SlideShare a Scribd company logo
1 of 22
ULTRASONIC MACHINING
MS SHIKHA KASHYAP
ASSISTANT PROFESSOR
DEPT OF MECHANICAL ENGINEERING
THE NORTHCAP UNIVERSITY, GURGAON
ULTRASONIC MACHINING
 The term ultrasonic is used to describe vibrational waves having a frequency above
the hearing range of normal human ear i.e. beyond 18kHz.
 Over the years, ultrasonics have found wide applications in industries.
 Predominant areas of its application being three.
 Area of Application:
 Non destructive testing of metals and non metals,
 Measurement and control, and
 Material processessing: metal cutting, ultra-sonic cleaning etc.
 There are two types of waves, namely shear waves and longitudinal waves.
 longitudinal waves are mostly used in ultrasonic applications since they are easily
generated.
 They can be propagated in solids, liquids and gases and can travel at a high
velocity.
 The device for converting any type of energy into ultrasonic waves is called
ultrasonic transducer.
CONTI…..
 Most industrial applications employ transducers energized by electrical power at the
required frequency.
 The electrical energy is converted into mechanical vibrations.
 In addition to machining or cutting, ultra-sonics find many other engineering
applications. Some of these are:
 Measurement of velocity of moving fluids.
 Measurement of hardness and grain size determination of metals.
 Non destructive residual stress determination.
 Flaw detection and leak detection.
 The use of ultrasonics in the medical field for the diagnosis and treatment of
certain diseases has also been reported.
PRINCIPLE OF USM
 In USM (also known as ultra-sonic grinding or impact grinding), material is
removed due to action of abrasive grains which are hammered into the work surface
by a tool, oscillating at high frequency normal to the work surface.
 The tool oscillation frequency for this purpose is in the range of 20kHz.
 Ultra-sonic are generated by feeding high frequency electrical current to a
transducer which converts it to high frequency mechanical vibrations.
 The tool is pressed against the work piece with a load of few kilograms and fed
downwards continuously as the cavity is cut in the work piece.
 The tool is shaped as the approximate mirror image of the configuration of the
cavity desired in the work.
CONTI….
 Ultra sonic are generated by feeding high frequency electrical current to a
transducer which converts it to high frequency mechanical vibrations.
 The vibrations thus, produced are focused to the cutting point by means of horn or a
tuned vibration concentrator.
 Abrasive used in this process is supplied in the form of slurry suspended in the
carrier fluid.
 Ultrasonic machining is a copying operation where the shape of the work produced
is a mirror image of the tool itself.
 Thus, accuracy of the tool itself depends upon the manufacturing accuracy of the
tool itself.
ELEMENTS OF THE PROCESS
 Ultrasonic machine
 Abrasive slurry
 Work material
 Tool cone and tool tip
SCHEMATIC REPRESENTATION OF USM
CONTI….
 The basic mechanical structure of a USM is very similar to drill press.
 The work piece is mounted on a vice, which can be located at the desired position
under the tool using a 2 axis table.
 The table can be further lowered or raised to accommodate work of different
thickness.
The typical elements of an USM are:
 Slurry delivery and return mechanism.
 Feed mechanism to provide a downward feed force on the tool during machining.
 The transducer which generates the ultrasonic vibration.
 The horn concentrator, which mechanically amplifies the vibration to the required
amplitude and accommodates the tool at its tip.
HIGH FREQUENCY OSCILLATING CURRENT GENERATOR
 Its purpose is to produce high frequency oscillation current.
 The generator is when electrically tuned generates high frequency electrical
impulses.
 The high frequency electrical impulses are fed to a transducer which converts them
into mechanical vibrations.
 The frequency of electrical impulses produced is about 22000 Hz, which is in
ultrasonic range.
The transducer
 The transducer converts high frequency electrical impulses fed from the oscillator
into mechanical vibrations.
 Some common types of ultrasonic electro-mechanical transducers are piezoelectric
crystal, piezoelectric ceramic etc.
 All these transducers have the general property of undergoing mechanical vibrations
in desired direction is an alternating high frequency electromotive force is applied in
one particular direction.
WORK MATERIAL
 Earlier , it was assumed that material is removed in this process by brittle failure,
and so only brittle materials were thought to be machinable by this process.
 But, now it has been confirmed that chips can form in this process, that is, ductile
failure can also take place.
 There appears to be no limitation to the range of materials that can be machined,
except that they should not dissolve in the slurry media or react with it.
 Soft and ductile materials , however , are usually cut more economically by other
methods.
Tool Cone and Tool Tip
 The tool cone (also called ‘horn’) amplifies and focuses the mechanical energy
produced by the transducer and imparts this to the work piece in such a way that
energy utilization is optimum.
DIFFERENT TYPES OF HORNS WHICH ARE USED IN USM ARE
GIVEN BELOW
CONTI…..
 The amplitude of the vibratory motion of the transducer is small and is usually
inadequate for material removal purposes.
 The horn/trunk amplifies and focuses the vibrations of the transducer to an intensity
necessary to drive the tool to do its work.
 The increase in amplitude of the vibrations at the tool end is obtained by reducing
