SlideShare uma empresa Scribd logo
1 de 11
In electromagnetism and electronics, inductance is the property of an electrical
conductor by which a change in current through it induces an electromotive force in both
the conductor itself[ and in any nearby conductors by mutual inductance.
The term inductance was coined by Oliver Heaviside in 1886. It is customary to use the
symbol L for inductance, in honour of the physicist Heinrich Lenz. In the SI system, the
measurement unit for inductance is the henry, with the unit symbol H, named in honor
of Joseph Henry, who discovered inductance independently of, but not before, Faraday.
The henry is a derived unit based on four of the seven base units of the International
System of Units: kilogram (kg), meter (m),second (s), and ampere (A). Expressed in
combinations of SI units, the henry is:[4]
where
Wb = weber,
T = tesla,
J = joule,
m = meter,
s = second,
A = ampere,
V = volt,
C = coulomb,
F = farad,
Hz = hertz,
Ω = ohm
Inductors do not behave the same as resistors. Whereas resistors simply oppose the
flow of electrons through them (by dropping a voltage directly proportional to the
current), inductors oppose changes in current through them, by dropping a voltage
directly proportional to the rate of change of current. In accordance with Lenz’s Law,
this induced voltage is always of such a polarity as to try to maintain current at its
present value. That is, if current is increasing in magnitude, the induced voltage will
“push against” the electron flow; if current is decreasing, the polarity will reverse and
“push with” the electron flow to oppose the decrease. This opposition to current
change is called reactance, rather than resistance.
Expressed mathematically, the relationship between the voltage dropped across the
inductor and rate of current change through the inductor is as such:
The expression di/dt is one from calculus, meaning the rate of change of instantaneous
current (i) over time, in amps per second. The inductance (L) is in Henrys, and the
instantaneous voltage (e), of course, is in volts. Sometimes you will find the rate of
instantaneous voltage expressed as “v” instead of “e” (v = L di/dt), but it means the
exact same thing. To show what happens with alternating current, let’s analyze a simple
inductor circuit.
Inductor in Series Circuit
The current, ( I ) that flows through the first inductor, L1 has no other way to go but pass
through the second inductor and the third and so on. Then, series inductors have
aCommon Current flowing through them, for example:
IL1 = IL2 = IL3 = IAB …etc.
In the example above, the inductors L1, L2 and L3 are all connected together in series
between points A and B. The sum of the individual voltage drops across each inductor
can be found using Kirchoff’s Voltage Law (KVL) where, VT = V1 + V2 + V3 and we know
from the previous tutorials on inductance that the self-induced emf across an inductor is
given as: V = L di/dt.
So by taking the values of the individual voltage drops across each inductor in our
example above, the total inductance for the series combination is given as:
By dividing through the above equation by di/dt we can reduce it to give a final
expression for calculating the total inductance of a circuit when connecting inductors
together in series and this is given as:
Ltotal = L1 + L2 + L3 + ….. + Ln etc.
Then the total inductance of the series chain can be found by simply adding together
the individual inductances of the inductors in series just like adding together resistors in
series. However, the above equation only holds true when there is “NO” mutual
inductance or magnetic coupling between two or more of the inductors, (they are
magnetically isolated from each other).
One important point to remember about inductors in series circuits, the total inductance
( LT ) of any two or more inductors connected together in series will always
be GREATER than the value of the largest inductor in the series chain.
Inductors in Series Example No1
Three inductors of 10mH, 40mH and 50mH are connected together in a series
combination with no mutual inductance between them. Calculate the total inductance of
the series combination.
Inductors in Parallel
Inductors are said to be connected together in “Parallel” when both of their terminals
are respectively connected to each terminal of the other inductor or inductors.
The voltage drop across all of the inductors in parallel will be the same.
Then, Inductors in Parallel have a Common Voltage across them and in our example
below the voltage across the inductors is given as:
VL1 = VL2 = VL3 = VAB …etc
In the following circuit the inductors L1, L2 and L3 are all connected together in parallel
between the two points A and B.
Inductors in Parallel Circuit
In the previous series inductors tutorial, we saw that the total inductance, LT of the
circuit was equal to the sum of all the individual inductors added together. For inductors
in parallel the equivalent circuit inductance LT is calculated differently.
The sum of the individual currents flowing through each inductor can be found using
Kirchoff’s Current Law (KCL) where, IT = I1 + I2 + I3 and we know from the previous
tutorials on inductance that the self-induced emf across an inductor is given
as:V = L di/dt
Then by taking the values of the individual currents flowing through each inductor in our
circuit above, and substituting the current i for i1 + i2 + i3 the voltage across the parallel
combination is given as:
By substituting di/dt in the above equation with v/L gives:
We can reduce it to give a final expression for calculating the total inductance of a
circuit when connecting inductors in parallel and this is given as:
Parallel Inductor Equation
Here, like the calculations for parallel resistors, the reciprocal ( 1/Ln ) value of the
individual inductances are all added together instead of the inductances themselves.
But again as with series connected inductances, the above equation only holds true
when there is “NO” mutual inductance or magnetic coupling between two or more of the
inductors, (they are magnetically isolated from each other). Where there is coupling
between coils, the total inductance is also affected by the amount of coupling.
This method of calculation can be used for calculating any number of individual
inductances connected together within a single parallel network. If however, there are
only two individual inductors in parallel then a much simpler and quicker formula can be
used to find the total inductance value, and this is:
One important point to remember about inductors in parallel circuits, the total
inductance ( LT ) of any two or more inductors connected together in parallel will always
be LESS than the value of the smallest inductance in the parallel chain.
Inductors in Parallel Example No1
Three inductors of 60mH, 120mH and 75mH respectively, are connected together in a
parallel combination with no mutual inductance between them. Calculate the total
inductance of the parallel combination in millihenries.
Inductor Circuit in Series and In Parallel
We'll now do an inductor circuit in which inductors are both in series and in parallel in
the same circuit.
Below is a circuit which has inductors in both series and parallel:
So how do we add them to find the total inductance value?
First, we can start by finding the resistance of the resistors in series. In the first branch,
containing the 20H and 40H inductors, the series resistance is 60H. And in the second
