EP1855846A2 - Plattform, die ein kombiniertes prüfungs-, inspektions-, produktions- und/oder wartungssystem bildet - Google Patents

Plattform, die ein kombiniertes prüfungs-, inspektions-, produktions- und/oder wartungssystem bildet

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Publication number
EP1855846A2
EP1855846A2 EP06726197A EP06726197A EP1855846A2 EP 1855846 A2 EP1855846 A2 EP 1855846A2 EP 06726197 A EP06726197 A EP 06726197A EP 06726197 A EP06726197 A EP 06726197A EP 1855846 A2 EP1855846 A2 EP 1855846A2
Authority
EP
European Patent Office
Prior art keywords
cutting
platform
jet
platform according
product
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP06726197A
Other languages
English (en)
French (fr)
Inventor
Philippe Crelier
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of EP1855846A2 publication Critical patent/EP1855846A2/de
Withdrawn legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25JMANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
    • B25J9/00Programme-controlled manipulators
    • B25J9/02Programme-controlled manipulators characterised by movement of the arms, e.g. cartesian coordinate type
    • B25J9/023Cartesian coordinate type
    • B25J9/026Gantry-type
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B24GRINDING; POLISHING
    • B24CABRASIVE OR RELATED BLASTING WITH PARTICULATE MATERIAL
    • B24C1/00Methods for use of abrasive blasting for producing particular effects; Use of auxiliary equipment in connection with such methods
    • B24C1/04Methods for use of abrasive blasting for producing particular effects; Use of auxiliary equipment in connection with such methods for treating only selected parts of a surface, e.g. for carving stone or glass
    • B24C1/045Methods for use of abrasive blasting for producing particular effects; Use of auxiliary equipment in connection with such methods for treating only selected parts of a surface, e.g. for carving stone or glass for cutting
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25JMANIPULATORS; CHAMBERS PROVIDED WITH MANIPULATION DEVICES
    • B25J9/00Programme-controlled manipulators
    • B25J9/02Programme-controlled manipulators characterised by movement of the arms, e.g. cartesian coordinate type
    • B25J9/04Programme-controlled manipulators characterised by movement of the arms, e.g. cartesian coordinate type by rotating at least one arm, excluding the head movement itself, e.g. cylindrical coordinate type or polar coordinate type
    • B25J9/046Revolute coordinate type
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B26HAND CUTTING TOOLS; CUTTING; SEVERING
    • B26FPERFORATING; PUNCHING; CUTTING-OUT; STAMPING-OUT; SEVERING BY MEANS OTHER THAN CUTTING
    • B26F3/00Severing by means other than cutting; Apparatus therefor
    • B26F3/004Severing by means other than cutting; Apparatus therefor by means of a fluid jet

Definitions

  • the present invention relates to a platform constituting a combined system of expertise, inspection, production, and / or maintenance, assisted through specialized software, for the treatment of at least one product.
  • the present invention is in the field of industrial production and technical expertise.
  • Such a platform is a system designed to allow, in one place, the execution of laboratory missions, simulation, modeling, didactic, research, development, studies, applications, transdisciplinary, cognitive technologies, simultaneous engineering, or systematic analysis.
  • FIG. 1 represents the case of the cutting of a vehicle 1, in particular and in a nonlimiting manner in the field of the automobile, naval, railway, aeronautical or other industry.
  • the cutting of a material consists in cutting all or part of said constituent elements and is considered in order to study, for example, the stresses that the materials undergo when assembling or using said material.
  • the cutting of all or part of a vehicle at different stages of its manufacture makes it possible to analyze the tensions that the materials undergo, for example the chassis after the shoeing, the windows after installation, the manufacturing process approvals (gluing, painting, welding, etc.) -
  • the cutting is also in the field of expertise, for example to assess the deformation of a part of the passenger compartment during a crash test or an accident and deformation related to prolonged use or under special conditions.
