SlideShare une entreprise Scribd logo
1  sur  57
Composite
Materials
Name : G KRISHNA CHAITANYA
Subject : DME-II
OUTLINES
† COMPOSITE MATERIALS
† IT’S APPLICATIONS
† HISTORY
† MATERIALS MOSTLY USED
† DIFFERENT TYPES OF MATRICES
† DIFFERENT FIBERS
† IT’S USES
† TECHNIQUES FOR PREPARING
COMPOSITE MATERIALS
Composite Material Diagnosed
• A composite material is made by combining two or more materials – often ones
that have very different properties.
• The two materials work together to give the composite unique properties.
• However, within the composite you can easily tell the different materials apart
as they do not dissolve or blend into each other.
Simply
ADVANTAGES OF COMPOSITE.
• Reason to use composite material:-
I. Higher specific strength than metals, non-metals and even alloys.
II. Lower specific gravity in general.
III. Improved stiffness of material.
IV. Composite maintain their weight even at high temperatures.
V. Toughness is improved.
VI. Fabrication or production is cheaper.
VII. Creep and fatigue strength is better.
VIII. Controlled Electrical conductivity is possible.
IX. Corrosion and oxidation resistance.
HISTORY OF COMPOSITES
◊ Straw reinforcement mud cited in old testament _organic fiber –
reinforced CMC
◊ GFRP well established by 1950s
◊ R&D on advanced composites:CCCs,PMCs,MMCs AND CMCs started
1960s-1970s
◊ Carbon fiber-reinforced polymers(CFRPs) became dominant
advanced composites in 1970s
◊ CCCs established for thermal protection around 1970s
• MMCs used in specialty applications
- Automobile engines
- Electronics thermal management
Definition:
They generally have two phases:-
1. Matrix Phase.
2. Dispersion Phase.
 Matrix Phase :-
It is the continuous material constituent which encloses the composite and
give it its bulk form.
Matrix phase may be metal , ceramic or polymer.
 Dispersion Phase:-
It is the structure constituent , which determines the internal structure of
composite.
Dispersion Phase is connected to matrix phase by bonding
TWO PHASE COMPOSITE:
Types of composites.
Composite.
Particle-reinforced Fibre-reinforced Structural
Large particle Dispersion-
strengthened
Continuous
(Alignment)
Discontinuous
(Short)
Laminates Sandwich
panels
Aligned Randomly
oriented
REINFORCEMENTS
Particle Reinforced Composites
 One form of composites is particulate reinforced composites with concrete
being a good example. The aggregate of coarse rock or gravel is embedded in
a matrix of cement. The aggregate provides stiffness and strength while the
cement acts as the binder to hold the structure together.
 There are many different forms of particulate composites. The particulates can
be very small particles (< 0.25 microns), chopped fibres (such as glass), platelets,
hollow spheres, or new materials such as Bucky balls or carbon nano-tubes. In
each case, the particulates provide desirable material properties and the matrix
acts as binding medium necessary for structural applications.
Large-particle composite
 Some polymeric materials to which fillers have been added are really large- particle
composites. The fillers modify or improve the properties of the material. Example of large-
particle composite is concrete, which is composed of cement (the matrix), and sand and
gravel (the particulates).Particles can have quite a variety of geometries, but they should
be of approximately the same dimension in all direction (equated).
 For effective reinforcement, the particles should be small and evenly distributed throughout
the matrix. The volume fraction of the two phases influences the behavior; mechanical
properties are enhanced with increasing particulate content.
 Rule of mixture: equation predict that the elastic modulus should fall between an upper
and lower bound as shown:
 Example: Fig. 1.1 plots upper and lower bound Ec – versus Vp curves for a copper –
tungsten composite; in which tungsten is the particulate phase.
 Where:-
Ec: elastic modulus of composite
Ep: elastic modulus of particle
Em: elastic modulus of matrix
Vm: volume fraction of matrix
Vp: volume fraction of particle
Dispersion strengthened composite
 Dispersion-strengthened means of strengthening materials where in very small
particles (usually less than 0.1 µm) of a hard yet inert phase are uniformly dispersed
within a load – bearing matrix phase.
 The dispersed phase may be metallic or nonmetallic, oxide materials are often used.
 Figure 1.2 Comparison of the yield strength of dispersion-strengthened sintered
aluminum powder (SAP) composite with that of two conventional two-phase high-
strength aluminum alloys. The composite has benefits above about 300°C. A fiber-
reinforced aluminum composite is shown for comparison.
Fiber-Reinforced Composites
 The Rule of Mixtures in Fiber-Reinforced Composites
 Strength of Composites - The tensile strength of a fiber-reinforced composite
(TSc) depends on the bonding between the fibers and the matrix.
 Figure 1.3 The stress-strain curve for a fiber-reinforced composite. At low stresses
(region l), the modulus of elasticity is given by the rule of mixtures. At higher stresses
(region ll), the matrix deforms and the rule of mixtures is no longer obeyed.
Types of fibre reinforced composite:-
 Continuous & Aligned
The fibres are longer than a critical length which is the minimum length necessary
such that the entire load is transmitted from the matrix to the fibres. If they are shorter
than this critical length, only some of the load is transmitted. Fibre lengths greater that
15 times the critical length are considered optimal. Aligned and continuous
fibres give the most effective strengthening for fibre composites.
 Discontinuous & Aligned
The fibres are shorter than the critical length. Hence discontinuous fibres are less
effective in strengthening the material, however, their composite modulus and tensile
strengths can approach 50-90% of their continuous and aligned counterparts.
And they are cheaper, faster and easier to fabricate into complicated shapes.