the cross section of the horn at the tool end.
 The trunks are specially shaped to provide a reduction in cross section at the tool
end.
 The trunk provides an increased amplitude in the order of 30 to 120 microns at the
tool face.
CONTI….
 Titanium is a good material for tool cone.
 The tool tip is attached to the base of the cone by soft soldering or by means of
screws.
 The area of the tool should not exceed the area of the small section of the cone by
more than 10-15 percent.
 The too geometry governs the shape of the impression or cavity to be produced.
 A 11.98 mm diameter tool tip may produce a 12.00+- 0.005mm hole, when a
600grit (0.01mm particle size) is used.
 The area of the tip influences the rate of penetration. The smaller the contact area
the better the abrasive flow under the tool and the higher penetration rate.
CONTI…
 The choice of material for the tool is very vital because the cost of making the tool
and the time required to change tools are critical factors in the economics of
ultrasonic machining.
 Also, the tool tip has to stand vibrations and it should not fail o wear out quickly.
 Most of the wear occurs at the end; wear at the sides is ten times less.
 The use of tungsten carbide as a tool material presents many problems in shaping
the tool; also the cost of such a tool will be high, though malleable materials, such
as alloy steel and stainless steel prove satisfactory.
ABRASIVE SLURRY
 Some of the main types of abrasives in use are:
Aluminium oxide
Boron carbide
Silicon carbide
Diamond dust
 The size of abrasives varies between 200 and 2000 grit.
 Coarse grades are good for roughing, whereas finer grades (say 1000 grit) are used
for finishing.
 The extremely fine grades of 1200 to 2000 grit are used only for a finishing pass
over jobs of extreme accuracy.
Liquid Media
The abrasive is suspended in liquid. The liquid performs many functions:
 Acts as coolant
CONTI….
 Provides medium to carry the abrasive to the cutting zone.
 Helps efficient en energy transfer between the work piece and the tool.
 Helps to carry away the worn abrasive.
The characteristics of a good suspension media (the liquid) are:
 Good wetting properties to wet the tool, work and abrasive.
 High thermal conductivity for efficient removal of heat from cutting zone.
 Low viscosity to carry the abrasive down the sides of the hole between the tool and
the workpiece.
 Non corrosive properties to avoid corrosion of the workpiece and tool.
Water is frequently used as the liquid carrier since it satisfies most of the requirements.
PROCESS PARAMETERS
Performance of USM process depends on several parameters which are as follows:
Work piece characteristics –
Material type, hardness and impact brittleness of the material.
 Slurry Characteristics –
Abrasive type, grain size, liquid component of slurry, method of feeding the slurry.
 Tool characteristics -
Tool material, size and shape of the tool, hollow tool or solid tool, finish and
accuracy of the tool, the method of mounting the tool to the shank.
 Horn characteristics –
material of horn, profile of the horn used, amplification provided by the horn and
the arrangements provided for cooling the horn.
 Machine settings –
Frequency and amplitude of the vibrations.
ECONOMIC CONSIDERATIONS
 The process has an advantage of machining hard and brittle materials to complex
shapes with good accuracy and reasonable surface finish.
 Considerable economy results from the ultrasonic machining of hard alloy press
tools, dies and wire drawing equipment on account of high wear resistance of tools
made of these alloys.
 The machines have no high speed moving parts. Working on machines is not
hazardous, provided care is to be taken to shield ultrasonic radiations from falling
on the body.
 The cost of manufacture and use of the tools, particularly if they have complicated
contours, is very high.
 Another item adding to cost of ultrasonic machining is abrasive.
CONTI…
 The abrasive slurry has to be periodically replaced because during use the particles
are eventually broken and blunted.
 Ultrasonic machines are not yet completely reliable, it is probable that with more
research in the near future on techniques and machines, the process will have more
economic advantage.
Applications
 This method of machining is not limited by the electrical or chemical
characteristics of work materials, which makes it suitable for both conductive and
non conductive materials.
 Tungsten and other hard carbides and gem stones, such as synthetic ruby are being
successfully machined by this method.
CONTI…..
 The process is particularly suited to make holes with a curved axis of any shape that
can be made on tool.
 The range of shapes can be increased by moving the workpiece during cutting.
 The smallest hole that can currently be cut by the ultrasonic machining method is
0.050 mm in diameter, the hole size being limited by the strength of the tool and the
clearance required for the flow of the abrasive.
 The largest diameter solid tool reported to have been employed in some application
s is 100mm in diameter.
Limitation
 The major limitation of the process is its comparatively low metal cutting rates.
 The depth of the cylindrical holes is presently limited to 2.5 times the diameter of
the tool.
RECENT DEVELOPMENTS
 Mullard Research Laboratories, USA, have developed a process that combines
electrochemical reaction with ultrasonic abrasion.
 Using a 60W ultrasonic drill and abrasive suspended in an alkaline electrolyte,
Mullard researchers have reported that tool steel can be machined nine times facter
than by ultrasonics alone..
THANKS

