Projection material processing system and associated method of use
A material processing and associated additive manufacturing system and method that utilizes high intensity light to fuse an entire layer of material, at one time, to create a three-dimensional component. The system and method of the present invention allows for each layer to be created in a fraction of the time, thereby reducing the overall time for a three-dimensional component to be created, thereby increasing control over the properties achieved.
1. An additive manufacturing method for processing a layer of polymeric material, the method comprising:
providing a layer of heat sinterable or meltable powdered polymeric material on a platform or a previously sintered layer of polymeric material; and
for a duration of a few seconds, projecting at least one image having a pre-selected geometry from an image projector comprising a light source which thermal energy has been maximized by omitting a color wheel therefrom, onto a single two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material,
wherein each image has an exposure area of 3.7 cm 2 to 278,709 cm 2 and an optical power of 1.8 W up to 190 W,
wherein an intensity and duration of the projection of the at least one image induces a temperature change in the layer of heat sinterable or meltable powdered polymeric material that is sufficient to sinter or melt the heat sinterable or meltable powdered polymeric material, and
wherein projecting at least one image does not use a laser beam.
2. The method of claim 1 , wherein projecting at least one image from an image projector comprising a light source onto a surface area of the layer of heat sinterable or meltable powdered polymeric material further comprises:
modulating the light source with a digital light switch to produce the at least one image, wherein the at least one image is a grey scale image; and
projecting the at least one image through at least one lens and onto the two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material.
3. The method of claim 2 , wherein modulating the light source to produce the at least one grey scale image further comprises modulating an intensity of the light source across the at least one image.
4. The method of claim 2 , wherein modulating the light source to produce the at least one grey scale image further comprises modulating the projection of the light source across the at least one image.
5. The method of claim 1 , wherein projecting at least one image from an image projector comprising a light source onto a surface area of heat sinterable or meltable powdered polymeric material further comprises, projecting the at least one image from the image projector onto the two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material using a plurality of digital light switches.
6. The method of claim 1 , wherein projecting at least one image from an image projector onto a two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material further comprises, projecting a plurality of different images from a plurality of image projectors onto a plurality of different two-dimensional surface areas of the layer of heat sinterable or meltable powdered polymeric material.
7. The method of claim 1 , wherein the at least one image comprises a plurality of partial images and wherein projecting at least one image from an image projector comprising a light source onto a two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material further comprises projecting each of the plurality of partial images onto different two-dimensional surface areas of the layer of heat sinterable or meltable powdered polymeric material to form the at least one image.
8. The method of claim 1 , further comprising preheating the heat sinterable or meltable powdered polymeric material to a desired pre-heated temperature prior to projecting the at least one image from an image projector comprising a light source onto a two-dimensional surface of the layer of heat sinterable or meltable powdered polymeric material.
9. The method of claim 1 , further comprising;
measuring a spatial temperature distribution over the two-dimensional surface of the layer of heat sinterable or meltable powdered polymeric material; and
controlling the digital light switch based upon the measured spatial temperature distribution over the two-dimensional surface of the layer of heat sinterable or meltable powdered polymeric material.
10. The method of claim 1 , further comprising:
depositing a plurality of layers of heat sinterable or meltable powdered polymeric material, one layer at a time, onto the platform or a previously sintered layer of polymeric material; and
for a duration of a few seconds, projecting at least one image from an image projector onto a single two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material, one layer at a time, wherein an intensity and duration of the projection of the at least one image induces a temperature change in the layer of heat sinterable or meltable powdered polymeric material that is sufficient to sinter or melt the heat sinterable or meltable powdered polymeric material.
11. The method of claim 1 , wherein the image projected to the powdered polymeric material is not obscured by a mask.
12. An additive manufacturing method for processing a layer of material, the method comprising:
providing a layer of heat sinterable or meltable powdered polymeric material on a platform or a previously sintered layer of polymeric material, wherein the powdered polymeric material comprises an absorber that absorbs light at one or more wavelengths of light, wherein the absorber is homogenously and globally distributed within the powdered polymeric material; and
projecting at least one image from an image projector onto a two-dimensional surface area of the layer of heat sinterable or meltable powdered polymeric material,
wherein each image has an exposure area of 3.7 cm 2 to 278.709 cm 2 and an optical power of 1.8 W up to 190 W, and
wherein an intensity and duration of the projection of the at least one image induces a temperature change in the layer of heat sinterable or meltable powdered polymeric material that is sufficient to sinter or melt the heat sinterable or meltable powdered polymeric material.
13. The additive manufacturing method of claim 12 , wherein an entire cross-section of the layer of heat sinterable or meltable powdered material is sintered or melted in a single exposure.
14. The method of claim 12 , wherein the image comprises broad spectrum light.
15. The method of claim 14 , wherein the broad spectrum light comprises ultraviolet light.
16. An additive manufacturing method for making a 3-dimensional part, the method comprising:
a) providing a layer of heat sinterable powdered material on a platform;
b) projecting a single image having a pre-selected geometry and having an exposure area of 3.7 cm 2 to 278,709 cm 2 and an optical power of 1.8 W up to 190 W from an image projector onto an entire two-dimensional surface area of the layer of heat sinterable powdered material, and wherein an intensity and duration of the projection of the at least one image induces a temperature change in the layer of heat sinterable powdered material that is sufficient to sinter the entire two-dimensional cross-section of the heat sinterable powdered material in a single exposure to the image;
c) providing a further layer of heat sinterable powdered material on the previously sintered layer;
d) projecting the image onto the further layer of heat sinterable powdered material to sinter an entire two-dimensional cross-section of the further layer of heat sinterable powdered material in a single exposure to the image; and
e) repeating steps c) and d) until the 3-dimensional part is complete.