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SMART
MATERIALS
(MATERIALS OF THE
FUTURE)
PRESENTED BY:-
SHUBHAM RAI
B.Tech(ME)
5th
SEMESTER
CONTENTS
• Introduction
• Properties of smart materials
• Classification of Smart Materials
• Shape Memory Alloys
• Applications
• Merits & Demerits
• Conclusion
INTRODUCTION
SMART MATERIALS
Smart or intelligent materials are materials that
have to respond to stimuli and environmental changes
and to activate their functions according to these
changes.
The stimuli like temperature, pressure, electric flow,
magnetic flow, light, mechanical, etc can originate
internally or externally.
PROPERTIES OF SMART
MATERIALS
• Sensing materials and devices
• Actuation materials and devices
• Control devices and techniques
• Self-detection, self-diagnostic
• Self-corrective, self-controlled, self-healing
• Shock-absorbers, damage arrest
CLASSIFICATION OF SMART
MATERIALS
• Piezoelectric materials
• Electrostrictive materials
• Magnetostrictive materials
• Rheological materials
• Thermoresponsive materials
• Electrochromic materials
• Fullerences
• Biomimetric materials
• Smart gels
• Piezoelectric Materials: When subjected to an
electric charge or a variation in voltage, piezoelectric
material will undergo some mechanical change, and
vice versa. These events are called the direct and
converse effects.
The Direct Effect The Reverse Effect
• Electrostrictive Materials: This material has the
same properties as piezoelectric material, but the
mechanical change is proportional to the square of
the electric field. This characteristic will always
produce displacements in the same direction.
• Magnetostrictive Materials: When subjected to a
magnetic field, and vice versa (direct and converse
effects), this material will undergo an induced
mechanical strain. Consequently, it can be used as
sensors and/or actuators. (Example: Terfenol-D.)
• Rheological Materials: These are in liquid phase
which can change state instantly through the
application of an electric or magnetic charge. These
fluids may find applications in brakes, shock
absorbers and dampers for vehicle seats.
ELECTRIC
/MAGNETIC
FIELD
APPLIED
ER
/MR
FLUID
CHANGES
LIQUID TO
SOLID
ELECTRIC
/MAGNETIC
FIELD
REMOVED
ER
/MR
FLUID
CHANGES
SOLID TO
LIQUID
• Thermoresponsive Materials: Thermoresponsive is
the ability of a material to change properties in
response to changes in temperature. They are useful
in thermostats and in parts of automotive and air
vehicles.
• Electrochromic materials: Electrochromic is the
ability of a material to change its optical properties
(e.g. Color) when a voltage is applied across it. They
are used in LCDs and cathodes in lithium batteries.
• Fullerences: These are spherically caged molecules
with carbon atoms at the corner of a polyhedral
structure consisting of pentagons and hexagons.
These are usually used in polymeric matrices for use
in smart systems. They are used in electronic and
microelectronic devices, super-conductors, optical
devices, etc.
• Biomimetic Materials: The materials and structures
involved in natural systems have the capability to
sense their environment, process the data and
respond instantly. For example: to allow leaf surfaces
to follow the direction of sunlight and essentially a
real-time change in the load path through the
structure to avoid overload of a damaged region.
The field of biomimetic materials explores the
possibility of engineering materials and structures.
• Smart gels: These are gels that can shrink or swell
by several orders of magnitude. Some of these can
also be programmed to absorb or release fluids in
response to a chemical or physical stimulus. These
gels are used in areas such as food, drug delivery,
organ replacement and chemical processing.
SHAPE MEMORY ALLOYS
In 1930s, Arne Olander was first observed the shape
memory effect while working with an alloy of gold and
cadmium.
This Au-Cd alloy was plastically deformed when cold but
returns to its original configuration when heated.
The shape memory properties of nickel-titanium alloys
were discovered in the early 1960s. Although pure
nickel-titanium has very low ductility in the
martensitic phase, the properties can be modified by
the addition of a small amount of a third element.
These groups of alloys are known as Nitinol™
(Nickel-Titanium-Naval-Ordnance-Laboratories).
How SMA Works?
• SMA occurs due to the change in the crystalline
structure of materials.
• Two phases are:
 Martensite:
• Low temperature phase
• Relatively weak
 Austenite:
• High temperature phase
• Relatively strong
 MARTENSITE
 DEFORMING
MARTENSITE
 DEFORMED
MARTENSITE
 AUSTENSITE
 MARTENSITE
• Martensite to Austenite
transformation occurs
by heating.
• Austenite to Martensite
occurs by cooling.
THERMAL HYSTERESIS
where
• Ms-Martensite start
• Mf-Martensite finish
• As-Austenite start
• Af-Austenite finish
APPLICATION
S
• Aircrafts
• Orthopedic surgery
• Dental braces
• Robotics
• Reducing vibration
of helicopter blades
• Smart fabrics
• Sporting goods
• Smart glass
MERITS
• Bio-compatibility
• Simplicity
• Compactness
• Safety mechanism
• Good mechanical
properties
DEMERITS
• More expensive
• Low energy efficiency
• Complex control
• Limited bandwidth
Conclusion
• Today, the most promising technologies for lifetime
efficiency and improved reliability include the use of
smart materials and structures. Understanding and
controlling the composition and microstructure of any
new materials are the ultimate objectives of research
in this field, and is crucial to the production of good
smart materials.
• New and advanced materials will definitively enhance
our quality of our life.