More Related Content

What's hot

What's hot (20)

Wire cut EDM
Wire cut EDMWire cut EDM
Wire cut EDM
 
Usm g.venkatesh
Usm g.venkateshUsm g.venkatesh
Usm g.venkatesh
 
Unit ii usm
Unit ii usm Unit ii usm
Unit ii usm
 
NON-CONVENTIONAL MACHINING PROCESSES
NON-CONVENTIONAL MACHINING PROCESSESNON-CONVENTIONAL MACHINING PROCESSES
NON-CONVENTIONAL MACHINING PROCESSES
 
Electrical Discharge Machining Process
Electrical Discharge Machining ProcessElectrical Discharge Machining Process
Electrical Discharge Machining Process
 
Abrasive jet machining
Abrasive jet machiningAbrasive jet machining
Abrasive jet machining
 
UNCONVENTIONAL MACHINING PROCESS
UNCONVENTIONAL MACHINING PROCESSUNCONVENTIONAL MACHINING PROCESS
UNCONVENTIONAL MACHINING PROCESS
 
Ultrasonic Machining Process
Ultrasonic Machining ProcessUltrasonic Machining Process
Ultrasonic Machining Process
 
Magnestic abrasive finishing process
Magnestic abrasive finishing processMagnestic abrasive finishing process
Magnestic abrasive finishing process
 
Ultrasonic Machining
Ultrasonic MachiningUltrasonic Machining
Ultrasonic Machining
 
Electrochemical Machining
Electrochemical MachiningElectrochemical Machining
Electrochemical Machining
 
Unit 2 Machinability, Cutting Fluids, Tool Life & Wear, Tool Materials
Unit 2 Machinability, Cutting Fluids, Tool Life & Wear, Tool MaterialsUnit 2 Machinability, Cutting Fluids, Tool Life & Wear, Tool Materials
Unit 2 Machinability, Cutting Fluids, Tool Life & Wear, Tool Materials
 
Ultrasonic machining
Ultrasonic machiningUltrasonic machining
Ultrasonic machining
 
Water jet machining
Water jet machiningWater jet machining
Water jet machining
 
Ultrasonic Machining (USM)
Ultrasonic Machining (USM)Ultrasonic Machining (USM)
Ultrasonic Machining (USM)
 
Ultrasonic machining
Ultrasonic machiningUltrasonic machining
Ultrasonic machining
 
electrochemical grinding
electrochemical grinding electrochemical grinding
electrochemical grinding
 
Electrical discharge machining
Electrical discharge machining Electrical discharge machining
Electrical discharge machining
 
Various Non-conventional machining Process
Various Non-conventional machining ProcessVarious Non-conventional machining Process
Various Non-conventional machining Process
 
Electron beam machining
Electron beam machiningElectron beam machining
Electron beam machining
 

Viewers also liked

Viewers also liked (11)

Water jet machining
Water jet machiningWater jet machining
Water jet machining
 
Water Jet Machining
Water Jet Machining Water Jet Machining
Water Jet Machining
 
Ultrasonic Machining(USM)
Ultrasonic Machining(USM)Ultrasonic Machining(USM)
Ultrasonic Machining(USM)
 
VTU Non traditional machining notes by G.S Shashidhara
VTU Non traditional machining notes by G.S ShashidharaVTU Non traditional machining notes by G.S Shashidhara
VTU Non traditional machining notes by G.S Shashidhara
 
Underwater welding
Underwater weldingUnderwater welding
Underwater welding
 
ultrasonic maching
ultrasonic machingultrasonic maching
ultrasonic maching
 
Ultrasonic Machining (USM)
Ultrasonic Machining (USM)Ultrasonic Machining (USM)
Ultrasonic Machining (USM)
 
Under water weilding
Under water weildingUnder water weilding
Under water weilding
 
Ultrasonic machining
Ultrasonic machiningUltrasonic machining
Ultrasonic machining
 
Abrasive water jet machining
Abrasive water jet machiningAbrasive water jet machining
Abrasive water jet machining
 
A Seminar on Under Water Concreting
A Seminar on Under Water ConcretingA Seminar on Under Water Concreting
A Seminar on Under Water Concreting
 