  • Cutting therefore has a role of control and expertise of the equipment. Indeed, the radiography of a vehicle can not provide precise information on a heterogeneous set of materials, the absorption coefficients vary according to the materials. This is why we use cutting materials, especially in preparatory mode or expertise. In particular, in order to compare a material compared to a so-called control material, it is necessary to make two exactly identical cuts, from reference points. A cutting device must have a coordinate system or referencing very accurate and reliable to reproduce identical cuts from one material to another.
  • a device for cutting heterogeneous materials comprising cutting means in the form of a circular saw, ribbon, a grinding wheel or a cable. These means prove to be imprecise in the tolerance of the cut which varies from 1 to 5 cm.
  • a disadvantage of the use of a saw lies in the local deformation of the materials during the cutting, in particular at the level of the sheets and during the simultaneous cutting of several different materials (metal, rubber, fabric, etc.). which causes burrs, thus distorting the expertise that will be performed later on these materials.
  • such a device does not allow the cutting of the glass. It has been imagined a cutting device using a laser beam.
  • the laser poses the problem of not being able to simultaneously cut several materials of different types because of the constraints related to the focusing of the beam on the material to be cut.
  • the cutting of some materials is not precise, especially the polymeric materials used in soundproofing, thermal insulation or sealing of the vehicle and melting under the effect of heat.
  • the devices of the state of the art have the drawbacks of being energy-intensive and low efficiency, with one or two cuts of vehicles per week.
  • the cut edges oxidize quickly, especially through a rust formation that is observed on the metal parts, hindering the expertise.
  • Existing devices do not allow satisfactory cutting of certain particularly resistant materials, such as glass, or elastic materials such as certain interior linings of fabrics, polymers, etc. The cuts of these materials then have burrs.
  • the known cutting devices do not provide adequate cutting quality, or simply do not allow this heterogeneous cutting.
  • the devices used do not have the precision required to reproduce identical cuts from one material to another, particularly because of the coordinate system and the reference points used.
  • the pursuit of such cutting is not regular.
  • the present invention aims to overcome the disadvantages of the state of the art by providing a single platform constituting a complete system of expertise, implementation of inspection means and / or machining, and implementation of specialized software, for the treatment of one or more products.
  • Such a system is based on the use of multi-axis manipulators, in combination with particular technical means.
  • the arrangement of these manipulators is designed to overcome the drawbacks of the state of the art, by allowing the implementation of particular methods on hard to reach areas, such as moving fluids, submerged installations, or structures of large volume or significant footprint.
  • the platform according to the invention emerges from the footprint in the vicinity of the product, and allows intervention on the latter, including in difficult conditions of containment, explosiveness, or the like.
  • multi-axis manipulators allows access to the interior of the structures constituting the products to be inspected, manufactured, or maintained.
  • the platform according to the invention is of particular interest for the implementation of processes applied to heterogeneous products.
  • the production means implement a method of simultaneous cutting of several thicknesses of heterogeneous materials, providing reproducible precision of the order of a millimeter, reducing the oxidation of the edges once cut and respecting the state of the materials present in assembly modes.
  • the cutting method according to the invention and its implementation device allow the cutting into three dimensions and access for cutting inside said material. Finally, it offers superior performance for a lower cost compared to known devices.
  • the present invention relates to a platform constituting a combined system of expertise, inspection, production, and / or maintenance, assisted by specialized software, for the treatment of at least one product
  • said platform is characterized in that it comprises: positioning means referencing at least one beacon in the vicinity of said product, means for calculating the position, the orientation, and the movement parameters of multi-axis manipulators supported by said platform, which manipulators are able to implement the processing of said product.
  • the platform According to a characteristic of the platform according to the invention, it is, as the case may be, fixed within a dedicated environment, or mobile, through displacement means and its positioning means.
  • the platform is designed capable of combining the work cycle of the manipulators for implementing the various processes with the product supply cycle, in particular carried out by such manipulators or by manipulators. dedicated.
  • the platform according to the invention is designed to cooperate with other platforms of the same type, either for the treatment of a large product or by product transfer of a product. platform to another, in particular by palletizing or the like.
  • one of the methods implemented consists of a process for simultaneous cutting of heterogeneous materials, in particular constituting a material or a vehicle, in which said Heterogeneous materials are simultaneously cut by high-pressure fluid cutting means in the form of a high-pressure fluid jet with or without a load.
