Does volt amps = watts?
- Thread starter 220/221
- Start date
- Status
72.5kv said:
Thanks???
If the phase angle (whatever that is) is not zero, is the difference between VA and watts significant?
I am installing some 120v plug mold in a commercial building and code says 90 volt amps per outlet. In this case is 90 VA equal to 90 watts? Does the voltage/phase figure into the unity power factor?
72.5kv
Senior Member
The plug mold is rated in VA because the power factor the load it may supply is unknown. power factor = watts/VA
EX. 1
A 90 Watt incandescent bulb has a power factor of 1. In this case, 90VA = 90Watts
Ex2
An electric motor 90VA with a power factor of .8: VA= 90 watts = 72. conductors suppling the load is size to carry the VA not only the Watts
EX. 1
A 90 Watt incandescent bulb has a power factor of 1. In this case, 90VA = 90Watts
Ex2
An electric motor 90VA with a power factor of .8: VA= 90 watts = 72. conductors suppling the load is size to carry the VA not only the Watts
Geoffrey Lyons
Member
Where do you get the power factor from? is it on specs of motor,device, etc.
nyerinfl
Senior Member
- Location
- Broward Co.
VA = Apparent Power
Watts = True Power
Ex. Line side of xfmr = apparent power (VA) expressed in kVA. The load side of xfmr would be true power (watts), which is the power actually being used, and not lost through the xfmr for various reasons. In the case of plug mold I wouldn't worry about it.
Watts = True Power
Ex. Line side of xfmr = apparent power (VA) expressed in kVA. The load side of xfmr would be true power (watts), which is the power actually being used, and not lost through the xfmr for various reasons. In the case of plug mold I wouldn't worry about it.
LarryFine
Master Electrician Electric Contractor Richmond VA
- Location
- Henrico County, VA
- Occupation
- Electrical Contractor
Here's a plain old English explanation.
Simply put, a wattmeter is an electric motor whose speed depends on both the voltage between line terminals and the current through the lines. The wattmeter actually responds to volts and amps (volt-amps), not watts.
Voltage peaks twice per cycle, and current peaks twice per cycle. A wattmeter measures power by simultaneously measuring the voltage and the current, and then 'calculates' the power consumed as what we call watts.
If the voltage and current peaks occur simultaneously, the volt-amps and watts are genuinely the same, but if there is a time difference between the two peaks, the wattmeter turns slower for a given amount of volt-amps.
However, in spite of a deceptively-low wattmeter reading, the power system must be sized to safely carry both peaks, whether they occur simultaneously or not. Since the voltage is a given, the current is really the variable.
The circuit must be designed for the voltage and the current. The insulation doesn't care what the current is (of properly-sized conductors, of course), and the (properly-insulated) conductor doesn't care what the voltage is.
Power companies and electricians alike must design the system components to safely carry the voltage and the current, not the power. Poor power-factor results in a system that must carry current not useable by the load.
To answer the OP directly, yes, for the sake of Plugmold, you can consider VA to equal wattage. Since voltage is considered to be a constant, amperage is the variable that must be accomodated. I hope this made some sense.
Simply put, a wattmeter is an electric motor whose speed depends on both the voltage between line terminals and the current through the lines. The wattmeter actually responds to volts and amps (volt-amps), not watts.
Voltage peaks twice per cycle, and current peaks twice per cycle. A wattmeter measures power by simultaneously measuring the voltage and the current, and then 'calculates' the power consumed as what we call watts.
If the voltage and current peaks occur simultaneously, the volt-amps and watts are genuinely the same, but if there is a time difference between the two peaks, the wattmeter turns slower for a given amount of volt-amps.
However, in spite of a deceptively-low wattmeter reading, the power system must be sized to safely carry both peaks, whether they occur simultaneously or not. Since the voltage is a given, the current is really the variable.
The circuit must be designed for the voltage and the current. The insulation doesn't care what the current is (of properly-sized conductors, of course), and the (properly-insulated) conductor doesn't care what the voltage is.
Power companies and electricians alike must design the system components to safely carry the voltage and the current, not the power. Poor power-factor results in a system that must carry current not useable by the load.
To answer the OP directly, yes, for the sake of Plugmold, you can consider VA to equal wattage. Since voltage is considered to be a constant, amperage is the variable that must be accomodated. I hope this made some sense.
winnie
Senior Member
- Location
- Springfield, MA, USA
- Occupation
- Electric motor research
A slightly different way to think about it. As best I can determine, the below is consistent with what Larry wrote above, just from a different perspective:
instantaneous volts * instantaneous amps = instantaneous watts
In an AC circuit, volts, amps and watts are constantly changing.
To describe these constantly changing values, we use 'RMS' measurements. RMS measurements are a type of average suited for measuring electrical quantities. (Side note: the most common meaning of the term "average" describes a specific mathematical operation, and RMS is _not_ that operation, so if you prefer, think of RMS as being analogous to "average", but for electrical measurements.)
