Stress concentration targeted reinforcement using multi-material based 3D printing
Topological engineering (3D printing into complex geometry) has emerged as a pragmatic
approach to develop high specific strength (high strength and low density) lightweight …
approach to develop high specific strength (high strength and low density) lightweight …
Composite strengthening via stress-concentration regions softening: The proof of concept with Schwarzites and Schwarzynes inspired multi-material additive …
Inspired by nature, porous graded topological structures based on carbon, like Schwarzites
and Schwartzynes, exhibit a distinctive radial-gradient distribution of pores. The pores are …
and Schwartzynes, exhibit a distinctive radial-gradient distribution of pores. The pores are …
Tensile properties and damage mechanisms of 3D printed Ti-24Nb-4Zr-8Sn alloy and polyurea interpenetrating phase composites
CQ Lu, SJ Li, ZQ Liu, DR Liu, T Zhao, DL Gong… - Journal of Alloys and …, 2024 - Elsevier
By preparing interpenetrating phase composites (IPCs) using two-phase composites of
metals and polymers, it is possible to preserve the inherent properties of the metal lattice …
metals and polymers, it is possible to preserve the inherent properties of the metal lattice …
Enhancing structural resilience by using 3D printed complex polymer reinforcement for high damage tolerant structures
Conventional cementitious structures demonstrate high compressive strength, yet they are
inherently prone to brittleness. The development of materials or building blocks with high …
inherently prone to brittleness. The development of materials or building blocks with high …
[引用][C] RSM-BASED STATISTICAL APPROACH TO ENHANCE THE COMPRESSIVE PERFORMANCE OF ABS P400 PARTS FABRICATED VIA FDM TECHNOLOGY
This research investigates the performance of ABS P400 parts under compressive loading.
These ABS P400 parts are fabricated by fused deposition modeling (FDM) process using …
These ABS P400 parts are fabricated by fused deposition modeling (FDM) process using …