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王宇斌等:组织形态对718塑料模具钢切削性能的影响 ·1351 study on strain and stress partitioning in bainitic steels with [19]Huang Y,Cheng GG,Bao Dao H.Current status of the martensite-austenite constituents.Int/Plast,2018,104:39 characteristics and control of primary carbides in H13 steel.ChinJ [13]Zhang C,Guo H,Wang J X,et al.Effect of austempering Eng.doi:10.13374.issn2095-9389.2020.05.24.002 temperature on the microstructure and wear resistance of ultrafine (黄宇,成国光,鲍道华.H13钢中一次碳化物的特征及控制进展 bainitic steel.Chin J Eng,2018,40(12):1502 工程科学学报.doi:10.13374,.issn2095-9389.2020.05.24.002) (张超,郭辉,王家星,等等温淬火温度对超细贝氏体钢组织及 [20]Sabzi H E,Hanzaki A Z,Abedi H R,et al.The effects of bimodal 耐磨性的影响.工程科学学报,2018,40(12):1502) grain size distributions on the work hardening behavior of a [14]Li S,Shi Y L,Yang X C.et al.Microstructural evolution of transformation-twinning induced plasticity steel.Mater Sci Eng A, Mo-W-V alloyed hot-work die steel during high-temperature tem- 2016,678:23 pering.Chin J Eng,2020,42(7):902 [21]Abukhshim N A,Mativenga P T,Sheikh M A.Heat generation (李爽,时彦林,杨晓彩,等.钼钨钒合金化热作模具钢高温回火 and temperature prediction in metal cutting:A review and 组织演变.工程科学学报,2020,42(7):902) implications for high speed machining.Int J Mach Tools Manuf [15]Liu HH,Fu P X,Liu H W,et al.Microstructure evolution and 2006.46(7-8):782 mechanical properties in 718H pre-hardened mold steel during [22]Zheng G M,Xu R F,Cheng X,et al.Effect of cutting parameters tempering.Mater Sci Eng 4,2017,709:181 on wear behavior of coated tool and surface roughness in high- [16]Lu X H,Lu Y J,Wang F R,et al.Research on work hardening of speed turning of 300M.Measurement,2018,125:99 micro-milling nickel-based superalloy.Modular Mach Tool Autom [23]Suresh R,Basavarajappa S,Samuel G L.Some studies on hard Manuf Tech,2016(7):4 tuming of AlSI 4340 steel using multilayer coated carbide tool. (卢晓红,路彦君,王福瑞,等.镍基高温合金Inconel718微铣削 Measurement,2012,45(7):1872 加工硬化研究.组合机床与自动化加工技术,2016(7):4) [24]Zhan G,He L,Jiang H W,et al.Performance comparison and [17]Zhang K L.Analysis and reduction measures on surface roughness prediction of cutting energy of new cemented carbide micro-pit of tuming parts.Coal Mine Mach,2013,34(5):166 tuming tool.ChinJ Eng,2017,39(8):1207 (张坤领.车削零件表面粗糙度成因分析及降低措施.煤矿机械 (占刚,何林,蒋宏婉,等.新型硬质合金微坑车刀切削能对比研 2013,34(5):166) 究与预测.工程科学学报,2017,39(8):1207) [18]Liu Y M.Deformation dislocation structure and strength of [25]Oliaei S N B,Karpat Y.Investigating the influence of built-up structural steels.J/ron Steel Res,2007,19(4):1 edge on forces and surface roughness in micro scale orthogonal (刘禹门.结构钢的形变位错结构和强度.钢铁研究学报,2007, machining of titanium alloy Ti6Al4V.J Mater Process Technol, 19(4):1) 2016,235:28study  on  strain  and  stress  partitioning  in  bainitic  steels  with martensite–austenite constituents. Int J Plast, 2018, 104: 39 Zhang  C,  Guo  H,  Wang  J  X,  et  al.  