Affiliation:
1. Yamaha Motor Co., Ltd.
2. Nippon Light Metal Company, Ltd
3. Matsuura Machinery Corporation
4. Toyo Aluminium K.K.
Abstract
<div class="section abstract"><div class="htmlview paragraph">Laser powder bed fusion is one of the metal additive manufacturing technologies, so-called 3D printing. It has attracted great attentions due to high geometrical flexibility and remarkable metallurgical characteristics. An oil catch tank has been widely used in automotive industries for filtering oil vapors or carbon sludge from blow-by gas as a conventional usage. A pneumatic valve system mainly adopted to high-performance engines is also a potential application of it because undesirable oil infiltrates into air springs during engine operation, resulting in an excess spring pressure. This work focused on developing a lightweight oil catch tank which can be applied to a pneumatic valve system by taking advantage of additive manufacturing techniques. Al-Mg-Sc alloy powder with high tensile strength as well as high ductility were used under the consideration of specific strength, printability and availability. Test specimens fabricated with optimal printing parameters exhibited mechanical properties comparable to a high-strength wrought material as well as unique metallurgical characteristics due to rapid solidification. The newly developed oil catch tank was designed taking into account material properties acquired in this study and functional requirements of the component. The developed tank had a monolithic structure whereas conventional one consists of multiple parts. Moreover, the wall thickness was minimized from location to location based on the induced stress distribution. These are distinct geometrical features which are very difficult to be created by classical processes. As a result, the novel 3D-printed tank in this work was around 60% lighter than conventional one, and experimentally demonstrated to meet the functional requirements.</div></div>
Reference25 articles.
1. Gregory , G. and
Scott , S.
Formation of Intake Valve Deposits in Gasoline Direct Injection Engines SAE Int. J. Fuels Lubr. 9 3 2016 https://doi.org/10.4271/2016-01-2252
2. Shinya , S. ,
Takahisa , Y. ,
Keiji , T. , and
Tatsuhiko , M.
Development of New Motor for Compact-Class Hybrid Vehicles EVS International Battery, Hybrid and Fuel Cell Electric Symposium – Abstract 2016
3. Herzog , D. ,
Seyda , V. ,
Wycisk , E. , and
Emmelmann , C.
Additive Manufacturing of Metals Acta Materialia 117 2016 371 392 10.1016/j.actamat.2016.07.019
4. Frazier , W.E.
Metal Additive Manufacturing: A Review Journal of Materials Engineering and Performance 23 6 2014 1917 1928 10.1007/s11665-014-0958-z
5. Tang , M. ,
Pistorius , P.C. ,
Narra , S. , and
Beuth , J.L.
Rapid Solidification: Selective Laser Melting of AlSi10Mg JOM 68 3 2016 960 996 10.1007/s11837-015-1763-3