IP Library Granted Patent US 10,449,632
Granted Patent B2
US 10,449,632 · App. 16/252,002 · Granted Oct 22, 2019

Spatter reduction laser scanning strategy in selective laser melting

Inventor: Saad Khairallah (Livermore, CA)
Assignee: Lawrence Livermore National Security, LLC
B23K26/066B22F3/1055B23K26/0622B23K26/342B29C64/153B29C64/20B33Y10/00B33Y30/00B22F2003/1056B33Y50/02Y02P10/295
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Quick Facts
Patent No.
US 10,449,632
App. No.
16/252,002
Granted
Oct 22, 2019
Kind
B2
Abstract

An additive manufacturing system wherein a gentle sintering run on heat-fusible particles is followed closely by a selective laser melting run. The laser sintering run slightly sinters the particles and causes the particles to adhere to each other, but not necessarily deform and lose their original shape. The particles become connected via bridges between each other, which holds them in place. During the laser melting run, the powder melts in place, with minimum particle ejection or mobility, since the particles form a network of connected particles.

Claims (14)

1. A method of additive manufacturing for producing a product using a substrate, comprising:

disposing a first layer of first heat-fusible particles on the substrate;

implementing a first sintering run on said first heat-fusible powder particles that causes said first heat-fusible powder particles to adhere to each other, causes said first heat-fusible powder particles to build bridges between each other and hold them in place, and causes said first heat-fusible powder particles to adhere to said substrate, wherein said step of implementing a first sintering run produces first sintered heat-fusible powder particles;

implementing a first melting run on said first sintered heat-fusible powder particles, wherein said step of implementing a first melting run results in said first sintered heat-fusible powder particles being melted and forming a first layer of the product;

disposing a second layer of second heat-fusible particles on said first layer of the product;

implementing a second sintering run on said second heat-fusible powder particles that causes said second heat-fusible powder particles to adhere to each other, causes said second heat-fusible powder particles to build bridges between each other and hold them in place, and causes said second heat-fusible powder particles to adhere to said first layer of the product, wherein said step of implementing a second sintering run produces second sintered heat-fusible powder particles;

implementing a second melting run on said second heat-fusible powder particles, wherein said step of implementing a second melting run results in said second sintered heat-fusible powder particles being melted and forming a second layer of the product;

disposing additional layers of additional heat-fusible particles on said second layer of the product;

implementing additional sintering runs on said additional heat-fusible powder particles that causes said additional heat-fusible powder particles to adhere to each other, causes said additional heat-fusible powder particles to build bridges between each other and hold them in place, and causes said additional heat-fusible powder particles to adhere to said second layer of the product, wherein said step of implementing additional sintering runs produces additional sintered heat-fusible powder particles; and

implementing additional melting runs on said sintered additional heat-fusible powder particles that results in said additional sintered heat-fusible powder particles being melted thereby forming additional layers of the product.

2. The method of additive manufacturing for producing a product using a substrate of claim 1 wherein said step of implementing a first sintering run on said first heat-fusible powder particles comprises implementing a first laser sintering run on said first heat-fusible powder particles.

3. The method of additive manufacturing for producing a product using a substrate of claim 1 wherein said step of implementing a first sintering run on said heat-fusible powder particles comprises implementing a first electron beam sintering run on said first heat-fusible powder particles.

4. The method of additive manufacturing for producing a product using a substrate of claim 1 wherein said step of implementing a first melting run on said first heat-fusible powder particles comprises implementing a first laser melting run on said first heat-fusible powder particles.

5. The method of additive manufacturing for producing a product using a substrate of claim 1 wherein said step of implementing a first melting run on said first heat-fusible powder particles comprises implementing a first electron beam melting run on said first heat-fusible powder particles.

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 26, 2019
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 048440/0748 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2019
From: KHAIRALLAH, SAAD
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 048061/0355 →
Continuity (2)
Division 14882762 · Oct 14, 2015
Related Publication 20190151986A1 · May 23, 2019