Anyone who knows electrical formula's, please help

[needmorestrength]

Hey, under Ohm's law, subsection Power I am trying to figure out a question.. Any help would be greatly appreciated.

"A 1/2 watt resistor has a resistance of 1000 ohms. What is hte maximum current it can handle?

[tonytone]

V = I R.........sorry, that's all i remember....i hate physics

[Rob]

I know the answer.

But since you wanted to go to Queens.

Do your own homework!

[symatech]

1/2 watt resistor? watts are J/s and resistors are measured in ohm meters. max current would be potential difference over resistance. I=V/R and R = p l/a which is the resistivity of the metal times the length over area. resistivity varies depending on what metal it is (provided it is ohmic). Is there anymore to the question? It's been awhile since I've done this stuff.

[symatech]

Ignore my last post I'm a little slow when I've been drinkin. so you know power is equal to the current squared times the resistance. essentailly P=I^2 R so I = sqrt(P/R) = sqrt(.5watt/1000 ohm) = .022 amps.

this could be wrong I don't know like I said it's been long time.

edit: I think i am wrong, just doesn't seem right. sorry man

[CRUISECONTROL]

wrong one just a minute

[CRUISECONTROL]

The voltage divider rule can be used with resistive, inductive, or capacitive circuit elements. It can also be used with AC or DC input sources. The equation for calculating the output voltage is different, however, depending on the type of circuit element. Following are the three general cases of two like elements connected in series:

Resistive divider:
The formula for determining the DC or AC output voltage of a resistive divider is:
Vout = Vin*R2/(R1+R2)
Example: In the following circuit, the output voltage would be: Vout = 9V*10K/(10K + 5K) = 6V

Inductive divider:
Inductive dividers can be used with AC input signals. A DC input voltage would split according to the relative resistances of the two inductors by using the resistive divider formula above. The formula for determining the AC output voltage of an inductive divider (provided the inductors are separate, i.e. not wound on the same core, and have no mutual inductance) is:
Vout = Vin*L2/(L1+L2)
Example: In the following circuit, the output voltage would be: Vout = 10VAC*50mH/(50mH + 100mH) = 3.33VAC. Note that the output voltage is not dependent on the input frequency. However, if the reactance of the inductors is not high at the frequency of operation (i.e. inductance not large enough), there will be a very large current drawn by the shunt element.


Capacitive divider:





Capacitive dividers can be used with AC input signals. A DC input voltage would not pass through the capacitors, so the DC case is not relevant. The formula for determining the AC output voltage of a capacitive divider is different from the resistive and inductive dividers, because the series element, C1 is in the numerator instead of the shunt element, as shown below:

Vout = Vin*C1/(C1+C2)
Example: In the following circuit, the output voltage would be: Vout = 10VAC*0.022uF/(0.022uF + 0.01uF) = 6.875VAC. Note that the output voltage is not dependent on the input frequency. However, if the reactance of the capacitors is not large at the frequency of interest (i.e. capacitance not large enough), the output current capability will be very low.





--------------------------------------------------------------------------------

Copyright © 1999, Randall Aiken. May not be reproduced in any form without written approval from Aiken Amplification.

Revised 01/01/00

[CRUISECONTROL]

Search: Lycos Angelfire Dating Search
Share This Page Report Abuse Build a Site Browse Sites
« Previous | Top 100 | Next »


Electrical & Electronics, Ohm's Law, Formulas & Equations



--------------------------------------------------------------------------------

OHM’S LAW CALCULATOR
VOLTS=Voltage, AMPS=Current, OHMS=Resistance, WATTS=Power
Give me any TWO numeric values and I'll give you all FOUR. Press the Ohm's Law button after you have made your entries: VOLTS AMPS OHMS WATTS




keywords = Ohms, Ohm’s Law, Volts, Amps, Current, Watts, Power, Calculator, Electricity, Electronics, Electrical, Equations, Formulas, Pi, Math, Henry, Bacon




FORMULAS, EQUATIONS & LAWS


Symbolic:

E =VOLTS ~or~ (V = VOLTS)
P =WATTS ~or~ (W = WATTS)
R = OHMS ~or~ (R = RESISTANCE)
I =AMPERES ~or~ (A = AMPERES)
HP = HORSEPOWER
PF = POWER FACTOR
kW = KILOWATTS
kWh = KILOWATT HOUR
VA = VOLT-AMPERES
kVA = KILOVOLT-AMPERES
C = CAPACITANCE
EFF = EFFICIENCY (expressed as a decimal)


