The present invention relates to a method for automatically creating horizontal cutting paths in the interior space of a three-dimensional shaped product, using a CAD/CAM system in which a program is designed for each of the steps of: forming lamination of a powder according to a squeegee spraying the powder and moving on the sprayed powder for making the powder surface into a flat state, sintering by radiating one of a laser beam and an electron beam to one or a plurality of the laminated powder layers in a shaping region of the three-dimensional shaped product by melting radiated positions and solidifying the radiated positions after melting, and cutting by traveling of a cutting tool, that are necessary to produce a three-dimensional shaped product.
When creating a cutting path for a cutting tool by a CAD/CAM system, it is assumed that the regions containing the cutting path are regions in which the cutting tool can be inserted.
For an enclosed interior space of a three-dimensional shaped product, therefore, such as the inner side of a water conduit, it is considered to be impossible to automatically create a cutting path in the interior space by a CAD/CAM system, under a reason that the cutting tool cannot be inserted essentially.
In light of this problem, Patent Document 1 proposes irradiating a laser light beam for interior cutting of a three-dimensional shaped product by a CAD/CAM system while adjusting the focal point of the light beam, to thereby avoid having to use a cutting tool to create a cutting path in the interior space.
On the other hand, in other prior art different from Patent Document 1, a horizontal plane is first established at a location at the upper end of the interior space, the shaping region is divided into a region above the plane and a region below the plane, the CAD/CAM system is used to create the horizontal cutting paths in the upper region and the lower region, and the cutting paths of both are joined after deleting the cutting path automatically created on the plane.
However, in this method, each horizontal cutting path in the upper region and each horizontal cutting path in the lower region are separately and independently created, and as a result it is impossible for the CAD/CAM system to automatically create a program combining the cutting paths of both, since the regions do not have the parameters based on common information.
That is, in order to accomplish such joining, it is necessary to create the program manually.
According to the prior art, therefore, no method has been provided for automatic creation of horizontal cutting paths by a CAD/CAM system for cutting of the interior spaces of three-dimensional shaped products.
An object of the present invention is providing a construction allowing automatic creation of horizontal cutting paths which are necessary for cutting in the interior space of a three-dimensional shaped product with a CAD/CAM system.
In order to solve the aforementioned problems, the present invention has the following basic features.
(1). A method for automatic creation of a cutting path in an interior space of a three-dimensional shaped product formed in a CAD/CAM system in which a program is designed for each of the steps of forming lamination of a powder according to a squeegee spraying the powder and moving on the sprayed powder for making the powder surface in a flat state, sintering by radiating one of a laser beam and an electron beam to one or a plurality of the laminated powder layers in a shaping region of the three-dimensional shaped product by melting radiated positions and solidifying the radiated positions after melting and cutting by traveling of a cutting tool, that are necessary to create the three-dimensional shaped product, comprising the steps of:
defining a horizontal plane at an intermediate location between an upper end and a lower end of the interior space,
first creating, in a lower region of the horizontal plane, data of horizontal cutting paths with a standard on positions according to a height direction on interior wall sections, that are set by the program for said steps of forming lamination and sintering, from a location at the lower end or a vicinity of the lower end, at locations set successively toward an upper side with every cutting width of the cutting tool along a vertical direction,
when creation of each horizontal cutting path described in the step of first creating has reached the horizontal plane or a location at a distance that is shorter than the cutting width along the vertical direction from the horizontal plane, while stopping creation of the horizontal cutting path at the horizontal plane, thereafter second creating data of horizontal cutting paths with a standard on positions according to a height direction on interior wall sections, that are set by the program for said steps of forming lamination and sintering, in the upper region of the horizontal plane, at locations set successively toward the upper side with every cutting width of the cutting tool along the vertical direction, from a location that is higher by the cutting width than the last cutting path created in the step of first creating, until reaching the upper end or a vicinity of the upper end,
joining the cutting paths of the step of first creating and the cutting paths of the step of second creating through the horizontal plane,
wherein, for forming the three-dimensional shaped product, it is planned that the lower region of the horizontal plane and the upper region of the horizontal plane are divided with each other, and the forming lamination, the sintering, and the cutting of the lower region and these of the upper region are executed independently, and that the upper region is put on the lower region at a position of the horizontal plane, and these regions are connected with each other by radiating one of a laser beam and an electron beam from outside to a position of the horizontal plane and its neighborhood by melting the position and solidifying the position after melting.