  • the machining strategies used in high pressure jet cutting are identical to those used in high speed machining at the tool.
  • these strategies define at least the parameters constituted by the advance, the angle of inclination of the jet, the jet pressure, the jet pressure chopping, the nature and the concentration of the fluid, the nature and the particle size and the concentration of coagulant, in particular in the form of resins, the nature and the grade and the concentration of the abrasive or abrasives conveyed by the jet, the nature and the shape and the diameter of the nozzle, and the distance between the nozzle nose and the surface of the product and / or any other tools or technologies embeddable.
  • the jet water is subjected to a pressure of up to 4,100 bars.
  • the filler consists in adding an abrasive, particularly in the form of mineral particles, to the jet of water under pressure.
  • said abrasive is made in whole or in part of olivine particles, corundum, garnet or a combination thereof.
  • this method consists in moving the jet in space along the three dimensions, in particular inside said material or vehicle, through displacement means, in particular at least one numerical axis, in particular eight or nine numerical axes. .
  • this method consists in orienting the jet during its displacement so that it is at an angle to the surface of the material to be cut, forming a cutting angle that varies according to the material.
  • the invention also relates to a device for implementing the preceding cutting method comprising means for simultaneous cutting of heterogeneous materials in the form of a high-pressure water jet with or without a load.
  • said jet comprises a cutting head oriented in space in three dimensions on displacement means determined at their locations by trajectory tracking.
  • said displacement means comprise at least one numerical axis, in particular three digital axes mounted on a gantry receiving an inverted arm, of the robot arm type provided with at least one numerical axis, preferably six numerical axes.
  • the single figure shows a schematic view of a cutting device according to the invention.
  • the present invention relates to a platform constituting a combined system of expertise, inspection, production, and / or maintenance, assisted by specialized software, for processing at least one product.
  • Such a platform is a system designed to allow, in one place, the execution of laboratory missions, simulation, modeling, didactic, research, development, studies, applications, transdisciplinary, cognitive technologies, simultaneous engineering, or systematic analysis.
  • FIG. 1 represents the case of cutting of a vehicle 1, in particular and without limitation in the field of the automotive industry, naval, railway, aeronautical, or other.
  • the platform according to the invention comprises analysis and control means centered on the use and enrichment of a technical database.
  • Specialized software such as CAD / CAM or similar, supports the data relating to the task to be performed, the results of the measurements of the various sensors installed on the platform at the level of the multi-axis manipulators, or else related positions in the field of evolution of these manipulators, make the comparison with the data of the database and the results of calculations specific to the implementation of the processes concerned, and generate the instructions for moving or actuating means installed on multi-axis manipulators or in the work volume, in connection with the software for managing the parameters specific to the embedded specific tools or the physical functions implemented for the execution of the processes.
  • the digital files thus processed can also be transmitted to other platforms, or to external storage or calculation centers.
  • data transfer makes it possible to manage the scheduling of the supply of raw materials and / or components, and the sequencing of production, both upstream and downstream of the platform.
  • the platform according to the invention is a system combining means of analysis and management, for the operation of a device for implementing a method, these means of analysis and management being able to be remote from these measures .
  • Such a device comprises, in all cases, an indeformable basic structure.
  • this indeformable base structure is permanently installed in a dedicated environment, local or location.
  • this basic structure is designed to be mobile by means of displacement means, such as wheels, skids, tracks, associated vehicles, or the like.
  • the platform then comprises locating means in space, in position and in motion, relative to fixed beacons of known position, for example GPS, or optical, or sound, or mechanical, or other means ; processing means included in the platform calculate the parameters of its position and its movement relative to said beacons and with respect to the product whose treatment is envisaged.
  • the non-deformable base structure consists of a gantry, with respect to which one or more multi-axis manipulators are designed, such as cross-linked beams, linear or rotary carriages.
  • multi-axis robots including 6-axis, or the like, such multi-axis manipulators can be advantageously combined with each other.
  • a 6-axis robot is mounted on a linear motion carriage on a beam itself in linear motion relative to the gantry.
