Calculating Wattage for Resistor in High Frequency Application?Resistor wattage?Resistor wattage for HDMI hackTLC5940NT + 12v 5050 led stripImprove Rise Time on 1Hz SignalDetermining the surge duration of a double exponential transient?Resistor surge ratingZero Crossing Detection of ~ 400 kHz Signal with MCUpower supply remote sense protection resistor value?calculating maximum sense speed of amplified phototransistor circuitMay I use a smaller wattage resistor as mosfet's gate driver for a very short time?
On a tidally locked planet, would time be quantized?
What is Cash Advance APR?
Is it possible to have a strip of cold climate in the middle of a planet?
Is it improper etiquette to ask your opponent what his/her rating is before the game?
Does an advisor owe his/her student anything? Will an advisor keep a PhD student only out of pity?
Should I stop contributing to retirement accounts?
It grows, but water kills it
"Spoil" vs "Ruin"
The IT department bottlenecks progress. How should I handle this?
Delivering sarcasm
Why can Carol Danvers change her suit colours in the first place?
Removing files under particular conditions (number of files, file age)
250 Floor Tower
What is the evidence for the "tyranny of the majority problem" in a direct democracy context?
Is it better practice to read straight from sheet music rather than memorize it?
How can Trident be so inexpensive? Will it orbit Triton or just do a (slow) flyby?
Should I outline or discovery write my stories?
Problem with TransformedDistribution
Pre-mixing cryogenic fuels and using only one fuel tank
Drawing ramified coverings with tikz
Why Shazam when there is already Superman?
Redundant comparison & "if" before assignment
How to indicate a cut out for a product window
Offered money to buy a house, seller is asking for more to cover gap between their listing and mortgage owed
Calculating Wattage for Resistor in High Frequency Application?
Resistor wattage?Resistor wattage for HDMI hackTLC5940NT + 12v 5050 led stripImprove Rise Time on 1Hz SignalDetermining the surge duration of a double exponential transient?Resistor surge ratingZero Crossing Detection of ~ 400 kHz Signal with MCUpower supply remote sense protection resistor value?calculating maximum sense speed of amplified phototransistor circuitMay I use a smaller wattage resistor as mosfet's gate driver for a very short time?
$begingroup$
I am making a MOSFET driving circuit.
Frequency : 400 kHz [50% duty cycle]
Gate voltage: 12 V
Total gate charge : 210 nC as per datasheet IRFP460
Rise time: 100 ns
[Q=I*t]
Current: 2.1 A
Gate resistor: V/I > 12/2.1 > 5.7 ohm
Peak power: I * I * R > 2.1 * 2.1 * 5.7 > 25.1370 W
Average power: [Peak Power/Frequency]: 25.1370/400000 > 0.0000628425 [Ws]
1 watt resistor is OK ?
resistors high-frequency
edited 3 hours ago
Transistor
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
$endgroup$
add a comment |
$begingroup$
I am making a MOSFET driving circuit.
Frequency : 400 kHz [50% duty cycle]
Gate voltage: 12 V
Total gate charge : 210 nC as per datasheet IRFP460
Rise time: 100 ns
[Q=I*t]
Current: 2.1 A
Gate resistor: V/I > 12/2.1 > 5.7 ohm
Peak power: I * I * R > 2.1 * 2.1 * 5.7 > 25.1370 W
Average power: [Peak Power/Frequency]: 25.1370/400000 > 0.0000628425 [Ws]
1 watt resistor is OK ?
resistors high-frequency
edited 3 hours ago
Transistor
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
$endgroup$
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago
add a comment |
$begingroup$
I am making a MOSFET driving circuit.
Frequency : 400 kHz [50% duty cycle]
Gate voltage: 12 V
Total gate charge : 210 nC as per datasheet IRFP460
Rise time: 100 ns
[Q=I*t]
Current: 2.1 A
Gate resistor: V/I > 12/2.1 > 5.7 ohm
Peak power: I * I * R > 2.1 * 2.1 * 5.7 > 25.1370 W
Average power: [Peak Power/Frequency]: 25.1370/400000 > 0.0000628425 [Ws]
1 watt resistor is OK ?
resistors high-frequency
edited 3 hours ago
Transistor
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
$endgroup$
I am making a MOSFET driving circuit.