Similar to Ultrasonic Machining by Ms Shikha Kashyap

Ultra sonic machining
Ultra sonic machiningUltra sonic machining
Ultra sonic machiningAnkit Singla
 
Ultrasonic Machining by Himanshu Vaid
Ultrasonic Machining by Himanshu VaidUltrasonic Machining by Himanshu Vaid
Ultrasonic Machining by Himanshu VaidHimanshu Vaid
 
UCMP PPT updated 30jan20 _1.pdf
UCMP PPT updated 30jan20 _1.pdfUCMP PPT updated 30jan20 _1.pdf
UCMP PPT updated 30jan20 _1.pdfManabendra Saha
 
Ultrasonic macning
Ultrasonic macningUltrasonic macning
Ultrasonic macningNisarg Naik
 
Advantages and disadvantages of Ultrasonic Machining by Himanshu Vaid
Advantages and disadvantages of Ultrasonic Machining by Himanshu VaidAdvantages and disadvantages of Ultrasonic Machining by Himanshu Vaid
Advantages and disadvantages of Ultrasonic Machining by Himanshu VaidHimanshu Vaid
 
USM Ultra Sonic Machinig
USM Ultra Sonic MachinigUSM Ultra Sonic Machinig
USM Ultra Sonic Machinigvaibhav tailor
 
Ultrasonic Machining (USM) - Batch 4
Ultrasonic Machining (USM) - Batch 4Ultrasonic Machining (USM) - Batch 4
Ultrasonic Machining (USM) - Batch 4deepakmenon52
 
Abrasive Jet Machining Process and Water Machining Process
Abrasive Jet Machining Process and Water Machining ProcessAbrasive Jet Machining Process and Water Machining Process
Abrasive Jet Machining Process and Water Machining ProcessPraveenManickam2
 

Similar to Ultrasonic Machining by Ms Shikha Kashyap (20)

Usm
UsmUsm
Usm
 
Chapter 3 usm
Chapter 3 usmChapter 3 usm
Chapter 3 usm
 
Chapter 3 usm
Chapter 3 usmChapter 3 usm
Chapter 3 usm
 
Ultrasonic machining
Ultrasonic machiningUltrasonic machining
Ultrasonic machining
 
UNIT-2-1.pptx
UNIT-2-1.pptxUNIT-2-1.pptx
UNIT-2-1.pptx
 
Ultra sonic machining
Ultra sonic machiningUltra sonic machining
Ultra sonic machining
 
ULTRASONIC DRILLING
ULTRASONIC DRILLINGULTRASONIC DRILLING
ULTRASONIC DRILLING
 
Usm unit 2
Usm unit 2Usm unit 2
Usm unit 2
 
Ultra sonic machining
Ultra sonic machiningUltra sonic machining
Ultra sonic machining
 
Ultrasonic Machining by Himanshu Vaid
Ultrasonic Machining by Himanshu VaidUltrasonic Machining by Himanshu Vaid
Ultrasonic Machining by Himanshu Vaid
 
UCMP PPT updated 30jan20 _1.pdf
UCMP PPT updated 30jan20 _1.pdfUCMP PPT updated 30jan20 _1.pdf
UCMP PPT updated 30jan20 _1.pdf
 
Ultrasonic macning
Ultrasonic macningUltrasonic macning
Ultrasonic macning
 
Ultrasonic machining
Ultrasonic machiningUltrasonic machining
Ultrasonic machining
 
Advantages and disadvantages of Ultrasonic Machining by Himanshu Vaid
Advantages and disadvantages of Ultrasonic Machining by Himanshu VaidAdvantages and disadvantages of Ultrasonic Machining by Himanshu Vaid
Advantages and disadvantages of Ultrasonic Machining by Himanshu Vaid
 
Module 2 usm
Module 2  usmModule 2  usm
Module 2 usm
 
USM Ultra Sonic Machinig
USM Ultra Sonic MachinigUSM Ultra Sonic Machinig
USM Ultra Sonic Machinig
 
Ultrasonic Welding Introduction including research paper
Ultrasonic Welding Introduction including research paperUltrasonic Welding Introduction including research paper
Ultrasonic Welding Introduction including research paper
 
Ultrasonic Machining (USM) - Batch 4
Ultrasonic Machining (USM) - Batch 4Ultrasonic Machining (USM) - Batch 4
Ultrasonic Machining (USM) - Batch 4
 
Unconventional machining processes
Unconventional machining processesUnconventional machining processes
Unconventional machining processes
 
Abrasive Jet Machining Process and Water Machining Process
Abrasive Jet Machining Process and Water Machining ProcessAbrasive Jet Machining Process and Water Machining Process
Abrasive Jet Machining Process and Water Machining Process
 

More from THE NORTHCAP UNIVERSITY

Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. SharmaTHE NORTHCAP UNIVERSITY
 