RMS voltage is a useful measurement, because when you apply AC of X volts RMS to a resistor, you dissipate the same amount of power as applying DC of X volts to that resistor.
But like any averaging process, you are throwing away a bunch of information.
For 'pure resistive loads', RMS amps * RMS volts = average watts
For many loads, the above equation is not true.
So we use the term 'power factor' to describe the difference.
average watts = RMS amps * RMS voltage * PF
There are many reasons that a load could have a power factor, but what it boils down to is that voltage and current are not changing in lock step. Both a time difference between peak voltage and peak current, or a difference in _shape_ between voltage waveform and current waveform, can result in a power factor less than 1.
-Jon
instantaneous volts * instantaneous amps = instantaneous watts
In an AC circuit, volts, amps and watts are constantly changing.
To describe these constantly changing values, we use 'RMS' measurements. RMS measurements are a type of average suited for measuring electrical quantities. (Side note: the most common meaning of the term "average" describes a specific mathematical operation, and RMS is _not_ that operation, so if you prefer, think of RMS as being analogous to "average", but for electrical measurements.)
RMS voltage is a useful measurement, because when you apply AC of X volts RMS to a resistor, you dissipate the same amount of power as applying DC of X volts to that resistor.
But like any averaging process, you are throwing away a bunch of information.
For 'pure resistive loads', RMS amps * RMS volts = average watts
For many loads, the above equation is not true.
So we use the term 'power factor' to describe the difference.
average watts = RMS amps * RMS voltage * PF
There are many reasons that a load could have a power factor, but what it boils down to is that voltage and current are not changing in lock step. Both a time difference between peak voltage and peak current, or a difference in _shape_ between voltage waveform and current waveform, can result in a power factor less than 1.
-Jon
weressl
Esteemed Member
LarryFine said:
The simplest way to think of it is two people trying to pull a block of concrete, one guy is named Mr. Amperes and the other one is simply known as Volts. If they line up along a single line to pull, all their strength will be fully additive. when they are trying to pull in different directions, say Mr. Amperes is pulling toward 12 o'clock, but Volts is heading to 10 o'clock they each will need to exert more power than before and eventually will produce no movement regardless of the strength excerted when Mr Amperes tries to head toward 9 o'clock while Volts is pulling toward 3 o'clock.
crossman
Senior Member
- Location
- Southeast Texas
weressl said:
That is a worthwhile analogy. Another analogy is having the volts and amps pulling in the same direction, but at different times.
Example: Volts says "one two three PULL!" but Mr. Amps is kinda lagging behind snoozing. He thinks "Oh, I should pull now!" but Volts has gotten tired of pulling so he has already started slacking off as Mr. Amps starts to apply maximum force. Therefore, the peak pulls never match up to give full force.
This example actually works better for illustrating two currents out of phase such as can be found in LCR parallel circuits.
When either of the above analogies are used to illustrate power factor, they don't show that there are both positive and negative powers created which must be averaged in to get the Watts.
I like using sine wave graphs of voltage and current, with another graph of the power found by multiplying I with E at each instant in the cycle.
weressl
Esteemed Member
crossman said:
The analogy I've provided is the actual vector diagram that the sinewave trace is based on. The vector diagram is the representative of the rotating equipment that is generating the force/power. So you can actually place it over the picture of a generator to illustrate the rotating magnetic field. It is a very illustrative teaching model. I have it Copywrited.
fisherelectric
Senior Member
- Location
- Northern Va
Is it the characteristics of the load or the source that causes amps to lag volts or volts to lag amps in a circuit? Or a combination of both? This is the impedance of the circuit, right? How is impedance related to power factor...or am I way off base here?
crossman
Senior Member
- Location
- Southeast Texas
The characteristics of the load is what causes current to lead or lag the voltage. Inductive components cause current to lag the voltage. Capacitive components cause current to lead the voltage. And resistive loads leave the current in phase with the voltage.
Impedance is related to power factor in the following manner:
Series LCR circuits PF = R/Z
Parallel LCR circuits PF = Z/R
Impedance is related to power factor in the following manner:
Series LCR circuits PF = R/Z
Parallel LCR circuits PF = Z/R
brian john
Senior Member
- Location
- Kilmarnock, Va
- Occupation
- Retired after 52 years in the trade.
This should explain it adequately.
walkerj
Senior Member
- Location
- Baton Rouge
Is that REAL?!brian john said:This should explain it adequately.
weressl
Esteemed Member
walkerj said:
VAxPf-W? Yeah, it equals a big fat ZERO, and everybody knows that ZERO is an imaginary number, it is not REAL!
brian john
Senior Member
- Location
- Kilmarnock, Va
- Occupation
- Retired after 52 years in the trade.
Yeah they're mine had an additional blue line, but the state police had something to say about that. And as LAZ says I am nothing but a BIG "0" so they are fitting.
weressl
Esteemed Member
brian john said:
You could have used E instead of -
- Status