  • Different combinations are conceivable, without departing from the principle of the invention.
  • At least one beam overflowing with respect to the gantry designed to be able to embark, both in the area between the amounts of the gantry and for external areas, trolleys provided with robots - pivoting assembly of at least one robot relative to a carriage or a beam, this robot being able to operate from reversed way
  • the non-deformable base structure may advantageously be in the form of a frame provided with a column, around which are designed able to evolve the various multi-axis manipulators, according to rotational movements. and / or linear.
  • a column may advantageously, for certain applications of very large dimensions, be constituted in the form of a telescopic column with incorporated precision guides, guaranteeing positioning accuracy in all its deployment positions and allowing to have a substantially increased stroke .
  • Such a platform immersed at a level wetting advantageously comprises a bell applicable to the hull around the area to be treated, at which bell it is possible, after the emptying thereof, to perform these maintenance work.
  • the basic structure is in the form of a frame, relative to which a column is designed to tilt using means of swiveling, including motorized.
  • the platform according to the invention may, again, incorporate relative locating means between the various manipulative elements that compose it.
  • the software means that comprises the platform according to the invention are then advantageously designed capable of performing the movement corrections according to the comparison between the setpoint positions and the positions reached, with management of the deviations.
  • the platform according to the invention is designed as a unique expert system, implementing software means for performing successively or simultaneously different operations on the product to be processed. This is particularly important when the immobilization of a product is expensive, especially in the case of a ship or an aircraft.
  • the platform thus makes it possible, without moving the product, to produce, in an extremely limited period of time, of the order of a few hours, a set of operations requiring, in a conventional industrial installation, several days or more frequently several weeks.
  • the software tools belonging to the platform constitute means of expertise capable of implementing, automatically or semi-automatically according to the chosen option in the case, algorithms of decision. The result of these calculations makes it possible to trigger the control of the appropriate multi-axis manipulators for the implementation of the processes required by the result of the expertise.
  • a platform according to the invention dedicated to the repair of aeronautical parts, may comprise: means for locking the workpiece to non-destructive, optical health control means, such as magnetoscopy or sweating or alternatively by eddy currents or the like of sensor assemblies such as cameras or the like of optical or mechanical means for three-dimensional measurement
  • machining means by removing material from areas where the means and sensors of health control have identified a defect to eliminate until its complete disappearance
  • a platform dedicated to the assembly by gluing of half-hulls of pleasure craft made of composite materials may comprise:
  • drying means for maintaining the interface of the two half-shells under pressure; drying means
  • a suspended mounting of the multi-axis manipulators is preferred, in order to free the footprint, which allows to devote to the product to treat all available floor space.
  • Such an assembly is particularly well suited to automobile assembly lines, where any reversal of the vehicle is a priori excluded. It should be noted in this regard that the choice of multi-axis robots mounted on trolleys then makes it possible to treat both the exterior and the interior of the vehicle, and as well the top and sides that the underside of the vehicle, when it reaches a raised position relative to the assembly line.
  • the platform according to the invention comprises means for positioning in space with respect to beacons in the vicinity of the product or products to be treated, means for calculating the position, the orientation, and the movement parameters of the device.
  • multi-axis manipulators are each designed to implement at least one method for processing the products on the platform.
  • the positioning in space is preferably carried out by implementing the means used for large machining centers, such as optical or electronic rulers, screws or rack racks. accuracy, or the like.
  • the positioning means are preferably in optical form, or GPS, or the like.
  • the present invention has been more particularly designed to equip multi-axis manipulators with means for implementing technical processes such as:
  • the invention allows the reproduction of volume flow cycle (object in weightlessness, visualization of fluid flow in wind tunnel ), profile definition
  • the implementation of this cutting method according to the invention allows an immediate analysis of the behavior of deformation materials and their resistance, in particular through the pointing of geometric references on the cut materials with respect to their initial positioning on a reference material.
  • the reference point of the coordinate system may be the right front hub of a motor vehicle.
  • the present invention uses cutting means 2 by high pressure water jet.
