Physics 2102 Lecture 18: MON 05 OCT
Transcript of Physics 2102 Lecture 18: MON 05 OCT
Physics 2102 Lecture 18: MON 05 OCT
Current & Resistance II
Physics 2113 Jonathan Dowling
Georg Simon Ohm (1789-1854)
Resistance Is Futile!
The resistance is related to the potential we need to apply to a device to drive a given current through it. The larger the resistance, the larger the potential we need to drive the same current.
) (abbr. OhmAmpere
Volt [R] :Units Ω≡=
Georg Simon Ohm (1789-1854)
"a professor who preaches such heresies is unworthy to teach science.” Prussian minister of education 1830
iVR ≡ iRV
RVi == and : thereforeand
Ohm’s laws
Electrons are not “completely free to move” in a conductor. They move erratically, colliding with the nuclei all the time: this is what we call “resistance”. The mechanical analog is FRICTION.
Resistance is NOT Futile!
Devices specifically designed to have a constant value of R are called resistors, and symbolized by
�
i ≡ dqdt
= Cs
⎡ ⎣ ⎢
⎤ ⎦ ⎥ ≡ Ampere[ ] = A[ ]
These two devices could have the same resistance R, when measured on the outgoing metal leads. However, it is obvious that inside of them different things go on.
Metal “field lines”
resistivity: JEJE !!
ρρ == vectors,as or,
Resistivity is associated with a material, resistance with respect to a device constructed with the material. ρ
σ 1 :tyConductivi =
Example: A
L V
+ -
AiJ
LVE == ,
LAR
AiL
V==ρ
ALR ρ=
Makes sense! For a given material:
Longer → More resistanceWider → Less resistance
Resistivity ρ vs. Resistance R
( resistance: R=V/I )
�
ρ ≡ Ωm[ ] = Ohm ⋅meter[ ]
Fluid Flow: An Analogy for the PETEs!
• Amount of Water = Charge• Pressure = Potential = Voltage• Flow Rate = Current = AmpsThe pressure at the end of the hose represents voltage. The amount of water in the tank represents charge. The rate of flow gallons/minute out the hose represents current or amperage.
https://learn.sparkfun.com/tutorials/voltage-current-resistance-and-ohms-law
Fluid Flow: An Analogy for the PETEs!
• Amount of Water = Charge• Pressure = Voltage• Flow Rate = Current = Amps
https://learn.sparkfun.com/tutorials/voltage-current-resistance-and-ohms-law
ALR ρ=
Decrease hose width, decrease A, increase resistance R.
Increase hose length L, increase resistance R.
Put pebbles in the hose, increase resistivity ρ, increase resistance R.
26.4: Resistance and Resistivity:
The resistivity ρ of a resistor is defined as: The SI unit for ρ is Ω.m. The conductivity σ of a material is the reciprocal of its resistivity:
Put pebbles or a filter in the hose, increase resistivity ρ, increase resistance R.
26.4: Resistance and Resistivity, Calculating Resistance from Resistivity:
If the streamlines representing the current density are uniform throughout the wire, the electric field E and the current density J will be constant for all points within the wire.
Think pumping water through a long hose. It is easier if L is short and A is big (small R). It is harder if L is long or A is small (big R).
ICPP
The copper wire has radius r. What happens to the Resistance R if you:(a) Double the Length? (b) Double the Area? (c) Double the Radius?
R→ 2RR→ R / 2R→ R / 4
A = πr2
What happens to the Resistivity ρ if you:(a) Double the Length? (b) Double the Area? (c) Double the Radius?
ρ → ρρ → ρ
ρ → ρ
Step I: The resistivity ρ is the same (all three are copper). Find the Resistance R=ρL/A for each case:
Ra =ρLA
Rb =ρ 3L / 2( )A / 2( ) = 3ρL
ARc =
ρ L / 2( )A / 2( ) = ρL
A
Step II: Rank the current using V=iR or i=V/R with V constant!