 Random
This is also called discrete, (or chopped) fibres. The strength will not be as high as with
aligned fibres, however, the advantage is that the material will be isotropic and
cheaper.
Structural Composites
 A structural composite consists of both homogeneous and composite material.
There properties depend on, the characteristic properties of the constituent materials
as well as the geometric design.
 Structural composite are of two types:-
1.Laminar compost 2.Sandwich panel
Laminar Composite
 It consists of panels or sheets which
are two dimensional. These panels
possess preferred directions to
achieve high strength.
 Such successively oriented layers are stacked one above
with preferred directions and then are cemented. Such
an arrangement or orientation ensures varying highest
strength with each successive layer involved in material.
Sandwich Panel
 Sandwich panel is also a kind of
layered composite. It consists of ‘faces’
and ‘core’
 With increase in thickness of core, its
stiffness increases as seen in the most
common sandwich panel
‘honeycomb’.
 Faces:-They are formed by two strong
outer sheets.
 Core:-Core is layer of less dense
material.
 Honeycomb:-Structure which contain
thin foils forming interlocked
hexagonal cells with their axes oriented
at right angles in the direction of face
sheet.
Applications Of Composite Material
1. In automobile industries (e.g. Steel
&Aluminium body)
2. Marine applications like shafts, hulls,
spars (for racing boats)
3. Aeronautical application like
components of rockets, aircrafts
(business and military), missiles etc.
4. Communication antennae, electronic
circuit boards (e.g. PCB, breadboard)
5. Safety equipment like ballistic
protection and Air bags of cars.
Putting it together – the science and technology of
composite materials
•Australia, like all advanced countries, is taking a big interest in
composite materials, which many people see as 'the materials of the
future'. The main concern is to get the costs down, so that composites
can be used in products and applications which at present don’t
justify the cost. At the same time researchers want to improve the
performance of the composites, such as making them more resistant
to impact.
•One new technique involves 'textile composites'. Instead of the
reinforcing fibres being put in place individually, which is slow and
costly, they can be knitted or woven together to make a sort of cloth.
This can even be three-dimensional rather than flat. The spaces
between and around the textile fibres are then filled with the matrix
material (such as a resin) to make the product.
 This process can quite easily be done by machines rather than by
hand, making it faster and cheaper. Connecting all the fibres together
also means that the composite is less likely to be damaged when
struck.
 With the costs coming down, other uses for composites are beginning
to look attractive. Making the hulls and superstructures of boats from
composites takes advantage of their resistance to corrosion. The
Australian Navy’s new minehunters have composite hulls, since the
magnetic effect of a steel hull would interfere with mine detection.
 Also in the pipeline are carriages for trains, trams and other 'people
movers', made from composites rather than steel or aluminium. Here
the appeal is the lightness of the composites, as the vehicles then use
less energy. And we are going to see more and more composites in
cars for the same reason.
Manufacturing Processes
† Hand lay –up
† Vaccum bagging/autoclave
† Compression moulding
† Liquid resin moulding
† Pultrusion
† Filament winding
† Injection moulding
† Themoplastics processing
† Automated tape laying
Vacuum Bag Molding
 Two sided mold set
 Shapes both surfaces of the panel
 Lower side is a rigid mold
 Upper side is a flexiable membrane or vacuum bag
 Bag made of silicone material or an extruded polymer film
 Performed at either ambient or elevated temperature
 Ambient atmospheric pressure acts upon the vacuum bag
 Most economical way uses venturi vacuum and air compressor or a
vacuum pump
Fibre-reinforced composite processing:-
Pultrusion
• Technique allowing industrial automated
continuous production of profiles from composite
materials of synthetic resins. Pultrusion allows the
development of various profiles, section and
variable thickness. The length of the pultruded
profiles is not limited.
Prepreg
 It is the term for continuous fibre-
reinforcement preimpregnated with a polymer
resin that is only particularly cured. The final
Prepreg product (the thin tape consisting of
continuous an aligned fibbers embedded in
partially cured resin) is prepared for packing by
winding onto a cardboard core.
Fabrication From Prepreg
 Actual fabrication begins with the lay up(i.e. laying of the Prepreg tape onto a tooled
surface).Usually a number of piles are lined up to provide the desired thickness. The lay up
arrangement may be unidirectional, but more often the fibre orientation is alternated to reduce
either a cross-ply laminated. Final curing is accomplished by simultaneous application of heat and
pressure. Some of its methods are:-
1.Helical winding 2.circumferential winding
3.Polar winding
Failure Of Composite Material
 Composite can fail due to breaking of the fibre, micro cracking of
the matrix, de-bonding (i.e. separation of fibres from matrix),
delamination of laminated composite (i.e. separation of lamina
from each other).Some of the most common are:-
1) Failure under longitudinal compressive loading.
2) Failure under longitudinal tensile loading.
3) Failure under transverse compressive loading.
4) Failure under transverse tensile loading.
YOUR IDEAS ON THE COMPOSITES OF THE
FUTURE?
 Can we innovate more towards the expanding sector of composite material, if
yes how?
 How to introduce more life applications of composite material in daily
scenario?
 Making the idea spread to the consumer.
 Potential stock market enhancement of composite industries.
Composite materials

