TY - JOUR
T1 - An allowance optimization method for near-net-shape blade considering material-saving, energy consumption and carbon emissions
AU - Wan, N.
AU - Zhuang, Q. X.
AU - Chang, Z. Y.
AU - Yi, Z. F.
N1 - Publisher Copyright:
© 2022, The Author(s) under exclusive licence to Iranian Society of Environmentalists (IRSEN) and Science and Research Branch, Islamic Azad University.
PY - 2023/4
Y1 - 2023/4
N2 - In the fabrication of aero-engine, the blade parts are difficult to cut, resulting in high energy consumption and pollution. Reducing energy consumption and improving material utilization are conducive to alleviating energy shortage and climate change problems. The blade billet is usually obtained by forging or casting, and then processed by computer numerical control (CNC) precision machining. They are widely used in the manufacturing industry with the characteristics of high precision and weak stiffness, resulting in long machining time and high energy consumption. The forging billet has a large allowance, low material utilization and high machining energy consumption. Therefore, this paper investigates the potential of allowance optimization to reduce carbon emissions in free-form surface machining. An innovative optimization model of reconstructing the machining model of free-form surface is proposed for the near-net-shape billet. By this way, the differences in energy consumption, material utilization and carbon emissions between the traditional method and the proposed method are compared. Finally, a group of blades of an aero-engine compressor is used to demonstrate the proposed method. The carbon emission reduced in the finishing phase is about 3.745 kgCO2 for a compressor. If 1100 unit compressors are produced one year, the reduction is equivalent to absorptive amount of 228 trees.
AB - In the fabrication of aero-engine, the blade parts are difficult to cut, resulting in high energy consumption and pollution. Reducing energy consumption and improving material utilization are conducive to alleviating energy shortage and climate change problems. The blade billet is usually obtained by forging or casting, and then processed by computer numerical control (CNC) precision machining. They are widely used in the manufacturing industry with the characteristics of high precision and weak stiffness, resulting in long machining time and high energy consumption. The forging billet has a large allowance, low material utilization and high machining energy consumption. Therefore, this paper investigates the potential of allowance optimization to reduce carbon emissions in free-form surface machining. An innovative optimization model of reconstructing the machining model of free-form surface is proposed for the near-net-shape billet. By this way, the differences in energy consumption, material utilization and carbon emissions between the traditional method and the proposed method are compared. Finally, a group of blades of an aero-engine compressor is used to demonstrate the proposed method. The carbon emission reduced in the finishing phase is about 3.745 kgCO2 for a compressor. If 1100 unit compressors are produced one year, the reduction is equivalent to absorptive amount of 228 trees.
KW - Allowance optimization
KW - Blade
KW - Carbon emission
KW - Energy consumption
KW - Material utilization
UR - http://www.scopus.com/inward/record.url?scp=85130756140&partnerID=8YFLogxK
U2 - 10.1007/s13762-022-04242-4
DO - 10.1007/s13762-022-04242-4
M3 - 文章
AN - SCOPUS:85130756140
SN - 1735-1472
VL - 20
SP - 4339
EP - 4354
JO - International Journal of Environmental Science and Technology
JF - International Journal of Environmental Science and Technology
IS - 4
ER -