Effect  of  austempering temperature on the microstructure and wear resistance of ultrafine bainitic steel. Chin J Eng, 2018, 40(12): 1502 (张超, 郭辉, 王家星, 等. 等温淬火温度对超细贝氏体钢组织及 耐磨性的影响. 工程科学学报, 2018, 40(12):1502) [13] Li  S,  Shi  Y  L,  Yang  X  C,  et  al.  Microstructural  evolution  of Mo–W–V alloyed hot-work die steel during high-temperature tem￾pering. Chin J Eng, 2020, 42(7): 902 (李爽, 时彦林, 杨晓彩, 等. 钼钨钒合金化热作模具钢高温回火 组织演变. 工程科学学报, 2020, 42(7):902) [14] Liu  H  H,  Fu  P  X,  Liu  H  W,  et  al.  Microstructure  evolution  and mechanical  properties  in  718H  pre-hardened  mold  steel  during tempering. Mater Sci Eng A, 2017, 709: 181 [15] Lu X H, Lu Y J, Wang F R, et al. Research on work hardening of micro-milling nickel-based superalloy. Modular Mach Tool Autom Manuf Tech, 2016(7): 4 (卢晓红, 路彦君, 王福瑞, 等. 镍基高温合金Inconel718微铣削 加工硬化研究. 组合机床与自动化加工技术, 2016(7):4) [16] Zhang K L. Analysis and reduction measures on surface roughness of turning parts. Coal Mine Mach, 2013, 34(5): 166 (张坤领. 车削零件表面粗糙度成因分析及降低措施. 煤矿机械, 2013, 34(5):166) [17] Liu  Y  M.  Deformation  dislocation  structure  and  strength  of structural steels. J Iron Steel Res, 2007, 19(4): 1 (刘禹门. 结构钢的形变位错结构和强度. 钢铁研究学报, 2007, 19(4):1) [18] Huang  Y,  Cheng  G  G,  Bao  Dao  H.  Current  status  of  the characteristics and control of primary carbides in H13 steel. Chin J Eng. doi: 10.13374/j.issn2095-9389.2020.05.24.002 (黄宇, 成国光, 鲍道华. H13钢中一次碳化物的特征及控制进展. 工程科学学报. doi: 10.13374/j.issn2095-9389.2020.05.24.002) [19] Sabzi H E, Hanzaki A Z, Abedi H R, et al. The effects of bimodal grain  size  distributions  on  the  work  hardening  behavior  of  a transformation-twinning induced plasticity steel. Mater Sci Eng A, 2016, 678: 23 [20] Abukhshim  N  A,  Mativenga  P  T,  Sheikh  M  A.  Heat  generation and  temperature  prediction  in  metal  cutting:  A  review  and implications  for  high  speed  machining. Int J Mach Tools Manuf, 2006, 46(7-8): 782 [21] Zheng G M, Xu R F, Cheng X, et al. Effect of cutting parameters on  wear  behavior  of  coated  tool  and  surface  roughness  in  high￾speed turning of 300M. Measurement, 2018, 125: 99 [22] Suresh  R,  Basavarajappa  S,  Samuel  G  L.  Some  studies  on  hard turning  of  AISI  4340  steel  using  multilayer  coated  carbide  tool. Measurement, 2012, 45(7): 1872 [23] Zhan  G,  He  L,  Jiang  H  W,  et  al.  Performance  comparison  and prediction  of  cutting  energy  of  new  cemented  carbide  micro-pit turning tool. Chin J Eng, 2017, 39(8): 1207 (占刚, 何林, 蒋宏婉, 等. 新型硬质合金微坑车刀切削能对比研 究与预测. 工程科学学报, 2017, 39(8):1207) [24] Oliaei  S  N  B,  Karpat  Y.  Investigating  the  influence  of  built-up edge  on  forces  and  surface  roughness  in  micro  scale  orthogonal machining  of  titanium  alloy  Ti6Al4V. J Mater Process Technol, 2016, 235: 28 [25] 王宇斌等: 组织形态对 718 塑料模具钢切削性能的影响 · 1351 ·
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