Contenu connexe

Tendances

Composite materials
Composite materialsComposite materials
Composite materialsJokiYagit
 
Metal matrix composites (mmc)
Metal matrix composites (mmc)Metal matrix composites (mmc)
Metal matrix composites (mmc)Nikhil Dixit
 
Composite materials
Composite materialsComposite materials
Composite materialsBESSY JOHNY
 
Polymer matrix composites
Polymer matrix compositesPolymer matrix composites
Polymer matrix compositesDr. Ramesh B
 
Fiber Reinforced Composites - An Overview.ppt
Fiber Reinforced Composites - An Overview.pptFiber Reinforced Composites - An Overview.ppt
Fiber Reinforced Composites - An Overview.pptSANTHOSH M.S
 
Presentation of composite
Presentation of compositePresentation of composite
Presentation of compositesafras93
 
Polymer Matrix Composites (PMC) Manufacturing and application
Polymer Matrix Composites (PMC) Manufacturing and applicationPolymer Matrix Composites (PMC) Manufacturing and application
Polymer Matrix Composites (PMC) Manufacturing and applicationSazzad Hossain
 
29835305 particle-reinforce-composite
29835305 particle-reinforce-composite29835305 particle-reinforce-composite
29835305 particle-reinforce-compositeAjay Sharma
 
Fibre reinforced composites 3
Fibre reinforced composites 3Fibre reinforced composites 3
Fibre reinforced composites 3Naga Muruga
 
Metal matrix composites
Metal matrix compositesMetal matrix composites
Metal matrix compositesHiep Tran
 
Classification of-composites
Classification of-compositesClassification of-composites
Classification of-compositesRajaram Ganesan
 

Tendances (20)

Composites
CompositesComposites
Composites
 
Composites
CompositesComposites
Composites
 
Metal matrix composites and Metal matrix Ceramics
 Metal matrix composites and Metal matrix Ceramics Metal matrix composites and Metal matrix Ceramics
Metal matrix composites and Metal matrix Ceramics
 
Composite materials
Composite materialsComposite materials
Composite materials
 
Composites
CompositesComposites
Composites
 
Composite material
Composite materialComposite material
Composite material
 
Metal matrix composites (mmc)
Metal matrix composites (mmc)Metal matrix composites (mmc)
Metal matrix composites (mmc)
 
Composites
CompositesComposites
Composites
 
Composite materials
Composite materialsComposite materials
Composite materials
 
Polymer matrix composites
Polymer matrix compositesPolymer matrix composites
Polymer matrix composites
 
Polymer matrix composite
Polymer matrix compositePolymer matrix composite
Polymer matrix composite
 
Fiber Reinforced Composites - An Overview.ppt
Fiber Reinforced Composites - An Overview.pptFiber Reinforced Composites - An Overview.ppt
Fiber Reinforced Composites - An Overview.ppt
 
Presentation of composite
Presentation of compositePresentation of composite
Presentation of composite
 
Polymer Matrix Composites (PMC) Manufacturing and application
Polymer Matrix Composites (PMC) Manufacturing and applicationPolymer Matrix Composites (PMC) Manufacturing and application
Polymer Matrix Composites (PMC) Manufacturing and application
 
29835305 particle-reinforce-composite
29835305 particle-reinforce-composite29835305 particle-reinforce-composite
29835305 particle-reinforce-composite
 
Fibre reinforced composites 3
Fibre reinforced composites 3Fibre reinforced composites 3
Fibre reinforced composites 3
 
Metal matrix composites
Metal matrix compositesMetal matrix composites
Metal matrix composites
 
Presentation1
Presentation1Presentation1
Presentation1
 
Classification of-composites
Classification of-compositesClassification of-composites
Classification of-composites
 
Composites
CompositesComposites
Composites
 

En vedette

En vedette (20)

composite matrials report file
composite matrials report filecomposite matrials report file
composite matrials report file
 