Frequency : 400 kHz [50% duty cycle]
Gate voltage: 12 V
Total gate charge : 210 nC as per datasheet IRFP460
Rise time: 100 ns
[Q=I*t]
Current: 2.1 A
Gate resistor: V/I > 12/2.1 > 5.7 ohm
Peak power: I * I * R > 2.1 * 2.1 * 5.7 > 25.1370 W
Average power: [Peak Power/Frequency]: 25.1370/400000 > 0.0000628425 [Ws]
1 watt resistor is OK ?
resistors high-frequency
resistors high-frequency
edited 3 hours ago
Transistor
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
edited 3 hours ago
Transistor
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
edited 3 hours ago
Transistor
87.1k785189
edited 3 hours ago
Transistor
87.1k785189
edited 3 hours ago
Transistor
87.1k785189
87.1k785189
asked 3 hours ago
Israr SayedIsrar Sayed
204
asked 3 hours ago
Israr SayedIsrar Sayed
204
asked 3 hours ago
Israr SayedIsrar Sayed
204
204
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago
add a comment |
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago
add a comment |
1 Answer
1
active
oldest
votes
$begingroup$
Dividing the peak power by the frequency is not useful.
Instead, you would multiply it by the duty cycle. If you're dumping 25 W of power into the resistor for 2 × 100 ns out of every 2.5 µs. This would be an average power of
$$25 W cdotfrac2 cdot 100 ns2.5 mu s = 2 W$$
Clearly, your 1W resistor is not going to cut it!
However, the peak instantaneous power is not really a good estimate of the average power during the switching transient. A better estimate can be arrived at by considering the energy flow into and out of the gate capacitance.
For an R-C circuit, the energy dissipated in the resistor is basically equal to the energy that ends up on the capacitor. If your gate charge is 210 nC and your gate voltage is 12V, this represents
$$Energy = frac12cdot Charge cdot Voltage$$
$$0.5 cdot 210 nC cdot 12 V = 1.26 mu J$$
This is the energy you're dumping into the gate capacitance, and then dumping out again on every switching cycle. All of this energy gets dissipated in the gate resistor.
To get the average power, multiply the energy per cycle by the number of cycles per second, giving
$$1.26 mu J cdot 2 cdot 400 kHz = 1.088 W$$
Your 1W resistor would be running at its limit, with no margin. I would use a 2W resistor here.
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
$endgroup$
add a comment |
Your Answer
StackExchange.ifUsing("editor", function ()
return StackExchange.using("mathjaxEditing", function ()
StackExchange.MarkdownEditor.creationCallbacks.add(function (editor, postfix)
StackExchange.mathjaxEditing.prepareWmdForMathJax(editor, postfix, [["\$", "\$"]]);
);
);
, "mathjax-editing");
StackExchange.ifUsing("editor", function ()
return StackExchange.using("schematics", function ()
StackExchange.schematics.init();
);
, "cicuitlab");
StackExchange.ready(function()
var channelOptions =
tags: "".split(" "),
id: "135"
;
initTagRenderer("".split(" "), "".split(" "), channelOptions);
StackExchange.using("externalEditor", function()
// Have to fire editor after snippets, if snippets enabled
if (StackExchange.settings.snippets.snippetsEnabled)
StackExchange.using("snippets", function()
createEditor();
);
else
createEditor();
);
function createEditor()
StackExchange.prepareEditor(
heartbeatType: 'answer',
autoActivateHeartbeat: false,
convertImagesToLinks: false,
noModals: true,
showLowRepImageUploadWarning: true,
reputationToPostImages: null,
bindNavPrevention: true,
postfix: "",
imageUploader:
brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
allowUrls: true
,
onDemand: true,
discardSelector: ".discard-answer"
,immediatelyShowMarkdownHelp:true
);
);
Sign up or log in
StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
var $window = $(window),
onScroll = function(e)
var $elem = $('.new-login-left'),
docViewTop = $window.scrollTop(),
docViewBottom = docViewTop + $window.height(),
elemTop = $elem.offset().top,
elemBottom = elemTop + $elem.height();
if ((docViewTop elemBottom))
StackExchange.using('gps', function() StackExchange.gps.track('embedded_signup_form.view', location: 'question_page' ); );
$window.unbind('scroll', onScroll);
;
$window.on('scroll', onScroll);
);
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
StackExchange.ready(
function ()
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2felectronics.stackexchange.com%2fquestions%2f428730%2fcalculating-wattage-for-resistor-in-high-frequency-application%23new-answer', 'question_page');
);
Post as a guest
Required, but never shown
1 Answer
1
active
oldest
votes
1 Answer
1
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
Dividing the peak power by the frequency is not useful.
Instead, you would multiply it by the duty cycle. If you're dumping 25 W of power into the resistor for 2 × 100 ns out of every 2.5 µs. This would be an average power of
$$25 W cdotfrac2 cdot 100 ns2.5 mu s = 2 W$$
Clearly, your 1W resistor is not going to cut it!
