Aluminum alloy 7050 is widely used in the aeronautical industries. However, owing to their highly ductile property, chips created during high-speed machining cannot be naturally broken, and long continuous chips are unavoidably formed, impacting the machining stability and quality of the parts. Because a smaller cutting allowance is required compared with conventional machining operations, the behavior of the chips during reaming operation may be more complex and different from those determined in previous investigations. Therefore, studying the characteristics of chip formation and hole quality during the reaming process is essential to improve the machinability of aluminum alloy 7050. In this study, three different cooling conditions were applied to reaming aluminum alloy 7050-T7451 with polycrystalline diamond (PCD) reamers. The finite element models (FEMs) were established to simulate the chip formation. The macro- and micro-morphologies of chips under the three cooling conditions were compared to analyze the chip behaviors. The diameter, surface roughness, and micro-morphologies of the reamed holes were also analyzed to evaluate the hole quality. The results showed that the chip morphology was strongly influenced by the cutting parameters and cooling strategies. It was found that the desired chip morphologies, satisfactory geometrical accuracy and surface quality during the reaming of aluminum alloy 7050-T7451 could be achieved using internal cooling at a spindle speed of 8 000 r/min and a feed rate of 0.01 mm/z. This study also demonstrates the feasibility of an internal cooling strategy for breaking chips when reaming aluminum alloy 7050-T7451, which opens new possibilities for improving the chip-snarling that occurs during hole machining.
The full text can be downloaded at https://link.springer.com/article/10.1007/s40436-021-00364-z
Zi Ye
,
Yong-Guo Wang
,
Xin Yu
. Study on the reaming process of aluminum alloy 7050-T7451 under different cooling conditions[J]. Advances in Manufacturing, 2022
, 10(2)
: 272
-286
.
DOI: 10.1007/s40436-021-00364-z
1. Zhong ZL, Ai X, Liu ZQ et al (2015) Surface morphology and microcrack formation for 7050-T7451 aluminum alloy in high speed milling. Int J Adv Manuf Technol 78(1/4):281–296
2. Han NM, Zhang XM, Liu SD et al (2011) Effects of pre-stretching and ageing on the strength and fracture toughness of aluminum alloy 7050. Mater Sci Eng A 528(10/11):3714–3721
3. Kim HG, Sim JH, Kweon HJ (2009) Performance evaluation of chip breaker utilizing neural network. J Mater Process Technol 209(2):647–656
4. Fu XL, Lin WX, Pan YZ et al (2018) Morphology evolution and micro-mechanism of chip formation during high-speed machining. Int J Adv Manuf Technol 98(1/4):165–175
5. Wang B, Liu ZQ (2017) Acoustic emission signal analysis during chip formation process in high speed machining of 7050-T7451 aluminum alloy and Inconel 718 superalloy. J Manuf Process 27:114–125
6. Wang B, Liu ZQ (2014) Serrated chip formation mechanism based on mixed mode of ductile fracture and adiabatic shear. Proc IMechE Part B: J Eng Manuf 228(2):181–190
7. Wang B, Liu ZQ, Su GS et al (2015) Investigations of critical cutting speed and ductile-to-brittle transition mechanism for workpiece material in ultra high speed machining. Int J Mech Sci 104:44–59
8. Chandrashekhar S, Osman MOM, Sankar TS (1985) An experimental investigation for the stochastic modelling of the resultant force system in BTA deep hole machining. Int J Prod Res 23(4):657–673
9. Jawahir IS, van Luttervelt CA (1993) Recent developments in chip control research and applications. CIRP Ann - Manuf Technol 42(2):659–693
10. Chiffre LD, Tosello G, Píška M et al (2009) Investigation on capability of the reaming process using minimal quantity lubrication. CIRP J Manuf Sci Technol 2(1):47–54
11. Yan XP, Li B, Li JR et al (2013) Analysis of the machining characteristics in reaming AlSi12 alloy with PCD reamer. Int J Adv Manuf Technol 69(9/12):2387–2399