Composite material
Composite materialComposite material
Composite material
 
Report index part1
Report index part1Report index part1
Report index part1
 
Material science 1
Material science 1 Material science 1
Material science 1
 
Material science 4
Material science 4Material science 4
Material science 4
 
Composite materials 1
Composite materials 1Composite materials 1
Composite materials 1
 
Composite materials lecture
Composite materials lectureComposite materials lecture
Composite materials lecture
 
Material science 3
Material  science 3 Material  science 3
Material science 3
 
Composites lecture notes
Composites lecture notesComposites lecture notes
Composites lecture notes
 
Optimization of Heavy Vehicle Suspension System Using Composites
Optimization of Heavy Vehicle Suspension System Using CompositesOptimization of Heavy Vehicle Suspension System Using Composites
Optimization of Heavy Vehicle Suspension System Using Composites
 
Composite material
Composite materialComposite material
Composite material
 
Material engineering and its applications.
Material engineering and its applications.Material engineering and its applications.
Material engineering and its applications.
 
Composite restoration
Composite restorationComposite restoration
Composite restoration
 
Composites
CompositesComposites
Composites
 
Composite Materials
Composite MaterialsComposite Materials
Composite Materials
 
Introduction to material science
Introduction to material scienceIntroduction to material science
Introduction to material science
 
Material science 5
Material science 5Material science 5
Material science 5
 
Material science 2
Material science 2Material science 2
Material science 2
 
METAL MATRIX COMPOSITE
METAL MATRIX COMPOSITEMETAL MATRIX COMPOSITE
METAL MATRIX COMPOSITE
 
Composite resin
Composite resinComposite resin
Composite resin
 

Similaire à Composite materials

COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptx
COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptxCOMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptx
COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptxmrmech02
 
Review on Hybrid Composite Materials and its Applications
Review on Hybrid Composite Materials and its ApplicationsReview on Hybrid Composite Materials and its Applications
Review on Hybrid Composite Materials and its ApplicationsIRJET Journal
 
presentation_composite_material_ppt_(f)_1516081069_20707.pptx
presentation_composite_material_ppt_(f)_1516081069_20707.pptxpresentation_composite_material_ppt_(f)_1516081069_20707.pptx
presentation_composite_material_ppt_(f)_1516081069_20707.pptxBharath199390
 
Composite materials
Composite materialsComposite materials
Composite materialsmkpq pasha
 
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...IRJET Journal
 
SENG 213 ..Composites ppt notes.pptx
SENG 213 ..Composites ppt notes.pptxSENG 213 ..Composites ppt notes.pptx
SENG 213 ..Composites ppt notes.pptxShashiShash2
 
Composite materials
Composite materialsComposite materials
Composite materialsStudent
 
compositematerials-140309122625-phpapp02.pdf
compositematerials-140309122625-phpapp02.pdfcompositematerials-140309122625-phpapp02.pdf
compositematerials-140309122625-phpapp02.pdfwhmonkey
 
COMPOSITES ( as per MGU syllabus)
COMPOSITES ( as per MGU syllabus)COMPOSITES ( as per MGU syllabus)
COMPOSITES ( as per MGU syllabus)Denny John
 
Introduction to composite_materials in aerospace_applications
Introduction to composite_materials in aerospace_applicationsIntroduction to composite_materials in aerospace_applications
Introduction to composite_materials in aerospace_applicationsR.K. JAIN
 
Lecture 3.pptx
Lecture 3.pptxLecture 3.pptx
Lecture 3.pptxkasi54
 
Composits material. Engineering material and scinece.pptx
Composits material. Engineering material and scinece.pptxComposits material. Engineering material and scinece.pptx
Composits material. Engineering material and scinece.pptxhamzakhan396556
 
Ramkaran ppt
Ramkaran pptRamkaran ppt
Ramkaran pptyramkaran
 
Composites PRR .pptx
Composites PRR .pptxComposites PRR .pptx
Composites PRR .pptxTheZaivish
 
MODULE 1 of MET416 Composite Materials Syllabus
MODULE 1 of MET416 Composite Materials SyllabusMODULE 1 of MET416 Composite Materials Syllabus
MODULE 1 of MET416 Composite Materials Syllabusdheerajpclt1
 

Similaire à Composite materials (20)

COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptx
COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptxCOMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptx
COMPOSITE Materials KTU 2019 Scheme-MODULE 1.pptx
 
Review on Hybrid Composite Materials and its Applications
Review on Hybrid Composite Materials and its ApplicationsReview on Hybrid Composite Materials and its Applications
Review on Hybrid Composite Materials and its Applications
 
Composite material
Composite materialComposite material
Composite material
 
presentation_composite_material_ppt_(f)_1516081069_20707.pptx
presentation_composite_material_ppt_(f)_1516081069_20707.pptxpresentation_composite_material_ppt_(f)_1516081069_20707.pptx
presentation_composite_material_ppt_(f)_1516081069_20707.pptx
 
Composite materials
Composite materialsComposite materials
Composite materials
 
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...
IRJET- Experimental Evaluation of Glass Fiber Reinforced Composites Subjected...
 