branch, containing the 30H and 60H inductors, the series inductance is 90H. Now in
total, the circuit has 3 inductances in parallel, 10H, 60H, and 90h. Now, we plug these 3
values into the parallel inductance formula and we get a total inductance of 7.83H.
If you want to test the above series and parallel connections out practically, get 1mH
inductor or whatever inductors you have, but let them be of the same value. In this
example, I'll stick with 2 1mH inductors. Take the inductors and place them in series.
Now take a multimeter and place the multimeter in the inductance setting (if available)
and place the probes over the 2 inductors You should read just about 2mH, which is
double the value of both inductors. This proves that inductors add when connected in
series. Now place the inductors in parallel. Take the multimeter probes and place one
end on one side of a inductor (either one) and place the other probe on the other side of
that inductor. You should now read about 0.5mH, or half the value, because inductance
decreases in parallel. This is a practical, real-life test you can do to show how inductors
add.
Energy Stored in an Inductor
Suppose that an inductor of inductance is connected to a variable DC
voltage supply. The supply is adjusted so as to increase the current flowing
through the inductor from zero to some final value . As the current through
the inductor is ramped up, an emf is generated, which acts to
oppose the increase in the current. Clearly, work must be done against this
emf by the voltage source in order to establish the current in the inductor. The
work done by the voltage source during a time interval is
(247)
Here, is the instantaneous rate at which the voltage source
performs work. To find the total work done in establishing the final
current in the inductor, we must integrate the above expression. Thus,
(248)
giving
(249)
This energy is actually stored in the magnetic field generated by the current
flowing through the inductor. In a pure inductor, the energy is stored without
loss, and is returned to the rest of the circuit when the current through the
inductor is ramped down, and its associated magnetic field collapses.
Consider a simple solenoid. Equations (244), (246), and (249) can be
combined to give
(250)
which reduces to
(251)
This represents the energy stored in the magnetic field of the solenoid.
However, the volume of the field-filled core of the solenoid is , so the
magnetic energy density (i.e., the energy per unit volume) inside the solenoid
is , or
Mutual Inductance
In the previous tutorial we saw that an inductor generates an induced emf within itself as a result
of the changing magnetic field around its own turns.
When this emf is induced in the same circuit in which the current is changing this effect is
called Self-induction, ( L ). However, when the emf is induced into an adjacent coil situated
within the same magnetic field, the emf is said to be induced magnetically, inductively or
by Mutual induction, symbol ( M ). Then when two or more coils are magnetically linked
together by a common magnetic flux they are said to have the property of Mutual Inductance.
Mutual Inductance is the basic operating principal of the transformer, motors, generators and
any other electrical component that interacts with another magnetic field. Then we can define
mutual induction as the current flowing in one coil that induces an voltage in an adjacent coil.
But mutual inductance can also be a bad thing as “stray” or “leakage” inductance from a coil can
interfere with the operation of another adjacent component by means of electromagnetic
induction, so some form of electrical screening to a ground potential may be required.
The amount of mutual inductance that links one coil to another depends very much on the
relative positioning of the two coils. If one coil is positioned next to the other coil so that their
physical distance apart is small, then nearly all of the magnetic flux generated by the first coil
will interact with the coil turns of the second coil inducing a relatively large emf and therefore
producing a large mutual inductance value.
Likewise, if the two coils are farther apart from each other or at different angles, the amount of
induced magnetic flux from the first coil into the second will be weaker producing a much
smaller induced emf and therefore a much smaller mutual inductance value. So the effect of
mutual inductance is very much dependant upon the relative positions or spacing, ( S ) of the two
coils and this is demonstrated below.
Mutual Inductance between Coils
The mutual inductance that exists between the two coils can be greatly increased by positioning
them on a common soft iron core or by increasing the number of turns of either coil as would be
found in a transformer.
If the two coils are tightly wound one on top of the other over a common soft iron core unity
coupling is said to exist between them as any losses due to the leakage of flux will be extremely
small. Then assuming a perfect flux linkage between the two coils the mutual inductance that
exists between them can be given as.
 Where:
 µo is the permeability of free space (4.π.10-7)
 µr is the relative permeability of the soft iron core
 N is in the number of coil turns
 A is in the cross-sectional area in m2
 l is the coils length in meters
Mutual Induction
Here the current flowing in coil one, L1 sets up a magnetic field around itself with some of these
magnetic field lines passing through coil two, L2 giving us mutual inductance. Coil one has a
current of I1 and N1 turns while, coil two has N2 turns. Therefore, the mutual inductance, M12 of
coil two that exists with respect to coil one depends on their position with respect to each other
and is given as:
Likewise, the flux linking coil one, L1 when a current flows around coil two, L2 is exactly the
same as the flux linking coil two when the same current flows around coil one above, then the
mutual inductance of coil one with respect of coil two is defined as M21. This mutual inductance
is true irrespective of the size, number of turns, relative position or orientation of the two coils.
Because of this, we can write the mutual inductance between the two coils as: M12 = M21 = M.
Then we can see that self inductance characterises an inductor as a single circuit element, while
mutual inductance signifies some form of magnetic coupling between two inductors or coils,
depending on their distance and arrangement, an hopefully we remember from our tutorials
on Electromagnets that the self inductance of each individual coil is given as:
and
By cross-multiplying the two equations above, the mutual inductance, M that exists between the
two coils can be expressed in terms of the self inductance of each coil.
giving us a final and more common expression for the mutual inductance between the two coils
of:
Mutual Inductance Between Coils
However, the above equation assumes zero flux leakage and 100% magnetic coupling between
the two coils, L 1 and L 2. In reality there will always be some loss due to leakage and position, so
the magnetic coupling between the two coils can never reach or exceed 100%, but can become
very close to this value in some special inductive coils.
If some of the total magnetic flux links with the two coils, this amount of flux linkage can be
defined as a fraction of the total possible flux linkage between the coils. This fractional value is
called the coefficient of coupling and is given the letter k.