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. SharmaTHE NORTHCAP UNIVERSITY
 
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. SharmaTHE NORTHCAP UNIVERSITY
 
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. SharmaTHE NORTHCAP UNIVERSITY
 
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. SharmaTHE NORTHCAP UNIVERSITY
 
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma THE NORTHCAP UNIVERSITY
 
ABRASIVE JET MACHINING by Ms Shikha Kashyap
ABRASIVE JET MACHINING by Ms Shikha KashyapABRASIVE JET MACHINING by Ms Shikha Kashyap
ABRASIVE JET MACHINING by Ms Shikha KashyapTHE NORTHCAP UNIVERSITY
 
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...Review of Causes of Foundation Failures and Their Possible Preventive and Rem...
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...THE NORTHCAP UNIVERSITY
 
Fundamentals of computer programming by Dr. A. Charan Kumari
Fundamentals of computer programming by Dr. A. Charan KumariFundamentals of computer programming by Dr. A. Charan Kumari
Fundamentals of computer programming by Dr. A. Charan KumariTHE NORTHCAP UNIVERSITY
 
Modern Manufacturing Technology by Ms. Shikha Kashyap
Modern Manufacturing Technology by Ms. Shikha KashyapModern Manufacturing Technology by Ms. Shikha Kashyap
Modern Manufacturing Technology by Ms. Shikha KashyapTHE NORTHCAP UNIVERSITY
 
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)THE NORTHCAP UNIVERSITY
 
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...Admission open for M.tech 2016 in Civil Engineering - The Northcap University...
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...THE NORTHCAP UNIVERSITY
 
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...THE NORTHCAP UNIVERSITY
 
B tech ECE Admission 2016 - The Northcap University
B tech ECE Admission 2016 - The Northcap UniversityB tech ECE Admission 2016 - The Northcap University
B tech ECE Admission 2016 - The Northcap UniversityTHE NORTHCAP UNIVERSITY
 

More from THE NORTHCAP UNIVERSITY (14)

Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-7- Light Weight Construction Materials by Brig. S.K. Sharma
 
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-6- Light Weight Construction Materials by Brig. S.K. Sharma
 
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-5 - Light Weight Construction Materials by Brig. S.K. Sharma
 
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-4 - Light Weight Construction Materials by Brig. S.K. Sharma
 
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. SharmaUnit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. Sharma
Unit-1 Lecture-2 - Light Weight Construction Materials by Brig. S.K. Sharma
 
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
 
ABRASIVE JET MACHINING by Ms Shikha Kashyap
ABRASIVE JET MACHINING by Ms Shikha KashyapABRASIVE JET MACHINING by Ms Shikha Kashyap
ABRASIVE JET MACHINING by Ms Shikha Kashyap
 
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...Review of Causes of Foundation Failures and Their Possible Preventive and Rem...
Review of Causes of Foundation Failures and Their Possible Preventive and Rem...
 
Fundamentals of computer programming by Dr. A. Charan Kumari
Fundamentals of computer programming by Dr. A. Charan KumariFundamentals of computer programming by Dr. A. Charan Kumari
Fundamentals of computer programming by Dr. A. Charan Kumari
 
Modern Manufacturing Technology by Ms. Shikha Kashyap
Modern Manufacturing Technology by Ms. Shikha KashyapModern Manufacturing Technology by Ms. Shikha Kashyap
Modern Manufacturing Technology by Ms. Shikha Kashyap
 
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)
Admissions Open for BBA-LLB(Honours) - Join NCU Law School, Gurgaon (Delhi-NCR)
 
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...Admission open for M.tech 2016 in Civil Engineering - The Northcap University...
Admission open for M.tech 2016 in Civil Engineering - The Northcap University...
 
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...
M.tech admission 2016 - M tech in Computer Science and Engineering with Speci...
 
B tech ECE Admission 2016 - The Northcap University
B tech ECE Admission 2016 - The Northcap UniversityB tech ECE Admission 2016 - The Northcap University
B tech ECE Admission 2016 - The Northcap University
 

Recently uploaded

BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...
BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...
BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...Sapna Thakur
 
Q4-W6-Restating Informational Text Grade 3
Q4-W6-Restating Informational Text Grade 3Q4-W6-Restating Informational Text Grade 3
Q4-W6-Restating Informational Text Grade 3JemimahLaneBuaron
 
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...EduSkills OECD
 
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...PsychoTech Services
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfAdmir Softic
 
A Critique of the Proposed National Education Policy Reform
A Critique of the Proposed National Education Policy ReformA Critique of the Proposed National Education Policy Reform
A Critique of the Proposed National Education Policy ReformChameera Dedduwage
 
Measures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SDMeasures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SDThiyagu K
 