SENG 213 ..Composites ppt notes.pptx
SENG 213 ..Composites ppt notes.pptxSENG 213 ..Composites ppt notes.pptx
SENG 213 ..Composites ppt notes.pptx
 
Composite materials
Composite materialsComposite materials
Composite materials
 
compositematerials-140309122625-phpapp02.pdf
compositematerials-140309122625-phpapp02.pdfcompositematerials-140309122625-phpapp02.pdf
compositematerials-140309122625-phpapp02.pdf
 
COMPOSITES ( as per MGU syllabus)
COMPOSITES ( as per MGU syllabus)COMPOSITES ( as per MGU syllabus)
COMPOSITES ( as per MGU syllabus)
 
Introduction to composite_materials in aerospace_applications
Introduction to composite_materials in aerospace_applicationsIntroduction to composite_materials in aerospace_applications
Introduction to composite_materials in aerospace_applications
 
Lecture 11
Lecture 11Lecture 11
Lecture 11
 
Composites
CompositesComposites
Composites
 
Lecture 3.pptx
Lecture 3.pptxLecture 3.pptx
Lecture 3.pptx
 
Composits material. Engineering material and scinece.pptx
Composits material. Engineering material and scinece.pptxComposits material. Engineering material and scinece.pptx
Composits material. Engineering material and scinece.pptx
 
Chp 17
Chp 17Chp 17
Chp 17
 
Ramkaran ppt
Ramkaran pptRamkaran ppt
Ramkaran ppt
 
Composites PRR .pptx
Composites PRR .pptxComposites PRR .pptx
Composites PRR .pptx
 
1338301613.ppt
1338301613.ppt1338301613.ppt
1338301613.ppt
 
MODULE 1 of MET416 Composite Materials Syllabus
MODULE 1 of MET416 Composite Materials SyllabusMODULE 1 of MET416 Composite Materials Syllabus
MODULE 1 of MET416 Composite Materials Syllabus
 

Plus de Krishna Gali

Chemistry polycet study material
Chemistry polycet study materialChemistry polycet study material
Chemistry polycet study materialKrishna Gali
 
12.applications of trigonometry
12.applications of trigonometry12.applications of trigonometry
12.applications of trigonometryKrishna Gali
 
9.tangents and secants to a circle
9.tangents and secants to a circle9.tangents and secants to a circle
9.tangents and secants to a circleKrishna Gali
 
8.similar triangles
8.similar triangles8.similar triangles
8.similar trianglesKrishna Gali
 
7.co ordinate geometry
7.co ordinate geometry7.co ordinate geometry
7.co ordinate geometryKrishna Gali
 
5.quadratic equations
5.quadratic equations5.quadratic equations
5.quadratic equationsKrishna Gali
 
4.pair of linear equations in two variables
4.pair of linear equations in two variables4.pair of linear equations in two variables
4.pair of linear equations in two variablesKrishna Gali
 
Chapter 12 physics
Chapter 12 physicsChapter 12 physics
Chapter 12 physicsKrishna Gali
 
Chapter 11 physics
Chapter 11 physicsChapter 11 physics
Chapter 11 physicsKrishna Gali
 
refraction of light at curved surfaces
refraction of light at curved surfacesrefraction of light at curved surfaces
refraction of light at curved surfacesKrishna Gali
 

Plus de Krishna Gali (20)

Chemistry polycet study material
Chemistry polycet study materialChemistry polycet study material
Chemistry polycet study material
 
14. Statistics
14. Statistics14. Statistics
14. Statistics
 
13. Probability
13. Probability13. Probability
13. Probability
 
12.applications of trigonometry
12.applications of trigonometry12.applications of trigonometry
12.applications of trigonometry
 
11.trigonometry
11.trigonometry11.trigonometry
11.trigonometry
 
10.mensuration
10.mensuration10.mensuration
10.mensuration
 
9.tangents and secants to a circle
9.tangents and secants to a circle9.tangents and secants to a circle
9.tangents and secants to a circle
 
8.similar triangles
8.similar triangles8.similar triangles
8.similar triangles
 
7.co ordinate geometry
7.co ordinate geometry7.co ordinate geometry
7.co ordinate geometry
 
6.progressions
6.progressions6.progressions
6.progressions
 
5.quadratic equations
5.quadratic equations5.quadratic equations
5.quadratic equations
 
4.pair of linear equations in two variables
4.pair of linear equations in two variables4.pair of linear equations in two variables
4.pair of linear equations in two variables
 