Mais conteúdo relacionado

Mais procurados

Fundamentals of electric circuits
Fundamentals of electric circuitsFundamentals of electric circuits
Fundamentals of electric circuitsAbdullah Al Mahfuj
 
inductive ac circuits
 inductive ac circuits inductive ac circuits
inductive ac circuitsvishal gupta
 
Construction of dc machines
Construction of dc machinesConstruction of dc machines
Construction of dc machinesRohini Haridas
 
Maximum power transfer theorem
Maximum power transfer theoremMaximum power transfer theorem
Maximum power transfer theoremPrakash Poudel
 
Inductors in AC Circuits
Inductors in AC CircuitsInductors in AC Circuits
Inductors in AC Circuitsamckaytghs
 
Electromagnetic induction
Electromagnetic inductionElectromagnetic induction
Electromagnetic inductionNishkam Dhiman
 
Electric field intensity
Electric field intensityElectric field intensity
Electric field intensityRahul Sinha
 
Presentation on Electromagnetic Induction
Presentation on Electromagnetic InductionPresentation on Electromagnetic Induction
Presentation on Electromagnetic InductionSaleh Ibne Omar
 
Electric Current
Electric CurrentElectric Current
Electric Currentjeric lora
 
Lecture21 potential
Lecture21 potentialLecture21 potential
Lecture21 potentialAlex Klein
 
faradays law and its applications ppt
faradays law and its applications pptfaradays law and its applications ppt
faradays law and its applications pptIndira Kundu
 
Electrical Circuit - Lecture#2
Electrical Circuit - Lecture#2Electrical Circuit - Lecture#2
Electrical Circuit - Lecture#2Hassaan Rahman
 

Mais procurados (20)

Alternating current
Alternating  currentAlternating  current
Alternating current
 
Skin effect
Skin effectSkin effect
Skin effect
 
Superposition Theorem
Superposition TheoremSuperposition Theorem
Superposition Theorem
 
Fundamentals of electric circuits
Fundamentals of electric circuitsFundamentals of electric circuits
Fundamentals of electric circuits
 
inductive ac circuits
 inductive ac circuits inductive ac circuits
inductive ac circuits
 
Construction of dc machines
Construction of dc machinesConstruction of dc machines
Construction of dc machines
 