(2). A method for automatic creation of a cutting path in an interior space of a three-dimensional shaped product formed in a CAD/CAM system in which a program is designed for each of the steps of forming lamination of a powder according to a squeegee spraying the powder and moving on the sprayed powder for making the powder surface in a flat state, sintering by radiating one of a laser beam and an electron beam to one or a plurality of the laminated powder layers in a shaping region of the three-dimensional shaped product by melting radiated positions and solidifying the radiated positions after melting and cutting by traveling of a cutting tool, that are necessary to create the three-dimensional shaped product, comprising the steps of:
defining a horizontal plane at an intermediate location between an upper end and a lower end of the interior space,
first creating, in a lower region of the horizontal plane, data of horizontal cutting paths with a standard on positions according to a height direction on interior wall sections, that are set by the program for said steps of forming lamination and sintering, from a location at the lower end or a vicinity of the lower end, at locations set successively toward an upper side with every cutting width of the cutting tool along a vertical direction,
when creation of each horizontal cutting path in the step of first creating has reached the horizontal plane or a location at a distance that is shorter than the cutting width along the vertical direction from the horizontal plane, while creating a horizontal cutting path on the horizontal plane, thereafter second creating data of horizontal cutting paths with a standard on positions according to a height direction on interior wall sections, that are set by the program for said steps of forming lamination and sintering, in the upper region of the horizontal plane, at locations set successively toward the upper side with every cutting width of the cutting tool along the vertical direction, from a location that is higher by the cutting width than the last cutting path created in the step of first creating, until reaching the upper end or a vicinity of the upper end,
joining the cutting paths of the step of first creating and the cutting paths of the step of second creating through the horizontal plane, after deleting the horizontal cutting path on the horizontal plane,
wherein, for forming the three-dimensional shaped product, it is planned that the lower region of the horizontal plane and the upper region of the horizontal plane are divided with each other, and the forming lamination, the sintering, and the cutting of the lower region and these of the upper region are executed independently, and that the upper region is put on the lower region at a position of the horizontal plane, and these regions are connected with each other by radiating one of a laser beam and an electron beam from outside to a position of the horizontal plane and its neighborhood by melting the position and solidifying the position after melting.
For forming the three-dimensional shaped products, the present invention, as is founded on these basic constructions (1) and (2), stands on the premise to be planned that the lower region of the horizontal plane and the upper region of the horizontal plane are divided with each other, and the lamination, the sintering, and the cutting of the lower region and these of the upper region are executed independently, and that the upper region is put on the lower region at a position of the horizontal plane, and these regions are connected with each other by radiating one of a laser beam and an electron beam from outside to a position of the horizontal plane and its neighborhood by melting the position and solidifying the position after melting.
According to the above premise, the present invention specifies the location for a lower region and upper region created by a CAD/CAM system on a conceptually defined horizontal plane, and the CAD/CAM system can therefore automatically join the lower region and upper region through the specified location, while the programs that create the horizontal cutting paths in both regions can be automatically joined, and so it is unnecessary to further manually create a special program for joining, as is the case of the prior art.
Moreover, in the present invention, since the lower region and the upper region can be joined through the horizontal plane without any special deformation, it is possible to carry out high-quality cutting of the interior.
The basic constructions (1) and (2) stand on that a CAD/CAM system automatically creates a program for each step necessary to produce a three-dimensional shaped product 1, based on the steps of laminating a powder with a traveling squeegee, sintering by irradiation of a laser beam or electron beam and cutting by traveling of a cutting tool, while the fundamental technical concept of the basic constructions (1) and (2) exist in automatically creating horizontal cutting paths 5 necessary for cutting of the three-dimensional shaped product 1 in the interior space 2.
The basic construction (1) comprises the order of steps specified below, as illustrated in
1. As shown in
2. As shown in
3. As shown in
4. As shown in
The basic construction (2) comprises the order of steps specified below, as illustrated in
1. As shown in
2. As shown in
3. As shown in
4. As shown in
In both step 2 and step 3, the horizontal cutting paths 5 are automatically created for interior wall sections set by the program required to carry out the lamination or sintering of one or a plurality of layers as a unit.
In steps 2 and 3, the horizontal cutting paths 5 are set at locations successively toward the upper side with different tool cutting widths in the vertical direction, and the height locations of the horizontal cutting paths 5 are specified based on specific locations in the widths in the vertical direction.