3.polynomials
3.polynomials3.polynomials
3.polynomials
 
2.sets
2.sets2.sets
2.sets
 
1.real numbers
1.real numbers1.real numbers
1.real numbers
 
Chapter 12 physics
Chapter 12 physicsChapter 12 physics
Chapter 12 physics
 
Chapter 11 physics
Chapter 11 physicsChapter 11 physics
Chapter 11 physics
 
Chapter 7 physics
Chapter 7 physicsChapter 7 physics
Chapter 7 physics
 
refraction of light at curved surfaces
refraction of light at curved surfacesrefraction of light at curved surfaces
refraction of light at curved surfaces
 
Chapter 5 physics
Chapter 5 physicsChapter 5 physics
Chapter 5 physics
 

Dernier

chapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineeringchapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineeringmulugeta48
 
Thermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - VThermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - VDineshKumar4165
 
Thermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.pptThermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.pptDineshKumar4165
 
Hostel management system project report..pdf
Hostel management system project report..pdfHostel management system project report..pdf
Hostel management system project report..pdfKamal Acharya
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlysanyuktamishra911
 
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 BookingVIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Bookingdharasingh5698
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoordharasingh5698
 
Introduction to Serverless with AWS Lambda
Introduction to Serverless with AWS LambdaIntroduction to Serverless with AWS Lambda
Introduction to Serverless with AWS LambdaOmar Fathy
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXssuser89054b
 
Block diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptBlock diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptNANDHAKUMARA10
 
Work-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptxWork-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptxJuliansyahHarahap1
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapRishantSharmaFr
 
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night StandCall Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Standamitlee9823
 
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756dollysharma2066
 
2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projectssmsksolar
 
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance BookingCall Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Bookingroncy bisnoi
 
Thermal Engineering Unit - I & II . ppt
Thermal Engineering  Unit - I & II . pptThermal Engineering  Unit - I & II . ppt
Thermal Engineering Unit - I & II . pptDineshKumar4165
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTbhaskargani46
 

Dernier (20)

chapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineeringchapter 5.pptx: drainage and irrigation engineering
chapter 5.pptx: drainage and irrigation engineering
 
Thermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - VThermal Engineering-R & A / C - unit - V
Thermal Engineering-R & A / C - unit - V
 
Thermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.pptThermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.ppt
 
Hostel management system project report..pdf
Hostel management system project report..pdfHostel management system project report..pdf
Hostel management system project report..pdf
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghly
 
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 BookingVIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Booking
VIP Call Girls Ankleshwar 7001035870 Whatsapp Number, 24/07 Booking
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
 
Introduction to Serverless with AWS Lambda
Introduction to Serverless with AWS LambdaIntroduction to Serverless with AWS Lambda
Introduction to Serverless with AWS Lambda
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
 
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
 
Block diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.pptBlock diagram reduction techniques in control systems.ppt
Block diagram reduction techniques in control systems.ppt
 
Work-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptxWork-Permit-Receiver-in-Saudi-Aramco.pptx
Work-Permit-Receiver-in-Saudi-Aramco.pptx
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leap
 
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
 
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night StandCall Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
Call Girls In Bangalore ☎ 7737669865 🥵 Book Your One night Stand
 
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
FULL ENJOY Call Girls In Mahipalpur Delhi Contact Us 8377877756
 
2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects2016EF22_0 solar project report rooftop projects
2016EF22_0 solar project report rooftop projects
 
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance BookingCall Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Wakad Call Me 7737669865 Budget Friendly No Advance Booking
 
Thermal Engineering Unit - I & II . ppt
Thermal Engineering  Unit - I & II . pptThermal Engineering  Unit - I & II . ppt
Thermal Engineering Unit - I & II . ppt
 
Generative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPTGenerative AI or GenAI technology based PPT
Generative AI or GenAI technology based PPT
 