Maximum power transfer theorem
Maximum power transfer theoremMaximum power transfer theorem
Maximum power transfer theorem
 
MAGNETOSTATICS
MAGNETOSTATICSMAGNETOSTATICS
MAGNETOSTATICS
 
Inductors in AC Circuits
Inductors in AC CircuitsInductors in AC Circuits
Inductors in AC Circuits
 
inductance
 inductance inductance
inductance
 
Electromagnetic induction
Electromagnetic inductionElectromagnetic induction
Electromagnetic induction
 
Electric field intensity
Electric field intensityElectric field intensity
Electric field intensity
 
Presentation on Electromagnetic Induction
Presentation on Electromagnetic InductionPresentation on Electromagnetic Induction
Presentation on Electromagnetic Induction
 
Intro To Capacitors
Intro To CapacitorsIntro To Capacitors
Intro To Capacitors
 
Electric Current
Electric CurrentElectric Current
Electric Current
 
Lecture21 potential
Lecture21 potentialLecture21 potential
Lecture21 potential
 
Electrostatics 2
Electrostatics 2Electrostatics 2
Electrostatics 2
 
faradays law and its applications ppt
faradays law and its applications pptfaradays law and its applications ppt
faradays law and its applications ppt
 
Electrical Circuit - Lecture#2
Electrical Circuit - Lecture#2Electrical Circuit - Lecture#2
Electrical Circuit - Lecture#2
 
KCL and KVL
KCL and KVLKCL and KVL
KCL and KVL
 

Destaque (20)

Inductance
InductanceInductance
Inductance
 
Part 2 ee
Part 2 eePart 2 ee
Part 2 ee
 
Part 1 math
Part 1 mathPart 1 math
Part 1 math
 
Dc Circuits Exam
Dc Circuits ExamDc Circuits Exam
Dc Circuits Exam
 
Part 2 esas
Part 2 esasPart 2 esas
Part 2 esas
 
Eee
EeeEee
Eee
 
Part 1 ee
Part 1 eePart 1 ee
Part 1 ee
 
Different kinds of Probability
Different kinds of ProbabilityDifferent kinds of Probability
Different kinds of Probability
 
Part 1 esas
Part 1 esasPart 1 esas
Part 1 esas
 
Series & Parallel
Series & ParallelSeries & Parallel
Series & Parallel
 
Part 2 math
Part 2 mathPart 2 math
Part 2 math
 
L14 self and mutual inductance
L14   self and mutual inductanceL14   self and mutual inductance
L14 self and mutual inductance
 
self inductance
self inductanceself inductance
self inductance
 
Mutual induction
Mutual inductionMutual induction
Mutual induction
 
Drawing ellipse by eccentricity method
Drawing ellipse by eccentricity methodDrawing ellipse by eccentricity method
Drawing ellipse by eccentricity method
 
Electric resistance furnace
Electric resistance furnaceElectric resistance furnace
Electric resistance furnace
 
Capacitance and capacitor
Capacitance and capacitorCapacitance and capacitor
Capacitance and capacitor
 
Inductors
InductorsInductors
Inductors
 
Transformer construction,types and working
Transformer construction,types and workingTransformer construction,types and working
Transformer construction,types and working
 
transformer ppt
transformer ppttransformer ppt
transformer ppt
 

Semelhante a Inductance and Inductor

Semelhante a Inductance and Inductor (20)

Tarun's physics presentation
Tarun's physics presentationTarun's physics presentation
Tarun's physics presentation
 
Description of Electronics components
Description of Electronics componentsDescription of Electronics components
Description of Electronics components
 
electricity bacos concept1774866958.pptx
electricity bacos concept1774866958.pptxelectricity bacos concept1774866958.pptx
electricity bacos concept1774866958.pptx
 
Mesh and nodal
Mesh and nodalMesh and nodal
Mesh and nodal
 
5.2
5.25.2
5.2
 
self learing basic electrical.pptx
self learing basic electrical.pptxself learing basic electrical.pptx
self learing basic electrical.pptx
 
electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )electromagnetic induction ( part 2 )
electromagnetic induction ( part 2 )
 
Electricity
ElectricityElectricity
Electricity
 
Arpita nandi
Arpita nandiArpita nandi
Arpita nandi
 
1 basic electronics
1 basic electronics1 basic electronics
1 basic electronics
 
Electricity
ElectricityElectricity
Electricity
 
Current and Electricity for class 10.pdf
Current and Electricity for class 10.pdfCurrent and Electricity for class 10.pdf
Current and Electricity for class 10.pdf
 
Current and Electricity for class 10.pdf
Current and Electricity for class 10.pdfCurrent and Electricity for class 10.pdf
Current and Electricity for class 10.pdf
 
2300notesset11v11 130808223429-phpapp02
2300notesset11v11 130808223429-phpapp022300notesset11v11 130808223429-phpapp02
2300notesset11v11 130808223429-phpapp02
 
