the axis B'-B' in the standby position.
[0045] In particular, to replace a tool 25' engaged with the spindle 24' in the standby position with a replacement tool 25''' disposed within the storage barrel 340, the storage barrel 340 is rotated so that the empty recess 341 faces the tool 25' to be stored, and the storage barrel 340 is then translated toward the spindle 24' to insert the tool 25' to be stored into the recess 341. Here, as the tool 25' to be stored is inserted into the recess 341, the clamp 342 in the recess 341 deforms until it engages the annular groove 250 of the tool 25' to be stored. The tool 25' can then be removed for storage by translating the storage barrel 340 away from the spindle 24'. To insert a replacement tool 25''' onto this spindle 24', the storage barrel 340 is rotated until the replacement tool 25''' is aligned with the spindle 24' and then translated towards the spindle 24', engaging the replacement tool 25''' with the spindle 24'. A translation perpendicular to the axis B'-B' removes the replacement tool 25''' from the recess 341 in which it is located and secures the replacement tool 25''' to the spindle 24'.
[0046] Furthermore, if the opening of the recess 341 is configured to open tangentially or perpendicularly to the storage barrel 340, the tool 25' to be stored is engaged with the recess 341 and the replacement tool 25''' is removed from the recess 341 by rotating the storage barrel 340 around the axis CC in two opposite directions.
[0047] In a manner well known to those skilled in the art, during such an operation, the spindle 24' is controlled to release the tool 25' to be stored when the storage barrel 340 moves in translation opposite to the spindle 24', and is configured to lock the replacement tool 25''' when the replacement tool 25''' is inserted into the spindle 24'.
[0048] Advantageously, the magazine 34 may have one or more degrees of translational or rotational freedom, which allow it to move between an active position and a disengaged position. As mentioned above, in the active position, the magazine 34 is in the immediate vicinity of the spindle 24' or 24", in particular the spindle 24', which is in its standby position, and the magazine 34 is intended to interact with this spindle to extract a tool 25 to be stored carried by it, and to insert a replacement tool 25'" into the spindle 24'. In the disengaged position, the magazine 34 is further from the axis AA, and therefore from the head 23, than when it is in the active position. Such an arrangement prevents the risk of collision of the magazine 34 during machining operations or when rotating the head 23 to replace a tool.
[0049] To this end, the support structure 31 is configured to move the magazine 34 between its active and disengaged positions.
[0050] 1-3, the support structure 31 can include a connecting member 32 secured to the body 21 of the turret 20 and connected to the magazine 34 by an arm 33. The arm 33 is configured to move the magazine 34 between its active and disengaged positions. In particular, the arm 33 can be configured to translate the magazine 34 along an axis substantially perpendicular to the axis B'-B' of the spindle 24' in its standby position with which the magazine 34 interacts, as shown by arrow 42 in FIG.
[0051] In this exemplary embodiment, the translational mobility of the magazine 34 along an axis substantially perpendicular to the axis B'-B' of the spindle 24' is provided by a distal portion 330 of the arm 33, which is slidably connected to a proximal portion 331 fixed to the connecting member 32 and fixed to the magazine 34.
[0052] Alternatively, in an exemplary embodiment not shown, the magazine 34 can rotate relative to the arm 33 about an axis of rotation parallel to the axis B'-B' of the spindle 24' with which it is intended to interact, in order to move between its active and disengaged positions, in this way the distal portion 330 is connected by a pivot to the proximal portion 331. Here it can be seen that the magazine is rotated to eccentrically drive the storage barrel 340 to move away from or towards the spindle 24' with which it is intended to interact.
[0053] Preferably, the connecting member 32 is formed by a fixing ring that is placed around the body 21 and fixed so as to be rotatable about the axis AA, as indicated by the arrow 44 in FIG. 3. The shape of the fixing ring allows an advantageous distribution of the forces involved. Thanks to this mobility, the magazine 34 can be moved to interact sequentially with all the spindles 24' and 24" that occupy the standby position, thereby replacing the tools 25' and 25" of said spindles, without rotating the head 23 of the turret 20.
[0054] Advantageously, magazine 34 is further capable of translational movement relative to connecting member 32 along an axis parallel to axis AA, by means of arm 33, which moves magazine 34 away from head 23 when in the disengaged position. In particular, as shown diagrammatically by arrow 43 in Figure 3, a proximal portion 331 of arm 33 may be fixed to connecting member 32 for translational movement along an axis parallel to axis AA.
[0055] Alternatively, the connecting member 32 may be secured to the body 21 of the turret 20 so as to be slidable along the axis AA.
[0056] In an exemplary embodiment of the invention in which the turret does not move relative to the frame 11, the fixture has translational and rotational mobility suitable for executing a machining program.