9548086042 for call girls in Indira Nagar with room service
9548086042  for call girls in Indira Nagar  with room service9548086042  for call girls in Indira Nagar  with room service
9548086042 for call girls in Indira Nagar with room servicediscovermytutordmt
 
Software Engineering Methodologies (overview)
Software Engineering Methodologies (overview)Software Engineering Methodologies (overview)
Software Engineering Methodologies (overview)eniolaolutunde
 
The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13Steve Thomason
 
Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17Celine George
 
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxSOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxiammrhaywood
 
Interactive Powerpoint_How to Master effective communication
Interactive Powerpoint_How to Master effective communicationInteractive Powerpoint_How to Master effective communication
Interactive Powerpoint_How to Master effective communicationnomboosow
 
Grant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingGrant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingTechSoup
 
Unit-IV- Pharma. Marketing Channels.pptx
Unit-IV- Pharma. Marketing Channels.pptxUnit-IV- Pharma. Marketing Channels.pptx
Unit-IV- Pharma. Marketing Channels.pptxVishalSingh1417
 
microwave assisted reaction. General introduction
microwave assisted reaction. General introductionmicrowave assisted reaction. General introduction
microwave assisted reaction. General introductionMaksud Ahmed
 
Class 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdfClass 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdfAyushMahapatra5
 
Arihant handbook biology for class 11 .pdf
Arihant handbook biology for class 11 .pdfArihant handbook biology for class 11 .pdf
Arihant handbook biology for class 11 .pdfchloefrazer622
 

Recently uploaded (20)

BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...
BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...
BAG TECHNIQUE Bag technique-a tool making use of public health bag through wh...
 
Q4-W6-Restating Informational Text Grade 3
Q4-W6-Restating Informational Text Grade 3Q4-W6-Restating Informational Text Grade 3
Q4-W6-Restating Informational Text Grade 3
 
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
 
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...
IGNOU MSCCFT and PGDCFT Exam Question Pattern: MCFT003 Counselling and Family...
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdf
 
A Critique of the Proposed National Education Policy Reform
A Critique of the Proposed National Education Policy ReformA Critique of the Proposed National Education Policy Reform
A Critique of the Proposed National Education Policy Reform
 
Código Creativo y Arte de Software | Unidad 1
Código Creativo y Arte de Software | Unidad 1Código Creativo y Arte de Software | Unidad 1
Código Creativo y Arte de Software | Unidad 1
 
Measures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SDMeasures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SD
 
9548086042 for call girls in Indira Nagar with room service
9548086042  for call girls in Indira Nagar  with room service9548086042  for call girls in Indira Nagar  with room service
9548086042 for call girls in Indira Nagar with room service
 
Software Engineering Methodologies (overview)
Software Engineering Methodologies (overview)Software Engineering Methodologies (overview)
Software Engineering Methodologies (overview)
 
The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13The Most Excellent Way | 1 Corinthians 13
The Most Excellent Way | 1 Corinthians 13
 
Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17
 
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptxSOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
SOCIAL AND HISTORICAL CONTEXT - LFTVD.pptx
 
Interactive Powerpoint_How to Master effective communication
Interactive Powerpoint_How to Master effective communicationInteractive Powerpoint_How to Master effective communication
Interactive Powerpoint_How to Master effective communication
 
Grant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy ConsultingGrant Readiness 101 TechSoup and Remy Consulting
Grant Readiness 101 TechSoup and Remy Consulting
 
Unit-IV- Pharma. Marketing Channels.pptx
Unit-IV- Pharma. Marketing Channels.pptxUnit-IV- Pharma. Marketing Channels.pptx
Unit-IV- Pharma. Marketing Channels.pptx
 
microwave assisted reaction. General introduction
microwave assisted reaction. General introductionmicrowave assisted reaction. General introduction
microwave assisted reaction. General introduction
 
Class 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdfClass 11th Physics NEET formula sheet pdf
Class 11th Physics NEET formula sheet pdf
 
INDIA QUIZ 2024 RLAC DELHI UNIVERSITY.pptx
INDIA QUIZ 2024 RLAC DELHI UNIVERSITY.pptxINDIA QUIZ 2024 RLAC DELHI UNIVERSITY.pptx
INDIA QUIZ 2024 RLAC DELHI UNIVERSITY.pptx
 
Arihant handbook biology for class 11 .pdf
Arihant handbook biology for class 11 .pdfArihant handbook biology for class 11 .pdf
Arihant handbook biology for class 11 .pdf
 