Ppt unit-1
Ppt unit-1Ppt unit-1
Ppt unit-1
 
Electricity, types of charges, current, circuits
Electricity, types of charges, current, circuitsElectricity, types of charges, current, circuits
Electricity, types of charges, current, circuits
 
Inducción electromagnética
Inducción electromagnéticaInducción electromagnética
Inducción electromagnética
 
Ekeeda - First Year Enginering - Basic Electrical Engineering
Ekeeda - First Year Enginering - Basic Electrical EngineeringEkeeda - First Year Enginering - Basic Electrical Engineering
Ekeeda - First Year Enginering - Basic Electrical Engineering
 
Ekeeda backlinks
Ekeeda backlinksEkeeda backlinks
Ekeeda backlinks
 
chapter32.ppt
chapter32.pptchapter32.ppt
chapter32.ppt
 

Mais de Maria Romina Angustia (20)

Diode
DiodeDiode
Diode
 
An introduction to electronic components
An introduction to electronic componentsAn introduction to electronic components
An introduction to electronic components
 
Volcanoes in the Philippines
Volcanoes in the PhilippinesVolcanoes in the Philippines
Volcanoes in the Philippines
 
Electronics Introduction
Electronics IntroductionElectronics Introduction
Electronics Introduction
 
Statistics Introduction
Statistics IntroductionStatistics Introduction
Statistics Introduction
 
Different Kinds of Probability
Different Kinds of ProbabilityDifferent Kinds of Probability
Different Kinds of Probability
 
Different Kinds of Probability
Different Kinds of ProbabilityDifferent Kinds of Probability
Different Kinds of Probability
 
different kinds of probability
different kinds of probabilitydifferent kinds of probability
different kinds of probability
 
Capacitance and Capacitor
Capacitance and CapacitorCapacitance and Capacitor
Capacitance and Capacitor
 
Marijuana
MarijuanaMarijuana
Marijuana
 
Ang maikling kwento ng dalawang anghel
Ang maikling kwento ng dalawang anghelAng maikling kwento ng dalawang anghel
Ang maikling kwento ng dalawang anghel
 
Body system
Body systemBody system
Body system
 
Pangkat etniko sa pilipinas
Pangkat etniko sa pilipinasPangkat etniko sa pilipinas
Pangkat etniko sa pilipinas
 
Repeated Trials Probability
Repeated Trials ProbabilityRepeated Trials Probability
Repeated Trials Probability
 
Conditional Probability
Conditional ProbabilityConditional Probability
Conditional Probability
 
Wye delta transformations
Wye delta transformationsWye delta transformations
Wye delta transformations
 
Cells and Batteries
Cells and BatteriesCells and Batteries
Cells and Batteries
 
Power & Energy
Power & EnergyPower & Energy
Power & Energy
 
Joint probability
Joint probabilityJoint probability
Joint probability
 
Personal Data Sheet
Personal Data SheetPersonal Data Sheet
Personal Data Sheet
 

Último

Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Dr.Costas Sachpazis
 
UNIT-V FMM.HYDRAULIC TURBINE - Construction and working
UNIT-V FMM.HYDRAULIC TURBINE - Construction and workingUNIT-V FMM.HYDRAULIC TURBINE - Construction and working
UNIT-V FMM.HYDRAULIC TURBINE - Construction and workingrknatarajan
 
Java Programming :Event Handling(Types of Events)
Java Programming :Event Handling(Types of Events)Java Programming :Event Handling(Types of Events)
Java Programming :Event Handling(Types of Events)simmis5
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlysanyuktamishra911
 
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Call Girls in Nagpur High Profile
 
UNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular ConduitsUNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular Conduitsrknatarajan
 
University management System project report..pdf
University management System project report..pdfUniversity management System project report..pdf
University management System project report..pdfKamal Acharya
 
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank  Design by Working Stress - IS Method.pdfIntze Overhead Water Tank  Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank Design by Working Stress - IS Method.pdfSuman Jyoti
 
AKTU Computer Networks notes --- Unit 3.pdf
AKTU Computer Networks notes ---  Unit 3.pdfAKTU Computer Networks notes ---  Unit 3.pdf
AKTU Computer Networks notes --- Unit 3.pdfankushspencer015
 
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
 
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Christo Ananth
 
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...ranjana rawat
 
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELLPVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELLManishPatel169454
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfJiananWang21
 
UNIT-III FMM. DIMENSIONAL ANALYSIS
UNIT-III FMM.        DIMENSIONAL ANALYSISUNIT-III FMM.        DIMENSIONAL ANALYSIS
UNIT-III FMM. DIMENSIONAL ANALYSISrknatarajan
 
Call for Papers - International Journal of Intelligent Systems and Applicatio...
Call for Papers - International Journal of Intelligent Systems and Applicatio...Call for Papers - International Journal of Intelligent Systems and Applicatio...
Call for Papers - International Journal of Intelligent Systems and Applicatio...Christo Ananth
 

Último (20)

Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
Structural Analysis and Design of Foundations: A Comprehensive Handbook for S...
 