DIRECT CURRENT

AMPS= WATTS÷VOLTS I = P ÷ E A = W ÷ V
WATTS= VOLTS x AMPS P = E x I W = V x A
VOLTS= WATTS ÷ AMPS E = P ÷ I V = W ÷ A
HORSEPOWER= (V x A x EFF)÷746
EFFICIENCY= (746 x HP)÷(V x A)
AC SINGLE PHASE ~ 1ø

AMPS= WATTS÷(VOLTS x PF) I=P÷(E x PF) A=W÷(V x PF)
WATTS= VOLTS x AMPS x PF P=E x I x PF W=V x A x PF
VOLTS= WATTS÷AMPS E=P÷I V=W÷A
VOLT-AMPS= VOLTS x AMPS VA=E x I VA=V x A
HORSEPOWER= (V x A x EFF x PF)÷746
POWERFACTOR= INPUT WATTS÷(V x A)
EFFICIENCY= (746 x HP)÷(V x A x PF)
AC THREE PHASE ~ 3ø

AMPS= WATTS÷(1.732 x VOLTS x PF) I = P÷(1.732 x E x PF)
WATTS= 1.732 x VOLTS x AMPS x PF P = 1.732 x E x I x PF
VOLTS= WATTS÷AMPS E=P÷I
VOLT-AMPS= 1.732 x VOLTS x AMPS VA=1.732 x E x I
HORSEPOWER= (1.732 x V x A x EFF x PF)÷746
POWERFACTOR= INPUT WATTS÷(1.732 x V x A)
EFFICIENCY= (746 x HP)÷(1.732 x V x A x PF)

Main Page & Introduction
Deca -Scientific Calculator, Conversion Charts, Industrial Math
Definitions & Terminology
Awards This Website Has Received


--------------------------------------------------------------------------------



--------------------------------------------------------------------------------

Please sign my Guestbook. Thank you!
Sign My Guestbook View My Guestbook




--------------------------------------------------------------------------------

--------------------------------------------------------------------------------



--------------------------------------------------------------------------------

Every effort is taken in order to maintain accuracy in the information contained within this web site. However, the author of this site shall not be held liable for the use of the information or of its consequences. Although all of the information is believed to be accurate you are encouraged to consult other sources for additional information or clarification. If you are a student your instructor may have very specific terminology that is required to be used for your particular field of study and therefore you should consult your textbooks and study notes for that information. It is my hope that this site will be both educational and beneficial to those of you who use it. I welcome your comments and suggestions in regards to this site. Thanks for visiting!

Henry J. Bacon

--------------------------------------------------------------------------------


Email: [email protected]

[Tock]

Hey, under Ohm's law, subsection Power I am trying to figure out a question.. Any help would be greatly appreciated.

"A 1/2 watt resistor has a resistance of 1000 ohms. What is hte maximum current it can handle?

P=IE (Power, in Watts, = current times the voltage)
E=IR (Voltage = current time the resistance)

So, substitute (IR) for the E in P=IE, and you get

P=I(IR)

If P=.5 watts
If R=1000

then .5=I(I*1000)

divide both sides by 1000, and you get

.5
---- = I squared
1000

or,

1
---- = I squared
2000

or

.0005 = I squared

take the square root of both sides, and you get

.022 = I

So, the current would be .022 amps, or 22 milliamps.


What do I win? It's been 25 years since I screwed with this stuff . . .

If you have .022 amps flowing through a 1000 ohm resistor, what would the voltage be across it?

Well, E=IR,
so you'd multiply .022 by 1000, and you'd get 22 volts.

-Tock

[symatech]

hey that's what I gots!! except he's not looking for voltage he's looking for current. .022 amps. I hope you're right b/c that would mean I was right and because of whiskey and beer I like being right.

*sigh* i think it's time for bed, im almost drunk

[symatech]

no no NO!!! scratch that!.. I am drunk

[almostgone]

....As Tock and Sym stated P=I(IR)..
so, I=√P/R

Current = √.5w/1kΩ =.o223A= 22.3mA