It’s time to be
SMART !
Smart materials presentation

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Smart materials presentation

  • 1. SMART MATERIALS (MATERIALS OF THE FUTURE) PRESENTED BY:- SHUBHAM RAI B.Tech(ME) 5th SEMESTER
  • 2. CONTENTS • Introduction • Properties of smart materials • Classification of Smart Materials • Shape Memory Alloys • Applications • Merits & Demerits • Conclusion
  • 3. INTRODUCTION SMART MATERIALS Smart or intelligent materials are materials that have to respond to stimuli and environmental changes and to activate their functions according to these changes. The stimuli like temperature, pressure, electric flow, magnetic flow, light, mechanical, etc can originate internally or externally.
  • 4. PROPERTIES OF SMART MATERIALS • Sensing materials and devices • Actuation materials and devices • Control devices and techniques • Self-detection, self-diagnostic • Self-corrective, self-controlled, self-healing • Shock-absorbers, damage arrest
  • 5. CLASSIFICATION OF SMART MATERIALS • Piezoelectric materials • Electrostrictive materials • Magnetostrictive materials • Rheological materials • Thermoresponsive materials • Electrochromic materials • Fullerences • Biomimetric materials • Smart gels
  • 6. • Piezoelectric Materials: When subjected to an electric charge or a variation in voltage, piezoelectric material will undergo some mechanical change, and vice versa. These events are called the direct and converse effects. The Direct Effect The Reverse Effect
  • 7. • Electrostrictive Materials: This material has the same properties as piezoelectric material, but the mechanical change is proportional to the square of the electric field. This characteristic will always produce displacements in the same direction.
  • 8. • Magnetostrictive Materials: When subjected to a magnetic field, and vice versa (direct and converse effects), this material will undergo an induced mechanical strain. Consequently, it can be used as sensors and/or actuators. (Example: Terfenol-D.)
  • 9. • Rheological Materials: These are in liquid phase which can change state instantly through the application of an electric or magnetic charge. These fluids may find applications in brakes, shock absorbers and dampers for vehicle seats. ELECTRIC /MAGNETIC FIELD APPLIED ER /MR FLUID CHANGES LIQUID TO SOLID ELECTRIC /MAGNETIC FIELD REMOVED ER /MR FLUID CHANGES SOLID TO LIQUID
  • 10. • Thermoresponsive Materials: Thermoresponsive is the ability of a material to change properties in response to changes in temperature. They are useful in thermostats and in parts of automotive and air vehicles.
  • 11. • Electrochromic materials: Electrochromic is the ability of a material to change its optical properties (e.g. Color) when a voltage is applied across it. They are used in LCDs and cathodes in lithium batteries.
  • 12. • Fullerences: These are spherically caged molecules with carbon atoms at the corner of a polyhedral structure consisting of pentagons and hexagons. These are usually used in polymeric matrices for use in smart systems. They are used in electronic and microelectronic devices, super-conductors, optical devices, etc.
  • 13. • Biomimetic Materials: The materials and structures involved in natural systems have the capability to sense their environment, process the data and respond instantly. For example: to allow leaf surfaces to follow the direction of sunlight and essentially a real-time change in the load path through the structure to avoid overload of a damaged region. The field of biomimetic materials explores the possibility of engineering materials and structures.
  • 14. • Smart gels: These are gels that can shrink or swell by several orders of magnitude. Some of these can also be programmed to absorb or release fluids in response to a chemical or physical stimulus. These gels are used in areas such as food, drug delivery, organ replacement and chemical processing.
  • 15. SHAPE MEMORY ALLOYS In 1930s, Arne Olander was first observed the shape memory effect while working with an alloy of gold and cadmium. This Au-Cd alloy was plastically deformed when cold but returns to its original configuration when heated. The shape memory properties of nickel-titanium alloys were discovered in the early 1960s. Although pure nickel-titanium has very low ductility in the martensitic phase, the properties can be modified by the addition of a small amount of a third element. These groups of alloys are known as Nitinol™ (Nickel-Titanium-Naval-Ordnance-Laboratories).
  • 16. How SMA Works? • SMA occurs due to the change in the crystalline structure of materials. • Two phases are:  Martensite: • Low temperature phase • Relatively weak  Austenite: • High temperature phase • Relatively strong
  • 17.  MARTENSITE  DEFORMING MARTENSITE  DEFORMED MARTENSITE  AUSTENSITE  MARTENSITE
  • 18. • Martensite to Austenite transformation occurs by heating. • Austenite to Martensite occurs by cooling.
  • 19. THERMAL HYSTERESIS where • Ms-Martensite start • Mf-Martensite finish • As-Austenite start • Af-Austenite finish
  • 20. APPLICATION S • Aircrafts • Orthopedic surgery • Dental braces • Robotics • Reducing vibration of helicopter blades • Smart fabrics • Sporting goods • Smart glass
  • 21. MERITS • Bio-compatibility • Simplicity • Compactness • Safety mechanism • Good mechanical properties DEMERITS • More expensive • Low energy efficiency • Complex control • Limited bandwidth
  • 22. Conclusion • Today, the most promising technologies for lifetime efficiency and improved reliability include the use of smart materials and structures. Understanding and controlling the composition and microstructure of any new materials are the ultimate objectives of research in this field, and is crucial to the production of good smart materials. • New and advanced materials will definitively enhance our quality of our life.
  • 23. It’s time to be SMART !