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
 
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
(INDIRA) Call Girl Meerut Call Now 8617697112 Meerut Escorts 24x7
 
UNIT-V FMM.HYDRAULIC TURBINE - Construction and working
UNIT-V FMM.HYDRAULIC TURBINE - Construction and workingUNIT-V FMM.HYDRAULIC TURBINE - Construction and working
UNIT-V FMM.HYDRAULIC TURBINE - Construction and working
 
(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
 
Java Programming :Event Handling(Types of Events)
Java Programming :Event Handling(Types of Events)Java Programming :Event Handling(Types of Events)
Java Programming :Event Handling(Types of Events)
 
KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghly
 
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...Top Rated  Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
Top Rated Pune Call Girls Budhwar Peth ⟟ 6297143586 ⟟ Call Me For Genuine Se...
 
UNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular ConduitsUNIT-II FMM-Flow Through Circular Conduits
UNIT-II FMM-Flow Through Circular Conduits
 
University management System project report..pdf
University management System project report..pdfUniversity management System project report..pdf
University management System project report..pdf
 
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank  Design by Working Stress - IS Method.pdfIntze Overhead Water Tank  Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
 
AKTU Computer Networks notes --- Unit 3.pdf
AKTU Computer Networks notes ---  Unit 3.pdfAKTU Computer Networks notes ---  Unit 3.pdf
AKTU Computer Networks notes --- Unit 3.pdf
 
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
 
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
Call for Papers - Educational Administration: Theory and Practice, E-ISSN: 21...
 
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...
The Most Attractive Pune Call Girls Manchar 8250192130 Will You Miss This Cha...
 
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELLPVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
PVC VS. FIBERGLASS (FRP) GRAVITY SEWER - UNI BELL
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdf
 
UNIT-III FMM. DIMENSIONAL ANALYSIS
UNIT-III FMM.        DIMENSIONAL ANALYSISUNIT-III FMM.        DIMENSIONAL ANALYSIS
UNIT-III FMM. DIMENSIONAL ANALYSIS
 
NFPA 5000 2024 standard .
NFPA 5000 2024 standard                                  .NFPA 5000 2024 standard                                  .
NFPA 5000 2024 standard .
 
Call for Papers - International Journal of Intelligent Systems and Applicatio...
Call for Papers - International Journal of Intelligent Systems and Applicatio...Call for Papers - International Journal of Intelligent Systems and Applicatio...
Call for Papers - International Journal of Intelligent Systems and Applicatio...
 