Rb > Ra = Rc
ia = ic > ib Ranking is reversed since R is downstairs.
Example Two conductors are made of the same material and have the same length. Conductor A is a solid wire of diameter r=1.0mm. Conductor B is a hollow tube of outside diameter 2r=2.0mm and inside diameter r=1.0mm. What is the resistance ratio RA/RB, measured between their ends?
B A
AA=π r2
AB= π (2r)2 - πr2 =3πr2
R=ρL/A
RA/RB= AB/AA= 3
LA=LB=L Cancels
26.4: Resistance and Resistivity, Variation with Temperature:
The relation between temperature and resistivity for copper—and for metals in general—is fairly linear over a rather broad temperature range. For such linear relations we can write an empirical approximation that is good enough for most engineering purposes:
Resistivity and Temperature
• At what temperature would the resistance of a copper conductor be double its resistance at 20.0°C? • Does this same "doubling temperature" hold for all copper conductors, regardless of shape or size?
Resistivity depends on temperature: ρ = ρ0(1+α (T–T0) )
The resistance is related to the potential we need to apply to a device to drive a given current through it. The larger the resistance, the larger the potential we need to drive the same current.
) (abbr. OhmAmpere
Volt [R] :Units Ω≡=
Georg Simon Ohm (1789-1854)
"a professor who preaches such heresies is unworthy to teach science.” Prussian minister of education 1830
iVR ≡ iRV
RVi == and : thereforeand
Ohm’s laws
Devices specifically designed to have a constant value of R are called resistors, and symbolized by
Electrons are not “completely free to move” in a conductor. They move erratically, colliding with the nuclei all the time: this is what we call “resistance”. The mechanical analog is FRICTION.
Resistance is NOT Futile!
�
i ≡ dqdt
= Cs
⎡ ⎣ ⎢
⎤ ⎦ ⎥ ≡ Ampere[ ] = A[ ]
Current Density: J=i/A Units: [A/m2]
Resistance: R=ρL/A
A
L
A=πr2
Resitivity: ρ depends only on Material and Temperature. Units: [Ω•m]
Example An electrical cable consists of 105 strands of fine wire, each having r=2.35 Ω resistance. The same potential difference is applied between the ends of all the strands and results in a total current of 0.720 A. (a) What is the current in each strand? i=I/105=0.720A/105=[0.00686] A (b) What is the applied potential difference? V=ir=[0.016121] V (c) What is the resistance of the cable? R=V/I=[.0224 ] Ω
Example
A human being can be electrocuted if a current as small as i=100 mA passes near the heart. An electrician working with sweaty hands makes good contact with the two conductors he is holding. If his resistance is R=1500Ω, what might the fatal voltage be? (Ans: 150 V) Use: V=iR
b
a
Power in electrical circuitsA battery “pumps” charges through the resistor (or any device), by producing a potential difference V between points a and b. How much work does the battery do to move a small amount of charge dq from b to a?
dW = –dU = -dq×V = (dq/dt)×dt×V= iV×dtThe battery “power” is the work it does per unit time: P = dW/dt = iVP=iV is true for the battery pumping charges through any device. If the device follows Ohm’s law (i.e., it is a resistor), then V=iR or i=V/R and P = iV = i2R = V2/R
iVR ≡ iRV
RVi == and : thereforeand
Ohm’s laws
�
Units : R = VA⎡ ⎣ ⎢
⎤ ⎦ ⎥ ≡ Ω[ ] = Ohm[ ]
�
V = iR
Ohm’s Law and Power in Resistors
�
P = iV = i2R =V 2 /R
Units : P = Js[ ] = W[ ] = Watt[ ]
Power Dissipated by a Resistor:
Ohm’s Law
Watt? You Looking At!
