Microcutting is a precision technology that offers flexible fabrication of microfeatures or complex three-dimensional components with high machining accuracy and superior surface quality.This technology may offer grea...Microcutting is a precision technology that offers flexible fabrication of microfeatures or complex three-dimensional components with high machining accuracy and superior surface quality.This technology may offer great potential as well as advantageous process capabilities for the machining of hard-to-cut materials,such as tungsten carbide.The geometrical design and dimension of the tool cutting edge is a key factor that determines the size and form accuracy possible in the machined workpiece.Currently,the majority of commercial microtools are scaled-down versions of conventional macrotool designs.This approach does not impart optimal performance due to size effects and associated phenomena.Consequently,in-depth analysis and implementation of microcutting mechanics and fundamentals are required to enable successful industrial adaptation in microtool design and fabrication methods.This paper serves as a review of recent microtool designs,materials,and fabrication methods.Analysis of tool performance is discussed,and new approaches and techniques are examined.Of particular focus is tool wear suppression in the machining of hard materials and associated process parameters,including internal cooling and surface patterning techniques.The review concludes with suggestions for an integrated design and fabrication process chain which can aid industrial microtool manufacture.展开更多
为了解决传统切割刀片滑切角变动幅度大、受力不均、波动较大等问题,该文应用对数螺线方程,设计了藤茎类秸秆专用的等滑切角锯齿型刀片。通过对成熟期番茄藤和茄子藤在不同水分下的切割试验,结果表明:在刀轴转速为4 000 r/min、切割速...为了解决传统切割刀片滑切角变动幅度大、受力不均、波动较大等问题,该文应用对数螺线方程,设计了藤茎类秸秆专用的等滑切角锯齿型刀片。通过对成熟期番茄藤和茄子藤在不同水分下的切割试验,结果表明:在刀轴转速为4 000 r/min、切割速度约为85 m/s的条件下,与普通刀片和等滑切角平型刀片相比,等滑切角锯齿型刀片切割番茄藤和茄子藤的电能分别为0.18和0.25 k W·h,消耗的切割电能少、切割效率高、切割效果好;40°等滑切角锯齿型刀片与45°的相比,40°等滑切角锯齿型刀片切割番茄藤和茄子藤的电能分别为0.38和0.49 k W·h,消耗的切割电能少、切割效率高、切割效果好;材料为Cr12Mo V的等滑切角锯齿型刀片与65Mn的相比,Cr12Mo V的刀片切割番茄藤和茄子藤的电能分别为0.17和0.24 k W·h,切割效果较好。该文设计的刀片在切割过程中受力较均匀,具有降低切割功耗、提高切割效率的作用,对于改进秸秆切割机械的工作性能和减小切割过程的能量消耗具有重要意义。展开更多
基金supported by Science Foundation Ireland(No.15/RP/B3208)the National Natural Science Foundation of China(Nos.51320105009&61635008)the‘111’Project by the State Administration of Foreign Experts Affairs and the Ministry of Education of China(Grant No.B07014).
文摘Microcutting is a precision technology that offers flexible fabrication of microfeatures or complex three-dimensional components with high machining accuracy and superior surface quality.This technology may offer great potential as well as advantageous process capabilities for the machining of hard-to-cut materials,such as tungsten carbide.The geometrical design and dimension of the tool cutting edge is a key factor that determines the size and form accuracy possible in the machined workpiece.Currently,the majority of commercial microtools are scaled-down versions of conventional macrotool designs.This approach does not impart optimal performance due to size effects and associated phenomena.Consequently,in-depth analysis and implementation of microcutting mechanics and fundamentals are required to enable successful industrial adaptation in microtool design and fabrication methods.This paper serves as a review of recent microtool designs,materials,and fabrication methods.Analysis of tool performance is discussed,and new approaches and techniques are examined.Of particular focus is tool wear suppression in the machining of hard materials and associated process parameters,including internal cooling and surface patterning techniques.The review concludes with suggestions for an integrated design and fabrication process chain which can aid industrial microtool manufacture.
文摘为了解决传统切割刀片滑切角变动幅度大、受力不均、波动较大等问题,该文应用对数螺线方程,设计了藤茎类秸秆专用的等滑切角锯齿型刀片。通过对成熟期番茄藤和茄子藤在不同水分下的切割试验,结果表明:在刀轴转速为4 000 r/min、切割速度约为85 m/s的条件下,与普通刀片和等滑切角平型刀片相比,等滑切角锯齿型刀片切割番茄藤和茄子藤的电能分别为0.18和0.25 k W·h,消耗的切割电能少、切割效率高、切割效果好;40°等滑切角锯齿型刀片与45°的相比,40°等滑切角锯齿型刀片切割番茄藤和茄子藤的电能分别为0.38和0.49 k W·h,消耗的切割电能少、切割效率高、切割效果好;材料为Cr12Mo V的等滑切角锯齿型刀片与65Mn的相比,Cr12Mo V的刀片切割番茄藤和茄子藤的电能分别为0.17和0.24 k W·h,切割效果较好。该文设计的刀片在切割过程中受力较均匀,具有降低切割功耗、提高切割效率的作用,对于改进秸秆切割机械的工作性能和减小切割过程的能量消耗具有重要意义。