Composite materials

  • 1. Composite Materials Name : G KRISHNA CHAITANYA Subject : DME-II
  • 2. OUTLINES † COMPOSITE MATERIALS † IT’S APPLICATIONS † HISTORY † MATERIALS MOSTLY USED † DIFFERENT TYPES OF MATRICES † DIFFERENT FIBERS † IT’S USES † TECHNIQUES FOR PREPARING COMPOSITE MATERIALS
  • 3. Composite Material Diagnosed • A composite material is made by combining two or more materials – often ones that have very different properties. • The two materials work together to give the composite unique properties. • However, within the composite you can easily tell the different materials apart as they do not dissolve or blend into each other.
  • 5. ADVANTAGES OF COMPOSITE. • Reason to use composite material:- I. Higher specific strength than metals, non-metals and even alloys. II. Lower specific gravity in general. III. Improved stiffness of material. IV. Composite maintain their weight even at high temperatures. V. Toughness is improved. VI. Fabrication or production is cheaper. VII. Creep and fatigue strength is better. VIII. Controlled Electrical conductivity is possible. IX. Corrosion and oxidation resistance.
  • 6. HISTORY OF COMPOSITES ◊ Straw reinforcement mud cited in old testament _organic fiber – reinforced CMC ◊ GFRP well established by 1950s ◊ R&D on advanced composites:CCCs,PMCs,MMCs AND CMCs started 1960s-1970s ◊ Carbon fiber-reinforced polymers(CFRPs) became dominant advanced composites in 1970s ◊ CCCs established for thermal protection around 1970s • MMCs used in specialty applications - Automobile engines - Electronics thermal management
  • 7. Definition: They generally have two phases:- 1. Matrix Phase. 2. Dispersion Phase.  Matrix Phase :- It is the continuous material constituent which encloses the composite and give it its bulk form. Matrix phase may be metal , ceramic or polymer.  Dispersion Phase:- It is the structure constituent , which determines the internal structure of composite. Dispersion Phase is connected to matrix phase by bonding
  • 9. Types of composites. Composite. Particle-reinforced Fibre-reinforced Structural Large particle Dispersion- strengthened Continuous (Alignment) Discontinuous (Short) Laminates Sandwich panels Aligned Randomly oriented
  • 11. Particle Reinforced Composites  One form of composites is particulate reinforced composites with concrete being a good example. The aggregate of coarse rock or gravel is embedded in a matrix of cement. The aggregate provides stiffness and strength while the cement acts as the binder to hold the structure together.  There are many different forms of particulate composites. The particulates can be very small particles (< 0.25 microns), chopped fibres (such as glass), platelets, hollow spheres, or new materials such as Bucky balls or carbon nano-tubes. In each case, the particulates provide desirable material properties and the matrix acts as binding medium necessary for structural applications.
  • 12.
  • 13. Large-particle composite  Some polymeric materials to which fillers have been added are really large- particle composites. The fillers modify or improve the properties of the material. Example of large- particle composite is concrete, which is composed of cement (the matrix), and sand and gravel (the particulates).Particles can have quite a variety of geometries, but they should be of approximately the same dimension in all direction (equated).  For effective reinforcement, the particles should be small and evenly distributed throughout the matrix. The volume fraction of the two phases influences the behavior; mechanical properties are enhanced with increasing particulate content.  Rule of mixture: equation predict that the elastic modulus should fall between an upper and lower bound as shown:  Example: Fig. 1.1 plots upper and lower bound Ec – versus Vp curves for a copper – tungsten composite; in which tungsten is the particulate phase.  Where:- Ec: elastic modulus of composite Ep: elastic modulus of particle Em: elastic modulus of matrix Vm: volume fraction of matrix Vp: volume fraction of particle
  • 14. Dispersion strengthened composite  Dispersion-strengthened means of strengthening materials where in very small particles (usually less than 0.1 µm) of a hard yet inert phase are uniformly dispersed within a load – bearing matrix phase.  The dispersed phase may be metallic or nonmetallic, oxide materials are often used.  Figure 1.2 Comparison of the yield strength of dispersion-strengthened sintered aluminum powder (SAP) composite with that of two conventional two-phase high- strength aluminum alloys. The composite has benefits above about 300°C. A fiber- reinforced aluminum composite is shown for comparison.
  • 15. Fiber-Reinforced Composites  The Rule of Mixtures in Fiber-Reinforced Composites  Strength of Composites - The tensile strength of a fiber-reinforced composite (TSc) depends on the bonding between the fibers and the matrix.  Figure 1.3 The stress-strain curve for a fiber-reinforced composite. At low stresses (region l), the modulus of elasticity is given by the rule of mixtures. At higher stresses (region ll), the matrix deforms and the rule of mixtures is no longer obeyed.
  • 16. Types of fibre reinforced composite:-  Continuous & Aligned The fibres are longer than a critical length which is the minimum length necessary such that the entire load is transmitted from the matrix to the fibres. If they are shorter than this critical length, only some of the load is transmitted. Fibre lengths greater that 15 times the critical length are considered optimal. Aligned and continuous fibres give the most effective strengthening for fibre composites.
  • 17.  Discontinuous & Aligned The fibres are shorter than the critical length. Hence discontinuous fibres are less effective in strengthening the material, however, their composite modulus and tensile strengths can approach 50-90% of their continuous and aligned counterparts. And they are cheaper, faster and easier to fabricate into complicated shapes.  Random This is also called discrete, (or chopped) fibres. The strength will not be as high as with aligned fibres, however, the advantage is that the material will be isotropic and cheaper.