Inductance and Inductor

  • 1. In electromagnetism and electronics, inductance is the property of an electrical conductor by which a change in current through it induces an electromotive force in both the conductor itself[ and in any nearby conductors by mutual inductance. The term inductance was coined by Oliver Heaviside in 1886. It is customary to use the symbol L for inductance, in honour of the physicist Heinrich Lenz. In the SI system, the measurement unit for inductance is the henry, with the unit symbol H, named in honor of Joseph Henry, who discovered inductance independently of, but not before, Faraday. The henry is a derived unit based on four of the seven base units of the International System of Units: kilogram (kg), meter (m),second (s), and ampere (A). Expressed in combinations of SI units, the henry is:[4] where Wb = weber, T = tesla, J = joule, m = meter, s = second, A = ampere, V = volt, C = coulomb, F = farad, Hz = hertz, Ω = ohm Inductors do not behave the same as resistors. Whereas resistors simply oppose the flow of electrons through them (by dropping a voltage directly proportional to the current), inductors oppose changes in current through them, by dropping a voltage directly proportional to the rate of change of current. In accordance with Lenz’s Law, this induced voltage is always of such a polarity as to try to maintain current at its present value. That is, if current is increasing in magnitude, the induced voltage will “push against” the electron flow; if current is decreasing, the polarity will reverse and “push with” the electron flow to oppose the decrease. This opposition to current change is called reactance, rather than resistance. Expressed mathematically, the relationship between the voltage dropped across the inductor and rate of current change through the inductor is as such:
  • 2. The expression di/dt is one from calculus, meaning the rate of change of instantaneous current (i) over time, in amps per second. The inductance (L) is in Henrys, and the instantaneous voltage (e), of course, is in volts. Sometimes you will find the rate of instantaneous voltage expressed as “v” instead of “e” (v = L di/dt), but it means the exact same thing. To show what happens with alternating current, let’s analyze a simple inductor circuit. Inductor in Series Circuit The current, ( I ) that flows through the first inductor, L1 has no other way to go but pass through the second inductor and the third and so on. Then, series inductors have aCommon Current flowing through them, for example: IL1 = IL2 = IL3 = IAB …etc. In the example above, the inductors L1, L2 and L3 are all connected together in series between points A and B. The sum of the individual voltage drops across each inductor can be found using Kirchoff’s Voltage Law (KVL) where, VT = V1 + V2 + V3 and we know from the previous tutorials on inductance that the self-induced emf across an inductor is given as: V = L di/dt. So by taking the values of the individual voltage drops across each inductor in our example above, the total inductance for the series combination is given as: By dividing through the above equation by di/dt we can reduce it to give a final expression for calculating the total inductance of a circuit when connecting inductors together in series and this is given as: Ltotal = L1 + L2 + L3 + ….. + Ln etc. Then the total inductance of the series chain can be found by simply adding together the individual inductances of the inductors in series just like adding together resistors in series. However, the above equation only holds true when there is “NO” mutual
  • 3. inductance or magnetic coupling between two or more of the inductors, (they are magnetically isolated from each other). One important point to remember about inductors in series circuits, the total inductance ( LT ) of any two or more inductors connected together in series will always be GREATER than the value of the largest inductor in the series chain. Inductors in Series Example No1 Three inductors of 10mH, 40mH and 50mH are connected together in a series combination with no mutual inductance between them. Calculate the total inductance of the series combination. Inductors in Parallel Inductors are said to be connected together in “Parallel” when both of their terminals are respectively connected to each terminal of the other inductor or inductors. The voltage drop across all of the inductors in parallel will be the same. Then, Inductors in Parallel have a Common Voltage across them and in our example below the voltage across the inductors is given as: VL1 = VL2 = VL3 = VAB …etc In the following circuit the inductors L1, L2 and L3 are all connected together in parallel between the two points A and B.
  • 4. Inductors in Parallel Circuit In the previous series inductors tutorial, we saw that the total inductance, LT of the circuit was equal to the sum of all the individual inductors added together. For inductors in parallel the equivalent circuit inductance LT is calculated differently. The sum of the individual currents flowing through each inductor can be found using Kirchoff’s Current Law (KCL) where, IT = I1 + I2 + I3 and we know from the previous tutorials on inductance that the self-induced emf across an inductor is given as:V = L di/dt Then by taking the values of the individual currents flowing through each inductor in our circuit above, and substituting the current i for i1 + i2 + i3 the voltage across the parallel combination is given as: By substituting di/dt in the above equation with v/L gives: We can reduce it to give a final expression for calculating the total inductance of a circuit when connecting inductors in parallel and this is given as: Parallel Inductor Equation
  • 5. Here, like the calculations for parallel resistors, the reciprocal ( 1/Ln ) value of the individual inductances are all added together instead of the inductances themselves. But again as with series connected inductances, the above equation only holds true when there is “NO” mutual inductance or magnetic coupling between two or more of the inductors, (they are magnetically isolated from each other). Where there is coupling between coils, the total inductance is also affected by the amount of coupling. This method of calculation can be used for calculating any number of individual inductances connected together within a single parallel network. If however, there are only two individual inductors in parallel then a much simpler and quicker formula can be used to find the total inductance value, and this is: One important point to remember about inductors in parallel circuits, the total inductance ( LT ) of any two or more inductors connected together in parallel will always be LESS than the value of the smallest inductance in the parallel chain. Inductors in Parallel Example No1 Three inductors of 60mH, 120mH and 75mH respectively, are connected together in a parallel combination with no mutual inductance between them. Calculate the total inductance of the parallel combination in millihenries.
