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TOPIC
ELECTRIC DISCHARGE
MACHINING
Electrical Discharge Machining- EDM
 In die-sinking EDM systems, the electrode (cutting tool) and work-piece are held
by the machine tool. A power supply controls the electrical discharges and
movement of the electrode in relation to the work-piece.
 During operation the work-piece is submerged in a bath of dielectric fluid (non-
conducting). (Die-Sinking EDM is also called Sinker, Conventional, Plunge or
Vertical EDM
Electrical Discharge Machining-
EDM
Schematic illustration of the electrical-discharge-machining process.
Based on erosion of metals by spark discharge. The cavity is is by the shape of the electrode.
Electrical Discharge Machining- EDM
 During normal operation the electrode never touches the work-piece,
but is separated by a small spark gap.
 The spark discharges are pulsed on and off at a high frequency cycle
and can repeat 250,000 times per second. Each discharge melts or
vaporizes a small area of the work piece surface.
 The amount of material removed from the work piece with each pulse
is directly proportional to the energy it contains.
07/13/17
Electrical Discharge Machining- EDM
 The dielectric fluid in EDM performs the following
functions:
 It acts as an insulator until sufficiently high potential is
reached .
 Acts as a coolant medium and reduces the extremely high
temp. in the arc gap.
 More importantly, the dielectric fluid is pumped through the
arc gap to flush away the eroded particles between the work-
piece and the electrode which is critical to high metal removal
rates and good machining conditions.
 A relatively soft graphite or metallic electrode can easily
machine hardened tool steels or tungsten carbide. One of the
many attractive benefits of using the EDM process.
Electrical Discharge Machining-
EDM
 Stepped cavities produced with a
square electrode by EDM. The
workpiece moves in the two
principal horizontal directions, and
its motion is synchronized with the
downward movement of the
electrode to produce various
cavities
 Also shown is a round electrode
capable of producing round or
eliptical cavities. Obviously, this is
done under computer control.
Electrical Discharge Machining
 Surface finish is affected by gap voltage, discharge current, and
frequency
 The EDM process can be used on any material that is an electrical
conductor
 The EDM process does not involve mechanical energy, therefore,
materials with high hardness and strength can easily be machined.
 Applications include producing die cavity for large components, deep
small holes, complicated internal cavities
 EDM is not a fast method; some jobs can take days to produce holes, so
its use is limited to jobs that cannot easily be done in other ways (e.g.
oblong slots or complex shapes, sometimes in very hard material).
 Note too the work must be conductive so it does not work on materials
such as glass or ceramic, or most plastics.
THANK YOU
MADE BY :
SHUBHAM AGARWAL
B.TECH (M.E)
SEC : D
ROLL NO. : 58
SUBMITED TO:
PANKAJ SONIA SIR
ASST PROFESSOR
MECHANICAL DEPARTMENT

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Presentation on Electric Discharge Machining.

  • 2. Electrical Discharge Machining- EDM  In die-sinking EDM systems, the electrode (cutting tool) and work-piece are held by the machine tool. A power supply controls the electrical discharges and movement of the electrode in relation to the work-piece.  During operation the work-piece is submerged in a bath of dielectric fluid (non- conducting). (Die-Sinking EDM is also called Sinker, Conventional, Plunge or Vertical EDM
  • 3. Electrical Discharge Machining- EDM Schematic illustration of the electrical-discharge-machining process. Based on erosion of metals by spark discharge. The cavity is is by the shape of the electrode.
  • 4. Electrical Discharge Machining- EDM  During normal operation the electrode never touches the work-piece, but is separated by a small spark gap.  The spark discharges are pulsed on and off at a high frequency cycle and can repeat 250,000 times per second. Each discharge melts or vaporizes a small area of the work piece surface.  The amount of material removed from the work piece with each pulse is directly proportional to the energy it contains. 07/13/17
  • 5. Electrical Discharge Machining- EDM  The dielectric fluid in EDM performs the following functions:  It acts as an insulator until sufficiently high potential is reached .  Acts as a coolant medium and reduces the extremely high temp. in the arc gap.  More importantly, the dielectric fluid is pumped through the arc gap to flush away the eroded particles between the work- piece and the electrode which is critical to high metal removal rates and good machining conditions.  A relatively soft graphite or metallic electrode can easily machine hardened tool steels or tungsten carbide. One of the many attractive benefits of using the EDM process.
  • 6. Electrical Discharge Machining- EDM  Stepped cavities produced with a square electrode by EDM. The workpiece moves in the two principal horizontal directions, and its motion is synchronized with the downward movement of the electrode to produce various cavities  Also shown is a round electrode capable of producing round or eliptical cavities. Obviously, this is done under computer control.
  • 7. Electrical Discharge Machining  Surface finish is affected by gap voltage, discharge current, and frequency  The EDM process can be used on any material that is an electrical conductor  The EDM process does not involve mechanical energy, therefore, materials with high hardness and strength can easily be machined.  Applications include producing die cavity for large components, deep small holes, complicated internal cavities  EDM is not a fast method; some jobs can take days to produce holes, so its use is limited to jobs that cannot easily be done in other ways (e.g. oblong slots or complex shapes, sometimes in very hard material).  Note too the work must be conductive so it does not work on materials such as glass or ceramic, or most plastics.
  • 8. THANK YOU MADE BY : SHUBHAM AGARWAL B.TECH (M.E) SEC : D ROLL NO. : 58 SUBMITED TO: PANKAJ SONIA SIR ASST PROFESSOR MECHANICAL DEPARTMENT