Numerical simulation for temperature field of TC4 titanium alloy hollow blade during laser rapid forming process

Research output: Contribution to journalArticlepeer-review

24 Scopus citations

Abstract

The finite-element model of transient temperature field for hollow blade during laser rapid forming (LRF) process was developed. The transient temperature field evolution during laser rapid forming (LRF) process for TC4 alloy hollow blade was simulated by adopting the birth and death technology and the enthalpy potential method. The results show that the cooling rate and temperature gradient of melting pool are high about -1735°C/s and 8.34 × 105°C/m, respectively, in the early stage for first layer melting pool. With increasing the deposited height of blade, the cooling rate and temperature gradient of melting pool become lower gradually. When the melting pool is about three quarter-height of the blade, the cooling rate is about -438°C/s and the temperature gradient is about 3.67 × 105°C/m. At last, when the process of laser rapid forming is finished, the temperature distribution in hollow blade is from low (30°C at bottom of substrate) to high (1542°C at top of blade) along the vertical (Z axis) direction, the temperature gradient in substrate is smaller (about 5 × 103°C/m) than that of in the blade (about 2.6 × 104°C/m), and the main thermal transpiration direction is from top to bottom, and from melting pool to substrate.

Original languageEnglish
Pages (from-to)1193-1199
Number of pages7
JournalXiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering
Volume36
Issue number7
StatePublished - Jul 2007

Keywords

  • Hollow blade
  • Laser rapid forming
  • TC4 alloy
  • Temperature field

Fingerprint

Dive into the research topics of 'Numerical simulation for temperature field of TC4 titanium alloy hollow blade during laser rapid forming process'. Together they form a unique fingerprint.

Cite this