Related Experiment Video
Updated: Feb 3, 2026

Using Micro-Electro-Mechanical Systems MEMS to Develop Diagnostic Tools
Published on: October 1, 2007
Designing a Tool System for Lowering Friction during the Ejection of In-Die Sintered Micro Gears
Emanuele Cannella1,2, Emil Krabbe Nielsen3, Alessandro Stolfi4
1IPU Product Development, Kgs. Lyngby, 2800 DK, Denmark. emcann@ipu.dk.
Abstract:
The continuous improvements in micro-forging technologies generally involve process, material, and tool design. The field assisted sintering technique (FAST) is a process that makes possible the manufacture of near-net-shape components in a closed-die setup. However, the final part quality is affected by the influence of friction during the ejection phase, caused by radial expansion of the compacted and sintered powder. This paper presents the development of a pre-stressed tool system for the manufacture of micro gears made of aluminum. By using the hot isostatic pressing (HIP) sintering process and different combinations of process parameters, the designed tool system was compared to a similar tool system designed without a pre-stressing strategy. The comparison between the two tool systems was based on the ejection force and part fidelity. The ejection force was measured during the tests, while the part fidelity was documented using an optical microscope and computed tomography in order to obtain a multi-scale characterization. The results showed that the use of pre-stress reduced the porosity in the gear by 40% and improved the dimensional fidelity by more than 75% compared to gears produced without pre-stress.
Related Concept Videos
Vapor Pressure Lowering
Kubler Ross's Stages of Dying
In denial, individuals reject the reality of their condition, often thinking, "This isn't true; I feel fine," as a way to protect themselves from...
Kinetic Friction
Types of Friction Problems
The first type of dry friction problem involves situations where there is no apparent impending motion....
Friction: Problem Solving
Initially, a visual representation of the...
Frictional Force

