METAL DROP EJECTING THREE-DIMENSIONAL (3D) OBJECT PRINTER AND METHOD OF OPERATION FOR FACILITATING RELEASE OF A METAL OBJECT FROM A BUILD PLATFORM
A three-dimensional (3D) metal object manufacturing apparatus is equipped with a vacuum system and a hold-down plate to secure a metal foil to the hold-down plate during manufacture of a metal object. The melted metal drops ejected by the apparatus to form the object bond to the metal foil to form the base layer of the object. When the vacuum system is deactivated after manufacture of the object is complete, the object and foil are removed from the apparatus intact and the foil not part of the base layer is trimmed from the object.
1 . A metal drop ejecting apparatus comprising:
an ejector head having a vessel with a receptacle within the vessel that is configured to hold melted metal;
a planar member; and
a metal foil positioned between the ejector head and the planar member to receive the melted metal drops ejected from the ejector head.
2 . The apparatus of claim 1 further comprising:
a plate of thermally conductive material interposed between the metal foil and the planar member.
3 . The apparatus of claim 2 wherein the plate of thermally conductive material includes a plurality of holes and the apparatus further comprises:
a vacuum source operatively connected to the plurality of holes in the plate of thermally conductive material to hold the metal foil against the plate of thermally conductive material.
4 . The apparatus of claim 3 further comprising:
a controller operatively connected to the ejector head and the vacuum source, the controller being configured to:
operate the vacuum source selectively to hold the metal foil against the plate of thermally conductive material and to release the metal foil from the plate of thermally conductive material; and
operate the ejector head to eject drops of melted metal from the receptacle while the vacuum source is operated to hold the metal foil against the plate of thermally conductive material.
5 . The apparatus of claim 4 further comprising:
a heater configured to heat the plate of thermally conductive material; and
the controller is further configured to:
operate the heater to maintain the plate of thermally conductive material in a range of about 400° C. to about 600° C.
6 . The apparatus of claim 5 wherein the plate of thermally conductive material is comprised essentially of brass.
7 . The apparatus of claim 6 wherein a surface of the brass plate of thermally conductive material includes nickel plating.
8 . The apparatus of claim 7 wherein the metal foil is comprised essentially of aluminum.
9 . The apparatus of claim 8 wherein the aluminum metal foil has a thickness in a range of about 0.5 mils to about 3.0 mils.
10 . The apparatus of claim 9 wherein the heater is an electrical resistance heater.
11 . A method of operating a metal drop ejecting apparatus comprising:
positioning a metal foil between an ejector head configured to eject drops of melted metal and a planar member toward which the ejector head ejects the melted metal drops; and
operating the ejector head to eject melted metal drops on the metal foil to form a metal object that bonds to the metal foil.
12 . The method of claim 11 further comprising:
interposing a plate of thermally conductive material between the metal foil and the planar member.
13 . The method of claim 12 further comprising:
operating a vacuum source operatively connected to a plurality of holes in the plate of thermally conductive material to hold the metal foil against the plate of thermally conductive material.
14 . The method of claim 13 further comprising:
operating the vacuum source with a controller to hold the metal foil against the plate of thermally conductive material while the controller operates the ejector head to eject melted metal drops toward the metal foil; and
deactivating the vacuum with the controller to release the metal foil from the plate of thermally conductive material.
15 . The method of claim 14 further comprising:
operating a heater configured to heat the plate of thermally conductive material with the controller to maintain the plate of thermally conductive material in a range of about 400° C. to about 600° C.
16 . The method of claim 15 wherein the plate of thermally conductive material is comprised essentially of brass.
17 . The method of claim 16 wherein a surface of the brass plate of thermally conductive material includes nickel plating.
18 . The method of claim 17 wherein the metal foil is comprised essentially of aluminum.
19 . The method of claim 18 wherein the aluminum metal foil has a thickness in a range of about 0.5 mils to about 3.0 mils.
20 . The method of claim 19 , the operation of the heater further comprises:
operating an electrical resistance heater.