Thermographic Process Monitoring in Powderbed Based Additive Manufacturing

被引:40
作者
Krauss, Harald [1 ]
Zeugner, Thomas [2 ]
Zaeh, Michael F. [1 ]
机构
[1] Tech Univ Munich, AMLab, Iwb Applicat Ctr Augsburg, D-80290 Munich, Germany
[2] Univ Augsburg, Augsburg, Germany
来源
41ST ANNUAL REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOL 34 | 2015年 / 1650卷
关键词
LASER;
D O I
10.1063/1.4914608
中图分类号
O59 [应用物理学];
学科分类号
摘要
Selective Laser Melting is utilized to build metallic parts directly from CAD-Data by solidification of thin powder layers through application of a fast scanning laser beam. In this study layerwise monitoring of the temperature distribution is used to gather information about the process stability and the resulting part quality. The heat distribution varies with different kinds of parameters including scan vector length, laser power, layer thickness and inter-part distance in the job layout which in turn influence the resulting part quality. By integration of an off-axis mounted uncooled thermal detector the solidification as well as the layer deposition are monitored and evaluated. Errors in the generation of new powder layers usually result in a locally varying layer thickness that may cause poor part quality. For effect quantification, the locally applied layer thickness is determined by evaluating the heat-up of the newly deposited powder. During the solidification process space and time-resolved data is used to characterize the zone of elevated temperatures and to derive locally varying heat dissipation properties. Potential quality indicators are evaluated and correlated to the resulting part quality: Thermal diffusivity is derived from a simplified heat dissipation model and evaluated for every pixel and cool-down phase of a layer. This allows the quantification of expected material homogeneity properties. Maximum temperature and time above certain temperatures are measured in order to detect hot spots or delamination issues that may cause a process breakdown. Furthermore, a method for quantification of sputter activity is presented. Since high sputter activity indicates unstable melt dynamics this can be used to identify parameter drifts, improper atmospheric conditions or material binding errors. The resulting surface structure after solidification complicates temperature determination on the one hand but enables the detection of potential surface defects on the other hand. These issues and proper key figures for thermographic monitoring of the Selective Laser Melting process are discussed in the paper. Even though microbolometric temperature measurement is limited to repetition rates in the Hz-regime and sub megapixel resolution, current results show the feasibility of process surveillance by thermography for a limited section of the building platform in a commercial system.
引用
收藏
页码:177 / 183
页数:7
相关论文
共 13 条
[1]   Thermal process maps for predicting solidification microstructure in laser fabrication of thin-wall structures [J].
Bontha, Srikanth ;
Klingbeil, Nathan W. ;
Kobryn, Pamela A. ;
Fraser, Hamish L. .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2006, 178 (1-3) :135-142
[2]   Feedback control of Layerwise Laser Melting using optical sensors [J].
Craeghs, Tom ;
Bechmann, Florian ;
Berumen, Sebastian ;
Kruth, Jean-Pierre .
LASER ASSISTED NET SHAPE ENGINEERING 6, PROCEEDINGS OF THE LANE 2010, PART 2, 2010, 5 :505-514
[3]  
Grunberger T., 2013, RAPID TECH 2013 FACH
[4]  
Krauss H., P 12 LAN C LAS ASS N
[5]  
Krauss H., 2014, DDMC 2014 FRAUNH IPT
[6]  
Krauss H., 2012, SOLID FREEFORM FABRI
[7]   Consolidation phenomena in laser and powder-bed based layered manufacturing [J].
Kruth, J. -P. ;
Levy, G. ;
Klocke, F. ;
Childs, T. H. C. .
CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2007, 56 (02) :730-759
[8]  
Ljungblad U., 2012, DIR DIG MAN C 2012
[9]   Design of an Optical system for the In Situ Process Monitoring of Selective Laser Melting (SLM) [J].
Lott, Philipp ;
Schleifenbaum, Henrich ;
Meiners, Wilhelm ;
Wissenbach, Konrad ;
Hinke, Christian ;
Bueltmann, Jan .
LASERS IN MANUFACTURING 2011: PROCEEDINGS OF THE SIXTH INTERNATIONAL WLT CONFERENCE ON LASERS IN MANUFACTURING, VOL 12, PT A, 2011, 12 :683-690
[10]  
Rodriguez E., 2012, SOLID FREEFORM FABRI