Ultrasonic Machining by Ms Shikha Kashyap

  • 1. ULTRASONIC MACHINING MS SHIKHA KASHYAP ASSISTANT PROFESSOR DEPT OF MECHANICAL ENGINEERING THE NORTHCAP UNIVERSITY, GURGAON
  • 2. ULTRASONIC MACHINING  The term ultrasonic is used to describe vibrational waves having a frequency above the hearing range of normal human ear i.e. beyond 18kHz.  Over the years, ultrasonics have found wide applications in industries.  Predominant areas of its application being three.  Area of Application:  Non destructive testing of metals and non metals,  Measurement and control, and  Material processessing: metal cutting, ultra-sonic cleaning etc.  There are two types of waves, namely shear waves and longitudinal waves.  longitudinal waves are mostly used in ultrasonic applications since they are easily generated.  They can be propagated in solids, liquids and gases and can travel at a high velocity.  The device for converting any type of energy into ultrasonic waves is called ultrasonic transducer.
  • 3. CONTI…..  Most industrial applications employ transducers energized by electrical power at the required frequency.  The electrical energy is converted into mechanical vibrations.  In addition to machining or cutting, ultra-sonics find many other engineering applications. Some of these are:  Measurement of velocity of moving fluids.  Measurement of hardness and grain size determination of metals.  Non destructive residual stress determination.  Flaw detection and leak detection.  The use of ultrasonics in the medical field for the diagnosis and treatment of certain diseases has also been reported.
  • 4. PRINCIPLE OF USM  In USM (also known as ultra-sonic grinding or impact grinding), material is removed due to action of abrasive grains which are hammered into the work surface by a tool, oscillating at high frequency normal to the work surface.  The tool oscillation frequency for this purpose is in the range of 20kHz.  Ultra-sonic are generated by feeding high frequency electrical current to a transducer which converts it to high frequency mechanical vibrations.  The tool is pressed against the work piece with a load of few kilograms and fed downwards continuously as the cavity is cut in the work piece.  The tool is shaped as the approximate mirror image of the configuration of the cavity desired in the work.
  • 5. CONTI….  Ultra sonic are generated by feeding high frequency electrical current to a transducer which converts it to high frequency mechanical vibrations.  The vibrations thus, produced are focused to the cutting point by means of horn or a tuned vibration concentrator.  Abrasive used in this process is supplied in the form of slurry suspended in the carrier fluid.  Ultrasonic machining is a copying operation where the shape of the work produced is a mirror image of the tool itself.  Thus, accuracy of the tool itself depends upon the manufacturing accuracy of the tool itself.
  • 6. ELEMENTS OF THE PROCESS  Ultrasonic machine  Abrasive slurry  Work material  Tool cone and tool tip
  • 8. CONTI….  The basic mechanical structure of a USM is very similar to drill press.  The work piece is mounted on a vice, which can be located at the desired position under the tool using a 2 axis table.  The table can be further lowered or raised to accommodate work of different thickness. The typical elements of an USM are:  Slurry delivery and return mechanism.  Feed mechanism to provide a downward feed force on the tool during machining.  The transducer which generates the ultrasonic vibration.  The horn concentrator, which mechanically amplifies the vibration to the required amplitude and accommodates the tool at its tip.
  • 9. HIGH FREQUENCY OSCILLATING CURRENT GENERATOR  Its purpose is to produce high frequency oscillation current.  The generator is when electrically tuned generates high frequency electrical impulses.  The high frequency electrical impulses are fed to a transducer which converts them into mechanical vibrations.  The frequency of electrical impulses produced is about 22000 Hz, which is in ultrasonic range. The transducer  The transducer converts high frequency electrical impulses fed from the oscillator into mechanical vibrations.  Some common types of ultrasonic electro-mechanical transducers are piezoelectric crystal, piezoelectric ceramic etc.  All these transducers have the general property of undergoing mechanical vibrations in desired direction is an alternating high frequency electromotive force is applied in one particular direction.
  • 10. WORK MATERIAL  Earlier , it was assumed that material is removed in this process by brittle failure, and so only brittle materials were thought to be machinable by this process.  But, now it has been confirmed that chips can form in this process, that is, ductile failure can also take place.  There appears to be no limitation to the range of materials that can be machined, except that they should not dissolve in the slurry media or react with it.  Soft and ductile materials , however , are usually cut more economically by other methods. Tool Cone and Tool Tip  The tool cone (also called ‘horn’) amplifies and focuses the mechanical energy produced by the transducer and imparts this to the work piece in such a way that energy utilization is optimum.
  • 11. DIFFERENT TYPES OF HORNS WHICH ARE USED IN USM ARE GIVEN BELOW
  • 12. CONTI…..  The amplitude of the vibratory motion of the transducer is small and is usually inadequate for material removal purposes.  The horn/trunk amplifies and focuses the vibrations of the transducer to an intensity necessary to drive the tool to do its work.  The increase in amplitude of the vibrations at the tool end is obtained by reducing the cross section of the horn at the tool end.  The trunks are specially shaped to provide a reduction in cross section at the tool end.  The trunk provides an increased amplitude in the order of 30 to 120 microns at the tool face.