However, the center location of the widths in the vertical direction will usually be set to be the reference location for the horizontal cutting paths 5.
As shown in
In step 3, the horizontal cutting paths 5 created at the uppermost location in the lower region 31 of the horizontal plane 3 are either at a location at the same height as the horizontal plane 3, or at a location with a shorter distance than the cutting width in the vertical direction, along the height direction, with respect to the plane.
In either case, in step 3, the horizontal cutting paths 5 shift to the upper region 32 and are created at locations set successively toward the upper side with every cutting width of the cutting tool along the vertical direction.
In the basic construction (1), the CAD/CAM system cancels creation of the cutting path 5 in the horizontal plane 3, but in the basic construction (2), the cutting path 5 of the horizontal plane 3 is created and then deleted afterwards.
Thus, the basic construction (1) is more efficient than the basic construction (2), in terms of unnecessity for creating and deleting the horizontal cutting path 5 on the horizontal plane 3.
However, in either case, the CAD/CAM system specifies and records the location of the horizontal plane 3, and depending on that location, step 4 can still be automatically carried out in either case as long as it is possible to create a combining program obtained from the program that creates the horizontal cutting paths 5 in the upper region 32 and the program that creates the horizontal cutting paths 5 in the lower region 31.
In the basic constructions (1) and (2), it must be examined why the program may create horizontal cutting paths 5 on the interior wall sections.
For reference, inserting a cutting tool in interior space 2 seems to be impossible.
However, in basic constructions (1) and (2), the program may create horizontal cutting paths 5 on the interior wall according to following steps:
(1). As shown in
(2). As is shown in
(3). As shown in
Putting the upper region 32 on the lower region 31 is possible, because the lower region 31 has a flat plane along the horizontal plane 3 with a certain area at the upper end, and the upper region 32 has a flat plane along the horizontal plane 3 with a certain area at the lower end.
(4). As shown in
A concrete construction of radiating one of a laser beam and an electron beam disclosed in
In the embodiment of
However, according to rotation of the table 9 along center axis 91, all positions of the horizontal plane 3 and its neighborhood can be radiated by one additional instrument 7 with radiation, so the lower region 31 and the upper region 32 are connected with each other.
In embodiments of
In the embodiment of
However, according to rotation of numbers N of instruments 7 for radiating the laser beam and the electron beam 70 with an angle range of 360°/N, all positions of the horizontal plane 3 and its neighborhood can be radiated by numbers N of instruments 7 without rotation of the table 9, and so the lower region 31 and the upper region 32 are connected with each other.
In the embodiment of
However, according to rotation of numbers N of mirrors 8 with an angle range of 360°/N, all positions of the horizontal plane 3 and its neighborhood can be radiated by numbers N of instruments 7 without rotation of the table 9, and so the lower region 31 and the upper region 32 are connected with each other.
In the interior space 2, it is planned that a lower end surface 41 of the lower region 31 and an upper end surface 42 of the upper region 32 are formed by the forming lamination and the sintering as is disclosed in
Moreover, it is planned that in the lower end surface 41 of the lower region 31 and the upper end surface 42 of the upper region 32, cutting by a top position of rotational axis 61 of cutting tool 6 may be executed as is disclosed by the dotted line in
Especially, it may be planned that cutting for the upper end surface 42 of the upper region 32 is executed after inverting the upper end locations and the lower end locations as is denoted by
Examples of the invention will now be described.
In Example 1, as shown in
In Example 1, a portion of the region along the height direction of the interior wall section narrows toward the upper end, as shown in
In Example 2, as shown in
The use of an undercut tool for slanted interior wall sections has conventionally been unavoidable, but in Example 2, the mutually facing interior wall sections are slanted in a parallel manner along the height direction, and therefore by coordinate transformation with an angle shift so that the direction of inclination is vertical, therefore it is possible to create the cutting paths 5 with the premise that a standard tool will be used for all of the regions, thus allowing the cutting paths 5 to be created in a more efficient manner.
The present invention carries out full automation of horizontal cutting paths in the interior space of a three-dimensional shaped product using a CAD/CAM system, and it can therefore be utilized in a wide range of three-dimensional shaping processes in which creation of interior spaces is indispensable.
Number | Date | Country | Kind |
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2017-152521 | Aug 2017 | JP | national |
Number | Date | Country | |
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Parent | 15876542 | Jan 2018 | US |
Child | 16193376 | US |