12. Wang YG, Yang XK, Xu QM (2017) Study on cutting force and hole quality of PCD step reamer for reaming ZL102 alloy in dry and wet conditions. Int J Adv Manuf Technol 90(5/8):1693–1702
13. Gonçalves RA, Silva MBD, Costa ÉS (2018) Statistical analysis of cutting forces and hole accuracy in reaming an Al-Si-Mg alloy (6351) with different copper contents. J Braz Soc Mech Sci 40(11):544–563
14. Bayly PV, Young KA, Calvert SG et al (2001) Analysis of tool oscillation and hole roundness error in a quasi-static model of reaming. J Manuf Sci Eng 123(3):387–396
15. Bezerra, AA, Machado AR, Jr Souza AM et al (2001) Effects of machining parameters when reaming aluminum-silicon (SAE 322) alloy. J Mater Process Technol 112(2):185–198
16. Mathews PG, Shunmugam MS (1998) Condition monitoring in reaming through acoustic emission signals. J Mater Process Technol 86(1/3):81–86
17. Towfighian S, Behdinan K, Papini M et al (2007) Finite element modeling of low speed reaming vibrations with reamer geometry modifications. J Intell Manuf 18(6):647–661
18. Sales WF, Guimarães G, Machado ÁR et al (2002) Cooling ability of cutting fluids and measurement of the chip-tool interface temperatures. Ind Lubr Tribol 54(2):57–68
19. Thakur DG, Ramamoorthy B, Vijayaraghavan L (2010) Investigation and optimization of lubrication parameters in high speed turning of superalloy Inconel 718. Int J Adv Manuf Technol 50(5/8):471–478
20. Yildirim CV, Kivak T, Erzincanli F (2019) Influence of different cooling methods on tool life, wear mechanisms and surface roughness in the milling of nickel-based waspaloy with WC tools. Arab J Sci Eng 44(9):7979–7995
21. Pacheco RER, Lauro CH, Pereira RBD et al (2019) Enhancing productivity by means of high feed rate in the drilling of Al 2011 aluminium alloy. Arab J Sci Eng 44(9):8035–8042
22. Braham-Bouchnak T, Germain G, Robert P et al (2010) High pressure water jet assisted machining of duplex steel: Machinability and tool life. Int J Mater Form 3(S1):507–510
23. Nandy AK, Gowrishankar MC, Paul S (2009) Some studies on high-pressure cooling in turning of Ti-6Al-4V. Int J Mach Tools Manuf 49(2):182–198
24. Vagnorius Z, Sørby K (2011) Effect of high-pressure cooling on life of SiAlON tools in machining of Inconel 718. Int J Adv Manuf Technol 54(1/4):83–92
25. Suárez A, Lacalle LNLD, Polvorosa R et al (2016) Effects of high-pressure cooling on the wear patterns on turning inserts used on alloy IN718. Mater Manuf Process 32(6):678–686
26. Li LB, Wu MY, Liu XL et al (2018) Experimental study of the wear behavior of PCBN inserts during cutting of GH4169 superalloys under high-pressure cooling. Int J Adv Manuf Technol 95:1941–1951
27. Silva RBD, Machado ÁR, Ezugwu EO et al (2013) Tool life and wear mechanisms in high speed machining of Ti-6Al-4V alloy with PCD tools under various coolant pressures. J Mater Process Technol 213(8):1459–1464
28. Ding X, Liew WYH, Liu XD (2005) Evaluation of machining performance of MMC with PCBN and PCD tools. Wear 259(7/12):1225–1234
29. Davim JP, Baptista AM (2000) Relationship between cutting force and PCD cutting tool wear in machining silicon carbide reinforced aluminum. J Mater Process Technol 103(3):417–423
30. Horváth R, Czifra Á, Drégelyi-Kiss Á (2015) Effect of conventional and non-conventional tool geometries to skewness and kurtosis of surface roughness in case of fine turning of aluminum alloys with diamond tools. Int J Adv Manuf Technol 78(1/4):297–304
31. Jiang F, Li JF, Sun J et al (2010) Al7050-T7451 turning simulation based on the modified power-law material model. Int J Adv Manuf Technol 48(9/12):871–880
32. Xu HZ, Zhou HG, Ma ZY et al (2019) The influence of tool rake surface geometry on the hard turning process of AISI52100 hardened steel. Materials 12(19):3096–3114
33. Mohsan AUH, Liu ZQ, Ren XP et al (2018) Influences of cutting fluid conditions and cutting parameters on surface integrity of Inconel 718 under high-pressure jet-assisted machining (HPJAM). Lubr Sci 30(6):269–284
34. Zhu ZJ, Sui SC, Sun J et al (2017) Investigation on performance characteristics in drilling of Ti6Al4V alloy. Int J Adv Manuf Technol 93(1/2):1–10