  • 18. Structural Composites  A structural composite consists of both homogeneous and composite material. There properties depend on, the characteristic properties of the constituent materials as well as the geometric design.  Structural composite are of two types:- 1.Laminar compost 2.Sandwich panel
  • 19. Laminar Composite  It consists of panels or sheets which are two dimensional. These panels possess preferred directions to achieve high strength.  Such successively oriented layers are stacked one above with preferred directions and then are cemented. Such an arrangement or orientation ensures varying highest strength with each successive layer involved in material.
  • 20. Sandwich Panel  Sandwich panel is also a kind of layered composite. It consists of ‘faces’ and ‘core’  With increase in thickness of core, its stiffness increases as seen in the most common sandwich panel ‘honeycomb’.  Faces:-They are formed by two strong outer sheets.  Core:-Core is layer of less dense material.  Honeycomb:-Structure which contain thin foils forming interlocked hexagonal cells with their axes oriented at right angles in the direction of face sheet.
  • 21. Applications Of Composite Material 1. In automobile industries (e.g. Steel &Aluminium body) 2. Marine applications like shafts, hulls, spars (for racing boats) 3. Aeronautical application like components of rockets, aircrafts (business and military), missiles etc. 4. Communication antennae, electronic circuit boards (e.g. PCB, breadboard) 5. Safety equipment like ballistic protection and Air bags of cars.
  • 22.
  • 23.
  • 24.
  • 25.
  • 26.
  • 27.
  • 28.
  • 29.
  • 30.
  • 31.
  • 32.
  • 33.
  • 34.
  • 35.
  • 36.
  • 37.
  • 38. Putting it together – the science and technology of composite materials •Australia, like all advanced countries, is taking a big interest in composite materials, which many people see as 'the materials of the future'. The main concern is to get the costs down, so that composites can be used in products and applications which at present don’t justify the cost. At the same time researchers want to improve the performance of the composites, such as making them more resistant to impact. •One new technique involves 'textile composites'. Instead of the reinforcing fibres being put in place individually, which is slow and costly, they can be knitted or woven together to make a sort of cloth. This can even be three-dimensional rather than flat. The spaces between and around the textile fibres are then filled with the matrix material (such as a resin) to make the product.
  • 39.  This process can quite easily be done by machines rather than by hand, making it faster and cheaper. Connecting all the fibres together also means that the composite is less likely to be damaged when struck.  With the costs coming down, other uses for composites are beginning to look attractive. Making the hulls and superstructures of boats from composites takes advantage of their resistance to corrosion. The Australian Navy’s new minehunters have composite hulls, since the magnetic effect of a steel hull would interfere with mine detection.  Also in the pipeline are carriages for trains, trams and other 'people movers', made from composites rather than steel or aluminium. Here the appeal is the lightness of the composites, as the vehicles then use less energy. And we are going to see more and more composites in cars for the same reason.
  • 40. Manufacturing Processes † Hand lay –up † Vaccum bagging/autoclave † Compression moulding † Liquid resin moulding † Pultrusion † Filament winding † Injection moulding † Themoplastics processing † Automated tape laying
  • 41.
  • 42.
  • 43.
  • 44. Vacuum Bag Molding  Two sided mold set  Shapes both surfaces of the panel  Lower side is a rigid mold  Upper side is a flexiable membrane or vacuum bag  Bag made of silicone material or an extruded polymer film  Performed at either ambient or elevated temperature  Ambient atmospheric pressure acts upon the vacuum bag  Most economical way uses venturi vacuum and air compressor or a vacuum pump
  • 45.
  • 46.
  • 47.
  • 48.
  • 49.
  • 50.
  • 51.
  • 52.
  • 53. Fibre-reinforced composite processing:- Pultrusion • Technique allowing industrial automated continuous production of profiles from composite materials of synthetic resins. Pultrusion allows the development of various profiles, section and variable thickness. The length of the pultruded profiles is not limited. Prepreg  It is the term for continuous fibre- reinforcement preimpregnated with a polymer resin that is only particularly cured. The final Prepreg product (the thin tape consisting of continuous an aligned fibbers embedded in partially cured resin) is prepared for packing by winding onto a cardboard core.
  • 54. Fabrication From Prepreg  Actual fabrication begins with the lay up(i.e. laying of the Prepreg tape onto a tooled surface).Usually a number of piles are lined up to provide the desired thickness. The lay up arrangement may be unidirectional, but more often the fibre orientation is alternated to reduce either a cross-ply laminated. Final curing is accomplished by simultaneous application of heat and pressure. Some of its methods are:- 1.Helical winding 2.circumferential winding 3.Polar winding
  • 55. Failure Of Composite Material  Composite can fail due to breaking of the fibre, micro cracking of the matrix, de-bonding (i.e. separation of fibres from matrix), delamination of laminated composite (i.e. separation of lamina from each other).Some of the most common are:- 1) Failure under longitudinal compressive loading. 2) Failure under longitudinal tensile loading. 3) Failure under transverse compressive loading. 4) Failure under transverse tensile loading.
  • 56. YOUR IDEAS ON THE COMPOSITES OF THE FUTURE?  Can we innovate more towards the expanding sector of composite material, if yes how?  How to introduce more life applications of composite material in daily scenario?  Making the idea spread to the consumer.  Potential stock market enhancement of composite industries.