  • a high pressure pump not shown, located outside the cutting volume conveys through the flexible and / or rigid pipes the water under pressure up to said cutting volume.
  • the high-pressure water thus distributed in the manner of compressed air, is concentrated as it passes through a nozzle in a jet having the power necessary to cut high density materials, especially metal or any other material.
  • said high pressure pump with a power ranging from 15 to 50 HP, can feed several jets with a power of 10 to 12 HP.
  • a jet of water, called pure, can be used for so-called non-hard materials.
  • a load especially in the form of an abrasive, can be added to pressurized water to improve the cutting power of said jet.
  • the latter is of the order of a few tenths of a millimeter in diameter for a pressure ranging from low to high, ie the equivalent of several thousand bars, in particular up to 4,100 bars.
  • the abrasive added to the pressurized water makes it possible to improve the cutting power of the jet and are vehicles of kinetic energy associated with the jet of water.
  • This abrasive may be preferably mineral particle type and chosen depending on the type of material to be cut, some harder minerals being used to cut steel or glass.
  • the abrasive may consist of, in a nonlimiting manner, all or part of particles of garnet, olivine, corundum or a combination of these products.
  • the abrasive is conveyed upstream of the nozzle to be integrated with the water jet.
  • a resin-type coagulant may be added, thus facilitating the focusing of the jet and characterizing the rheology of displacement of the particles.
  • Adding and spraying abrasives provides another advantage to high-pressure water jet cutting by grinding the edges of the cut. These edges are then partially protected from oxidation or corrosion. In particular, this work hardening reduces the formation of premature rust, especially in the form of rust blossom.
  • the change of the type of abrasive, according to the materials to be cut can be made quickly through a change of the nozzle and the feed system.
  • several nozzles can be mounted in the manner of a barrel or a ramp to be automatically rotated as needed. This provides the advantage of equipping the cutting means 2 with a single means for conveying water under pressure through several abrasive management and distribution systems.
  • a parameterisation of the pump offers the possibility of vary the pressure of the water jet according to the type of material to be cut and / or the abrasive used
  • An advantage of using a high-pressure water jet lies first of all in the precision of the jet, which is very fine, which offers a tolerance of cutting edges of the order of a millimeter, preferably between 1, 5 and 3 millimeters, values determined by the manufacturers and corresponding to the local tolerances of the male and female parts.
  • the jet When cutting a material, the jet is preferably positioned obliquely to the surface of said material so as to improve the cutting power of the jet and its continuity, the angle between the jet and the surface of the material being determined according to the characterization of the assemblies and their constituent. This angle is positive or negative with respect to the advance of said jet during cutting, a positive angle resulting in a direction of movement of the jet identical to the direction of spraying of said jet, a negative angle resulting in a direction of movement opposite of the jet with respect to its direction of spraying.
  • the jet makes it possible to cut several thicknesses of materials simultaneously or during the same step.
  • the jet can cut several thicknesses of materials arranged in successive layers, parallel or otherwise, with respect to each other.
  • the cutting device makes it possible to angularly move the cutting means 2 so that the jet is continuously arranged in cutting orientation with respect to each of the layers of material to be cut.
  • the method consists of orienting the jet so that it is successively in optimum situation of cutting continuation with respect to the surface of each layer.
  • the movement of the jet can be carried out in space, in three dimensions, through moving means.
  • These displacement means may be in the form of at least one numerical axis 3 on which is articulated a cutting head 4 comprising said nozzle and its supply.
  • This digital axis can be positioned under six positioning axes.
  • these displacement means may be in the form of three digital axes 3A, 3B, 3C mounted on a gantry 5, the gantry surrounding said vehicle 1 to be cut so that the jet can circulate around the four faces of the vehicle and above the roof, as well as inside the volume of the object.
  • the digital axes 3 can be positioned movably on the gantry 5 so that they are located above said vehicle 1.
  • These digital axes 3 can be arranged orthogonally with respect to each other in order to generate a following displacement a classical Cartesian coordinate system with three coordinate axes or relative or satellite positioning.
  • the cutting head 4 can be oriented in space in three dimensions on displacement means determined in their locations by tracking.