[0057] Advantageously, as shown in Figures 1 to 3, the magazine 34 has a protective casing 35 shown in these figures in the form of a rigid wall of axisymmetrical shape. Due to the above-mentioned kinematic system, the protective casing 35 has a groove 350 through which the tools 25', 25" or 25'" can pass when the magazine 34 moves.
[0058] In particular, groove 350 has an axial portion and a radial portion, which allows both spindle 24' and the tool 25' to be stored therein to be inserted into magazine 34, and allows magazine 34 to be removed after tool 25' or 25" has been replaced. Advantageously, the shape of the radial portion of groove 350 corresponds to the shape of spindle 24' when tool 25' or 25" is being replaced.
[0059] In general, the implementations and embodiments discussed above have been described as examples, and other alternatives are possible. [Explanation of symbols]
[0060] 10 Machine tools 11 frames 20 Turret 21 Body 23 Head 24, 24', 24" Tool Holding Spindles 25, 25', 25" Tools 30 Tool gripping device 31 Support structure 32 Consolidated Members 33 Arm 34 Magazine 35 Protective casing 330 Distal part 331 proximal part 340 Storage Barrel 350 Groove
Claims
1. A numerically controlled machine tool (10) comprising a multi-spindle turret (20) having a body (21), The body (21) extends along an axis A-A between a first end fixed to the frame (11) of the machine tool (10) and a second end at which a rotatable head (23) is located; The head (23) has at least two tool-holding spindles (24, 24', 24"), said spindles (24, 24', 24") are each intended to receive in engagement a cutting tool (25, 25', 25"); said spindle (24, 24', 24") occupies, depending on the angular position of said head (23), a work position intended to perform a machining operation on a workpiece held in position in a fixture, and a standby position disengaged from said workpiece; each spindle (24, 24', 24") is adapted to be controlled independently of the other spindles in order to immobilize or to drive in rotation the tool (25, 25', 25") it carries, regardless of the position it occupies; The machine tool (10) further comprises a tool gripping device (30) configured to interact with the spindle (24', 24") in a standby position to retrieve a tool (25', 25") carried by the spindle (24', 24") for storage and to insert a replacement tool (25'") into the spindle (24', 24"); the tool gripping device (30) comprises a tool magazine (34) held in a cantilevered position by a support structure (31) fixed to the body (21) of the turret (20); The magazine (34) comprises a storage container (340) with rotational freedom about an axis C-C; The support structure (31) has a connecting member (32) fixed to the body (21) of the turret (20) and connected to the magazine (34) by an arm (33), the connecting member (32) being formed by a fixing ring arranged around the body (21) and fixed so as to be rotatable about the axis A-A. A machine tool (10) characterized in that
2. the magazine (34) is configured such that its axis C-C is parallel to the main axis B'-B' or B"-B" of the interacting spindle (24', 24") in the standby position, The storage container (340) and the spindle (24', 24") are translatable relative to one another along the axis CC.
2. The machine tool (10) according to claim 1 .
3. the magazine (34) has at least one translational or rotational degree of freedom that allows it to move between an active position and a disengaged position; In the active position, the magazine (34) is in close proximity to the spindles (24', 24") with which it is configured to interact; In the disengaged position, the magazine (34) is further from the axis A-A than when in the active position.
3. A machine tool (10) according to claim 1 or 2.
4. The arm (33) is configured to move the magazine (34) between an active position and a disengaged position.
4. Machine tool (10) according to claim 3.
5. The arm (33) has a distal portion (330) fixed to the magazine (34) and slidably or pivotally connected to a proximal portion (331) fixed to the connecting member (32).
5. Machine tool (10) according to claim 4.
6. At least two spindles (24', 24") occupy a standby position; The connecting member (32) is rotatably fixed to the body (21) of the turret (20) about the axis A-A to move the magazine (34) from one spindle (24', 24") to another spindle in a standby position.
5. Machine tool (10) according to claim 4.
7. The magazine (34) is further capable of translational movement relative to the connecting member (32) along an axis parallel to the axis A-A, thereby moving the magazine away from the head of the turret when the magazine is in a disengaged position.
5. Machine tool (10) according to claim 4.
8. The connecting member (32) is fixed to the body (21) of the turret (20) so as to be slidable along the axis A-A, thereby moving the magazine away from the head of the turret when the magazine is in a disengaged position.
5. Machine tool (10) according to claim 4.
9. The magazine (34) has a protective casing (35) with a groove (350) having an axial portion and a radial portion, which allows both the spindle (24', 24") and the tool (25', 25") to be stored to be inserted into the magazine (34).
2. The machine tool (10) according to claim 1 .
10. The shape of the radial portion of the groove (350) corresponds to the shape of the spindle (24', 24"). Machine tool (10) according to claim 9.
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