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    VibrationAssisted Axial Nozzle Jet Flow Wire Electrochemical Machining for Micromachining

    Source: Journal of Micro and NanoManufacturing:;2022:;volume( 009 ):;issue: 004::page 44501
    Author:
    Besekar, Naresh;Bhattacharyya, B.
    DOI: 10.1115/1.4053747
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Wire electrochemical machining (WECM) has the capability to produce metal microcomponents with high aspect ratios. However, because interelectrode gap mass transportation of electrolyte is not homogeneous due to inappropriate and insufficient flushing, novel vibrationassisted axial nozzle jet flow WECM is introduced, and a unique experimental setup and tool are created. A comparison of the axial flow system, axial flow with PZT vibration with this newly developed flushing strategy was made. The effect of the most influencing parameters, i.e., pulse voltage, wire feed rate, and duty ratio, on the machining results of each flushing strategy being analyzed. The improvement of 36% slit width reduction and 75% increase in machining accuracy compared to axial flow WECM and 23% slit width reduction and 40% increase in machining accuracy compared to axial flow with PZT vibration WECM was observed using this novel technique with microslits machined on 100 μm thick stainless steel SS304. The effect of nozzle diameter and workpiece nozzle standoff distances on slit width machining results has been investigated. The average slit width is 115 μm at 0.4 mm nozzle diameter, and it rises to 143 μm at 1 mm nozzle diameter. The average slit width is 110 μm at a 5 mm workpiece nozzle standoff distance, and it rises to 145 μm at a 20 mm workpiece nozzle standoff distance. This research report also discusses microslit machining of NiTinol shape memory alloy for improving WECM performance.
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      VibrationAssisted Axial Nozzle Jet Flow Wire Electrochemical Machining for Micromachining

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    contributor authorBesekar, Naresh;Bhattacharyya, B.
    date accessioned2023-04-06T12:55:56Z
    date available2023-04-06T12:55:56Z
    date copyright2/28/2022 12:00:00 AM
    date issued2022
    identifier issn21660468
    identifier otherjmnm_009_04_044501.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4288778
    description abstractWire electrochemical machining (WECM) has the capability to produce metal microcomponents with high aspect ratios. However, because interelectrode gap mass transportation of electrolyte is not homogeneous due to inappropriate and insufficient flushing, novel vibrationassisted axial nozzle jet flow WECM is introduced, and a unique experimental setup and tool are created. A comparison of the axial flow system, axial flow with PZT vibration with this newly developed flushing strategy was made. The effect of the most influencing parameters, i.e., pulse voltage, wire feed rate, and duty ratio, on the machining results of each flushing strategy being analyzed. The improvement of 36% slit width reduction and 75% increase in machining accuracy compared to axial flow WECM and 23% slit width reduction and 40% increase in machining accuracy compared to axial flow with PZT vibration WECM was observed using this novel technique with microslits machined on 100 μm thick stainless steel SS304. The effect of nozzle diameter and workpiece nozzle standoff distances on slit width machining results has been investigated. The average slit width is 115 μm at 0.4 mm nozzle diameter, and it rises to 143 μm at 1 mm nozzle diameter. The average slit width is 110 μm at a 5 mm workpiece nozzle standoff distance, and it rises to 145 μm at a 20 mm workpiece nozzle standoff distance. This research report also discusses microslit machining of NiTinol shape memory alloy for improving WECM performance.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleVibrationAssisted Axial Nozzle Jet Flow Wire Electrochemical Machining for Micromachining
    typeJournal Paper
    journal volume9
    journal issue4
    journal titleJournal of Micro and NanoManufacturing
    identifier doi10.1115/1.4053747
    journal fristpage44501
    journal lastpage445017
    page7
    treeJournal of Micro and NanoManufacturing:;2022:;volume( 009 ):;issue: 004
    contenttypeFulltext
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