  • the displacement or acceleration speed vectors of said digital axes 3 can be taken into account by the device according to the invention, in particular by management means, and calculated out of displacements, the residual acceleration vectors being considered and managed.
  • the cutting head 4 is mounted on an articulated arm 6 of the robot arm type integral with said pins 3 mounted on the frame 5.
  • This arm can be mounted inverted, or upside down on said moving means.
  • This arm 6 may preferably be a robot arm articulated along a numerical axis and according to the displacement situation, preferably of the so-called digitized wrist and preferably according to six digital axes, to give it optimal mobility.
  • the cutting device comprises eight or nine digital axes.
  • This arm 6 improves the cutting through a more precise positioning and offers the possibility of making cuts from the inside of the equipment or vehicle 1, the arm 6 supporting the jet passing through an opening such as windows, the doors, the tailgate or the like in the case of the cutting of a vehicle 1 automobile.
  • the numerical axes 3 and the arm 6 supporting the cutting head 4 can be controlled through a digital control, a programmable controller, computing systems or the like. These automatic management means offer the advantage of minimizing manual errors and allowing a reproduction of the same cut on different vehicles, guaranteeing the cutting coordinates permanently during the trajectories.
  • the means for conveying water under pressure from the high pressure pump to the volume or the cutting chamber may be in the form of at least one rigid pipe between the high pressure pump and the gantry 5 and at least one flexible hose from the gantry 5 to the arm 6 and the cutting head 4.
  • the latter When cutting the material or the vehicle 1, the latter is positioned on an ablocage reference 7 disposed on a tank 8 for recovering sludge composed of cutting water and abrasive. Fastening means may be added to hold the vehicle and / or the different parts once cut.
  • An advantage of the high-pressure water jet cutting according to the invention lies, in addition, in the fact of supporting on an arm 6 the jet of high pressure water, the means implemented with sufficient resistance to the weight said arm 6, the power developed by said jet of water as well as forces from the vectors of mechanical action at the level of the section.
  • the method according to the invention makes it possible, through the use of a jet of water at high pressure, to surgically cut the materials accurately, without smudging. In the manner of a microtome, the cuts can succeed one another at a short distance, thus producing close quarters facilitating the expertise.
  • Another advantage of the very high pressure jet cutting process lies in the speed of cutting, lasting a few tens of minutes, for cutting one to two vehicles per day.
  • the cutting method also has the advantage of being able to easily ensure safety around the cutting area.
  • the method according to the invention has the advantage of offering a system of cutting and scientific sampling, a precision, a repeatability as well as a repeatability in terms of course files but also in the three - dimensional and multi - material sense, without degrading said materials at the cutting, retaining their metallurgical characteristics and their residual stresses, position and assembly.
  • the cutting method according to the invention will also find its application in the field of the cutting of finished assemblies and assemblies of high value, such as a prototype or an aircraft, or for the realization of particular implantations or variants, in the case of a prototype or an installation of options.
  • the invention may also be used in the food industry for pasalisation, stratigraphic analysis or the analysis of products or materials, as well as in the development of three-dimensional tools, in particular the digitized cutting of materials, the serialization of the elements constituting them, the marking and tracing of a set or subset of assembled elements, prototyping and feedback on the constituent elements of large installations.
  • the platform according to the invention is designed to allow remote data transmission and management, to enable use in a difficult or confined environment: nuclear, explosion, contaminated, or other.
  • nuclear, explosion, contaminated, or other In particular the destruction of weapons, or explosives, or the dismantling of nuclear reactors, are preferred applications for platforms according to the invention.
  • the robotization in 8 axes at least allows to simulate the gestures of human operators in any medium.
  • the embedded platforms according to the invention are able to operate on very large structures: ship hulls, rolling mill trains, hull basins, lava flows.
  • a heliportable version allows the installation at any place of such a platform.
  • a robotic platform (8 axes) with its servo drives, and which integrates the processing of information including travel -types of berthing- to computerized online processing systems on the returns of processing tools (equipped with sensitive sensors mounted on the heads of robots and allowing the many applications as described).