  • 13. CONTI….  Titanium is a good material for tool cone.  The tool tip is attached to the base of the cone by soft soldering or by means of screws.  The area of the tool should not exceed the area of the small section of the cone by more than 10-15 percent.  The too geometry governs the shape of the impression or cavity to be produced.  A 11.98 mm diameter tool tip may produce a 12.00+- 0.005mm hole, when a 600grit (0.01mm particle size) is used.  The area of the tip influences the rate of penetration. The smaller the contact area the better the abrasive flow under the tool and the higher penetration rate.
  • 14. CONTI…  The choice of material for the tool is very vital because the cost of making the tool and the time required to change tools are critical factors in the economics of ultrasonic machining.  Also, the tool tip has to stand vibrations and it should not fail o wear out quickly.  Most of the wear occurs at the end; wear at the sides is ten times less.  The use of tungsten carbide as a tool material presents many problems in shaping the tool; also the cost of such a tool will be high, though malleable materials, such as alloy steel and stainless steel prove satisfactory.
  • 15. ABRASIVE SLURRY  Some of the main types of abrasives in use are: Aluminium oxide Boron carbide Silicon carbide Diamond dust  The size of abrasives varies between 200 and 2000 grit.  Coarse grades are good for roughing, whereas finer grades (say 1000 grit) are used for finishing.  The extremely fine grades of 1200 to 2000 grit are used only for a finishing pass over jobs of extreme accuracy. Liquid Media The abrasive is suspended in liquid. The liquid performs many functions:  Acts as coolant
  • 16. CONTI….  Provides medium to carry the abrasive to the cutting zone.  Helps efficient en energy transfer between the work piece and the tool.  Helps to carry away the worn abrasive. The characteristics of a good suspension media (the liquid) are:  Good wetting properties to wet the tool, work and abrasive.  High thermal conductivity for efficient removal of heat from cutting zone.  Low viscosity to carry the abrasive down the sides of the hole between the tool and the workpiece.  Non corrosive properties to avoid corrosion of the workpiece and tool. Water is frequently used as the liquid carrier since it satisfies most of the requirements.
  • 17. PROCESS PARAMETERS Performance of USM process depends on several parameters which are as follows: Work piece characteristics – Material type, hardness and impact brittleness of the material.  Slurry Characteristics – Abrasive type, grain size, liquid component of slurry, method of feeding the slurry.  Tool characteristics - Tool material, size and shape of the tool, hollow tool or solid tool, finish and accuracy of the tool, the method of mounting the tool to the shank.  Horn characteristics – material of horn, profile of the horn used, amplification provided by the horn and the arrangements provided for cooling the horn.  Machine settings – Frequency and amplitude of the vibrations.
  • 18. ECONOMIC CONSIDERATIONS  The process has an advantage of machining hard and brittle materials to complex shapes with good accuracy and reasonable surface finish.  Considerable economy results from the ultrasonic machining of hard alloy press tools, dies and wire drawing equipment on account of high wear resistance of tools made of these alloys.  The machines have no high speed moving parts. Working on machines is not hazardous, provided care is to be taken to shield ultrasonic radiations from falling on the body.  The cost of manufacture and use of the tools, particularly if they have complicated contours, is very high.  Another item adding to cost of ultrasonic machining is abrasive.
  • 19. CONTI…  The abrasive slurry has to be periodically replaced because during use the particles are eventually broken and blunted.  Ultrasonic machines are not yet completely reliable, it is probable that with more research in the near future on techniques and machines, the process will have more economic advantage. Applications  This method of machining is not limited by the electrical or chemical characteristics of work materials, which makes it suitable for both conductive and non conductive materials.  Tungsten and other hard carbides and gem stones, such as synthetic ruby are being successfully machined by this method.
  • 20. CONTI…..  The process is particularly suited to make holes with a curved axis of any shape that can be made on tool.  The range of shapes can be increased by moving the workpiece during cutting.  The smallest hole that can currently be cut by the ultrasonic machining method is 0.050 mm in diameter, the hole size being limited by the strength of the tool and the clearance required for the flow of the abrasive.  The largest diameter solid tool reported to have been employed in some application s is 100mm in diameter. Limitation  The major limitation of the process is its comparatively low metal cutting rates.  The depth of the cylindrical holes is presently limited to 2.5 times the diameter of the tool.
  • 21. RECENT DEVELOPMENTS  Mullard Research Laboratories, USA, have developed a process that combines electrochemical reaction with ultrasonic abrasion.  Using a 60W ultrasonic drill and abrasive suspended in an alkaline electrolyte, Mullard researchers have reported that tool steel can be machined nine times facter than by ultrasonics alone..