Example, Rate of Energy Dissipation in a Wire Carrying Current:
ICPP: Why is this unwise??? P = iV = i2R =V 2 / RP = iV → 4P = (4i)VCurrent i increases by 4.House Circuit Breaker 3A.
i = P /V = 200W /120V = 1.67A→ 4P /V = 6.67A
P = iV= i2R=V 2 / R
(b) P = i2R→ 2i( )2 R = 4 i2R( ) = 4P(c) P =V 2 / R→V 2 / 2R( ) = 1
2 V2 / R( ) = 1
2 P(d) P = i2R→ i2 2R( ) = 2 i2R( ) = 2P
Pa = Pb > Pd > Pc(a) P =V 2 / R→ 2V( )2 / R = 4 V 2 / R( ) = 4P
ICPP: The figure here shows three cylindrical copper conductors along with their face areas and lengths. Rank them according to the power dissipated by them, greatest first, when the same potential difference V is placed across their lengths. P = iV = i2R =V 2 / R
Ra =ρLA
Rb =ρ3L / 2A / 2
= 3ρLA
= 3Ra Rc =ρL / 2A / 2
= ρLA
= Ra
Ra = Rc < Rb
Step I: The resistivity ρ is the same (all three are copper). Find the Resistance R=ρL/A for each case:
Step II: Rank the power using P=V2/R since V is same.
Pa = Pc > Pb Ranking is reversed since R is downstairs.
ExampleA P=1250 Watt radiant heater is constructed to operate at
V=115Volts. (a) What will be the current in the heater? (b) What is the resistance of the heating coil? (c) How much thermal energy is produced in 1.0 hr by the
heater?
• Formulas: P=i2R=V2/R; V=iR • Know P, V; need R to calculate current! • P=1250W; V=115V => R=V2/P=(115V)2/1250W=10.6 Ω • i=V/R= 115V/10.6 Ω=10.8 A • Energy? P=dU/dt => ΔU=P×Δt = 1250W × 3600 sec= 4.5 MJ = 1.250kW•hr
Example A 100 W lightbulb is plugged into a standard 120 V outlet. (a) What is the resistance of the bulb? (b) What is the current in the bulb? (c) How much does it cost per month to leave the light turned on
continuously? Assume electric energy costs 6¢/kW·h. (d) Is the resistance different when the bulb is turned off?
• Resistance: same as before, R=V2/P=144Ω • Current, same as before, i=V/R=0.83 A • We pay for energy used (kW h): U=Pt=0.1kW × (30× 24) h = 72 kW h => $4.32 • (d): Resistance should be the same, but it’s not: resistivity and resistance increase with temperature. When the bulb is turned off, it is colder than when it is turned on, so the resistance is lower.
�My House Has Two Front Porch Lights.Each Light Has a 100W Incandescent Bulb.The Lights Come on at Dusk and Go Off at Dawn.How Much Do these lights Cost Me Per Year?
Two 100W Bulbs @ 12 Hours Each = One 100W @ 24 Hours.P = 100W = 0.1kWT = 365 Days x 24 Hours/Day = 8670 HoursDemco Rate: D = 0.1797$/(kW×Hour) (From My Bill!)Cost = PxTxD = (0.1kW)x(8670 Hours)x(0.1797$/kW×Hour) = $157.42
I’m switching to white light LEDs!Nobel Prize 2014!
• Figure shows a person and a cow, each a radial distance D=60m from the point where lightning of current i=10kA strikes the ground. The current spreads through the ground uniformly over a hemisphere centered on the strike point. The person's feet are separated by radial distance Δrper=0.50m; the cow's front and rear hooves are separated by radial distance Δrcow=1.50m. The resistivity of the ground is ρgr=100 Ωm . The resistance both across the person, between left and right feet, and across the cow, between front and rear hooves, is R=4.00kΩ. (a) What is the current ip through the person? (b) What is the current ic through the cow? Recall that a current ≥ 100mA causes a heart attack and death.
•