  • the platform environment and associated with any technologies or tools that can be embedded on the platform. These means are technologically independent but are integrated for the management of specific parameters (start-stop of a service) (knowledge of security points or specific cycles), start-up time for projection flames for example downtime in flow protective gases at the end of a welding cycle under atmosphere.
  • the information processing parameters are processed by any means allowing the definition of digital routes or information on computer support by the CAD - CAD - CAM technologies in permanent development to process the various digital travel programs. It is important to define for waterjet cutting the following elements:
  • Draft deviation of forms constituting an envelope shape of the different undulations with respect to the reference dimensional geometric profile.
  • the performances concerning the rocks (of metamorphic or magmatic metamorphic hard or semi-soft type) the cuts are made according to the following characteristics: - retained thickness (type) ep 180 mm (superior possibility) with nozzles of 0.32 mm to 0.20 mm, pressures ranging from 1500 bars to 3800 bars.
  • the Rc% are from 3.3 to 12.8 with given speeds of 6 to 21.8 mm / min.
  • Typical bodies (1.80 mm and 0.84 mm) for surface conditions from 5.5 to 22.5.
  • the services concerning glasses and ceramics cuts are of the same type and typical value as for the rocks.
  • the feed rates are substantially reduced by 10 to 17%.
  • the recommended olivine type materials having a "ductility" better suited to this type of benefits.
  • the microtonimic performances concerning aluminum alloys can be approached according to different technologies whose low thicknesses and technologies of laser and plasma cutting can be used, underlining the problems of ZAT, vitrifications of the surfaces and general deformations coming from the thermal stresses at stake
  • the 8-axis movements of the platforms make it possible to work in space, particularly on the pursuit of shapes, emphasizing that the usual parameters of these technologies are entirely in adequacy with the current platforms as described.
  • These technologies are to be associated with microtonimic platforms.
  • the supersonic waterjet cuts follow the microtonimic concept to solve the various problems of shape and course for this type of embodiment, namely aluminum or aluminum alloy materials comprising thicknesses of 200 mm.
  • the parameters considered for a thickness of 200 mm have a Rc ranging from 2.6% to 12.7% with speeds recorded from 3.2 mm / min to 11.4 mm / min.
  • the shrouds as defined previously vary positively or negatively from the reference directional surface from 0.94 mm to -1.66 mm.
  • the rugosities retained in Ra vary from 1.2 to 2.4. Note the speed and precision in such thicknesses, process performance, without pollution and without metallurgical deterioration of the interfaces.
  • the thicknesses at the threshold of 30 mm have a Rc ranging from 4.5% to 18% for speeds ranging from 500 to 1700 mm / min.
  • the protocols of realizations and The shaping of the products is quite identical and comparable with regard to cuprous, cuprous aluminous alloys, bronze and brass alloys.
  • the services in the field of alloys of the nickel-chromium, austenitic and martensitic or refractory type, or so-called inconel-type exos or the like respond to the various characteristics described, ie to a thickness of 200 mm or more at 0.1 mm or less.
  • the parameters considered for a thickness of 200 mm have a Rc ranging from 3.2% to 12.9% with speeds recorded from 1.6 mm / min to 5.9 mm / min.
  • the envelope bodies as defined above vary positively or negatively with respect to the reference directional surface from 0.67 mm to 1.58 mm.
  • the rugosities retained in Ra vary from 0.8 to 16.
  • the speed and the precision in such thicknesses show the performances of the process, without pollution and without metallurgical deterioration of the interfaces.
  • the Rc range from 4.4% to 17.8%
  • Threshold thicknesses of 30 mm have Rc values ranging from 5.3 to 18.6 for speeds ranging from 400 to 1500 mm / min, the remains being positive and ranging from 0.3 mm to 0.6 mm for Ra ranging from 0.7 to 17.2. .
  • micro-thicknesses below lmm, have a Rc of 13.1% to 18.6% with theoretical speeds ranging from 4500mm / min to 1100 mm / min.
  • microtonimic services associated with the treatment of steels, iron-carbon alloys with metallurgical components as defined by the AFNOR and IRSID standards are to be considered in basic parameters identical to the family used as model in our description. Namely, stainless martensitic and austenitic types.