  • 6. Inductor Circuit in Series and In Parallel We'll now do an inductor circuit in which inductors are both in series and in parallel in the same circuit. Below is a circuit which has inductors in both series and parallel: So how do we add them to find the total inductance value? First, we can start by finding the resistance of the resistors in series. In the first branch, containing the 20H and 40H inductors, the series resistance is 60H. And in the second branch, containing the 30H and 60H inductors, the series inductance is 90H. Now in total, the circuit has 3 inductances in parallel, 10H, 60H, and 90h. Now, we plug these 3 values into the parallel inductance formula and we get a total inductance of 7.83H. If you want to test the above series and parallel connections out practically, get 1mH inductor or whatever inductors you have, but let them be of the same value. In this example, I'll stick with 2 1mH inductors. Take the inductors and place them in series. Now take a multimeter and place the multimeter in the inductance setting (if available) and place the probes over the 2 inductors You should read just about 2mH, which is double the value of both inductors. This proves that inductors add when connected in series. Now place the inductors in parallel. Take the multimeter probes and place one end on one side of a inductor (either one) and place the other probe on the other side of that inductor. You should now read about 0.5mH, or half the value, because inductance decreases in parallel. This is a practical, real-life test you can do to show how inductors add.
  • 7. Energy Stored in an Inductor Suppose that an inductor of inductance is connected to a variable DC voltage supply. The supply is adjusted so as to increase the current flowing through the inductor from zero to some final value . As the current through the inductor is ramped up, an emf is generated, which acts to oppose the increase in the current. Clearly, work must be done against this emf by the voltage source in order to establish the current in the inductor. The work done by the voltage source during a time interval is (247) Here, is the instantaneous rate at which the voltage source performs work. To find the total work done in establishing the final current in the inductor, we must integrate the above expression. Thus, (248) giving (249) This energy is actually stored in the magnetic field generated by the current flowing through the inductor. In a pure inductor, the energy is stored without loss, and is returned to the rest of the circuit when the current through the inductor is ramped down, and its associated magnetic field collapses. Consider a simple solenoid. Equations (244), (246), and (249) can be combined to give (250)
  • 8. which reduces to (251) This represents the energy stored in the magnetic field of the solenoid. However, the volume of the field-filled core of the solenoid is , so the magnetic energy density (i.e., the energy per unit volume) inside the solenoid is , or Mutual Inductance In the previous tutorial we saw that an inductor generates an induced emf within itself as a result of the changing magnetic field around its own turns. When this emf is induced in the same circuit in which the current is changing this effect is called Self-induction, ( L ). However, when the emf is induced into an adjacent coil situated within the same magnetic field, the emf is said to be induced magnetically, inductively or by Mutual induction, symbol ( M ). Then when two or more coils are magnetically linked together by a common magnetic flux they are said to have the property of Mutual Inductance. Mutual Inductance is the basic operating principal of the transformer, motors, generators and any other electrical component that interacts with another magnetic field. Then we can define mutual induction as the current flowing in one coil that induces an voltage in an adjacent coil. But mutual inductance can also be a bad thing as “stray” or “leakage” inductance from a coil can interfere with the operation of another adjacent component by means of electromagnetic induction, so some form of electrical screening to a ground potential may be required. The amount of mutual inductance that links one coil to another depends very much on the relative positioning of the two coils. If one coil is positioned next to the other coil so that their
  • 9. physical distance apart is small, then nearly all of the magnetic flux generated by the first coil will interact with the coil turns of the second coil inducing a relatively large emf and therefore producing a large mutual inductance value. Likewise, if the two coils are farther apart from each other or at different angles, the amount of induced magnetic flux from the first coil into the second will be weaker producing a much smaller induced emf and therefore a much smaller mutual inductance value. So the effect of mutual inductance is very much dependant upon the relative positions or spacing, ( S ) of the two coils and this is demonstrated below. Mutual Inductance between Coils The mutual inductance that exists between the two coils can be greatly increased by positioning them on a common soft iron core or by increasing the number of turns of either coil as would be found in a transformer. If the two coils are tightly wound one on top of the other over a common soft iron core unity coupling is said to exist between them as any losses due to the leakage of flux will be extremely small. Then assuming a perfect flux linkage between the two coils the mutual inductance that exists between them can be given as.  Where:  µo is the permeability of free space (4.π.10-7)  µr is the relative permeability of the soft iron core
  • 10.  N is in the number of coil turns  A is in the cross-sectional area in m2  l is the coils length in meters Mutual Induction Here the current flowing in coil one, L1 sets up a magnetic field around itself with some of these magnetic field lines passing through coil two, L2 giving us mutual inductance. Coil one has a current of I1 and N1 turns while, coil two has N2 turns. Therefore, the mutual inductance, M12 of coil two that exists with respect to coil one depends on their position with respect to each other and is given as: Likewise, the flux linking coil one, L1 when a current flows around coil two, L2 is exactly the same as the flux linking coil two when the same current flows around coil one above, then the mutual inductance of coil one with respect of coil two is defined as M21. This mutual inductance is true irrespective of the size, number of turns, relative position or orientation of the two coils. Because of this, we can write the mutual inductance between the two coils as: M12 = M21 = M. Then we can see that self inductance characterises an inductor as a single circuit element, while mutual inductance signifies some form of magnetic coupling between two inductors or coils, depending on their distance and arrangement, an hopefully we remember from our tutorials on Electromagnets that the self inductance of each individual coil is given as: and By cross-multiplying the two equations above, the mutual inductance, M that exists between the two coils can be expressed in terms of the self inductance of each coil.
  • 11. giving us a final and more common expression for the mutual inductance between the two coils of: Mutual Inductance Between Coils However, the above equation assumes zero flux leakage and 100% magnetic coupling between the two coils, L 1 and L 2. In reality there will always be some loss due to leakage and position, so the magnetic coupling between the two coils can never reach or exceed 100%, but can become very close to this value in some special inductive coils. If some of the total magnetic flux links with the two coils, this amount of flux linkage can be defined as a fraction of the total possible flux linkage between the coils. This fractional value is called the coefficient of coupling and is given the letter k.