  • this family includes a wide range of properties inherent to the shaping of the various alloys of these materials, recalling once again that the different cutting criteria are to be compared to the parameters known in UGV and UTGV currently accepted by the profession.
  • microtonimic services applied to the terracotta family can be approached during the cuts with the same parameters as the previously described section concerning the families of granites, glasses and hard rocks, while stressing that, given the heterogeneity of the layers approached during these studies, variations from -15% to + 37% on the parameters defined are to be taken into consideration on microtonimic applications.
  • microtonimic performances in the leaves of wood and plastic are characterized by the following parameters:
  • the Rc varies from 3.2% to 11.8%; the speed was 7.7 mm / min at 29.1 mm / min with a clearance ranging from -1.77 mm to +0.97 mm and a roughness obtained between 5.76 and 21.24.
  • the Rc varies from 5.8% to 13.5% with speeds ranging from 36.2 mm / min to 85.7 mm / min with a clearance ranging from -0.17 mm at + 0.91 mm and a roughness of between 5.22 and 12.15.
  • the Rc range from 6.3% to 17.2% with speeds of 46.2 mm / min to 132 mm / min with a clearance ranging from -0.15 mm to +1 , 03 mm and a roughness of between 5.46 and 13.8.
  • Micro-thicknesses below 1 mm, have an Rc of 14.2% to 18.2% with speeds ranging from 5500 mm / min to 1400 mm / min (theoretical speed).
  • Microtonimic technologies make it possible to address much more complex families of sampling, cutting, stratigraphic analysis and machining services.
  • hollow bodies consisting of thin or thick walls with relative distances of greater or lesser importance, in the case of motor vehicles, chassis and / or sleepers, elements constituting the walls of aircraft comprising shielding plates, wall plates, glues and honeycombs and double walls, cases also widespread in manufactured goods including household appliances or consumer goods (computers, telephone and building telephones, building frames or French windows or electrical equipment-engines for example).
  • Microtonimics is a technique that claims the possible combination of different associated technologies including shot blasting, corunduming, surface preparation, appropriate coatings or paints with performance clauses, cost-effectiveness and accuracy of route definitions as previously specified.
  • microtonimie makes it possible to assert the versatility and the use of various tools associated with the microtonimic platforms of different installations combining speed, reliability, precision, repeatability, integration of technical and technological means, integration of digital means of route definition or parameter management, formatting of routes, complex application processes integrating learning modes or automatic, all in volumes ranging from lmm to the cube to a few hundred cubic meters and accuracies ranging from one hundredth of a millimeter to one centimeter.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Robotics (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Forests & Forestry (AREA)
  • Perforating, Stamping-Out Or Severing By Means Other Than Cutting (AREA)
  • General Factory Administration (AREA)
  • Manipulator (AREA)
EP06726197A 2005-02-28 2006-02-27 Plattform, die ein kombiniertes prüfungs-, inspektions-, produktions- und/oder wartungssystem bildet Withdrawn EP1855846A2 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
FR0550531A FR2882534B1 (fr) 2005-02-28 2005-02-28 Procede de decoupe simultanee de materiaux heterogenes et son dispositif de mise en oeuvre
PCT/FR2006/050173 WO2006092528A2 (fr) 2005-02-28 2006-02-27 Plate-forme constituant un systeme combine d'expertise, d'inspection, de production, et/ou de maintenance

Publications (1)

Publication Number Publication Date
EP1855846A2 true EP1855846A2 (de) 2007-11-21

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ITVR20130109A1 (it) * 2013-05-10 2014-11-11 Petroltecnica S P A Carrello multifunzione adibito alla manutenzione di manufatti metallici in spazi confinati
CN106564094B (zh) * 2016-10-28 2018-09-04 重庆泰奥豪骋科技有限公司 一种汽车内饰件水切割机及加工方法
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FR2882534B1 (fr) 2008-09-26
WO2006092528A2 (fr) 2006-09-08
WO2006092528A3 (fr) 2007-04-05
FR2882534A1 (fr) 2006-09-01

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