However, the peak instantaneous power is not really a good estimate of the average power during the switching transient. A better estimate can be arrived at by considering the energy flow into and out of the gate capacitance.
For an R-C circuit, the energy dissipated in the resistor is basically equal to the energy that ends up on the capacitor. If your gate charge is 210 nC and your gate voltage is 12V, this represents
$$Energy = frac12cdot Charge cdot Voltage$$
$$0.5 cdot 210 nC cdot 12 V = 1.26 mu J$$
This is the energy you're dumping into the gate capacitance, and then dumping out again on every switching cycle. All of this energy gets dissipated in the gate resistor.
To get the average power, multiply the energy per cycle by the number of cycles per second, giving
$$1.26 mu J cdot 2 cdot 400 kHz = 1.088 W$$
Your 1W resistor would be running at its limit, with no margin. I would use a 2W resistor here.
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
$endgroup$
add a comment |
$begingroup$
Dividing the peak power by the frequency is not useful.
Instead, you would multiply it by the duty cycle. If you're dumping 25 W of power into the resistor for 2 × 100 ns out of every 2.5 µs. This would be an average power of
$$25 W cdotfrac2 cdot 100 ns2.5 mu s = 2 W$$
Clearly, your 1W resistor is not going to cut it!
However, the peak instantaneous power is not really a good estimate of the average power during the switching transient. A better estimate can be arrived at by considering the energy flow into and out of the gate capacitance.
For an R-C circuit, the energy dissipated in the resistor is basically equal to the energy that ends up on the capacitor. If your gate charge is 210 nC and your gate voltage is 12V, this represents
$$Energy = frac12cdot Charge cdot Voltage$$
$$0.5 cdot 210 nC cdot 12 V = 1.26 mu J$$
This is the energy you're dumping into the gate capacitance, and then dumping out again on every switching cycle. All of this energy gets dissipated in the gate resistor.
To get the average power, multiply the energy per cycle by the number of cycles per second, giving
$$1.26 mu J cdot 2 cdot 400 kHz = 1.088 W$$
Your 1W resistor would be running at its limit, with no margin. I would use a 2W resistor here.
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
$endgroup$
add a comment |
$begingroup$
Dividing the peak power by the frequency is not useful.
Instead, you would multiply it by the duty cycle. If you're dumping 25 W of power into the resistor for 2 × 100 ns out of every 2.5 µs. This would be an average power of
$$25 W cdotfrac2 cdot 100 ns2.5 mu s = 2 W$$
Clearly, your 1W resistor is not going to cut it!
However, the peak instantaneous power is not really a good estimate of the average power during the switching transient. A better estimate can be arrived at by considering the energy flow into and out of the gate capacitance.
For an R-C circuit, the energy dissipated in the resistor is basically equal to the energy that ends up on the capacitor. If your gate charge is 210 nC and your gate voltage is 12V, this represents
$$Energy = frac12cdot Charge cdot Voltage$$
$$0.5 cdot 210 nC cdot 12 V = 1.26 mu J$$
This is the energy you're dumping into the gate capacitance, and then dumping out again on every switching cycle. All of this energy gets dissipated in the gate resistor.
To get the average power, multiply the energy per cycle by the number of cycles per second, giving
$$1.26 mu J cdot 2 cdot 400 kHz = 1.088 W$$
Your 1W resistor would be running at its limit, with no margin. I would use a 2W resistor here.
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
$endgroup$
Dividing the peak power by the frequency is not useful.
Instead, you would multiply it by the duty cycle. If you're dumping 25 W of power into the resistor for 2 × 100 ns out of every 2.5 µs. This would be an average power of
$$25 W cdotfrac2 cdot 100 ns2.5 mu s = 2 W$$
Clearly, your 1W resistor is not going to cut it!
However, the peak instantaneous power is not really a good estimate of the average power during the switching transient. A better estimate can be arrived at by considering the energy flow into and out of the gate capacitance.
For an R-C circuit, the energy dissipated in the resistor is basically equal to the energy that ends up on the capacitor. If your gate charge is 210 nC and your gate voltage is 12V, this represents
$$Energy = frac12cdot Charge cdot Voltage$$
$$0.5 cdot 210 nC cdot 12 V = 1.26 mu J$$
This is the energy you're dumping into the gate capacitance, and then dumping out again on every switching cycle. All of this energy gets dissipated in the gate resistor.
To get the average power, multiply the energy per cycle by the number of cycles per second, giving
$$1.26 mu J cdot 2 cdot 400 kHz = 1.088 W$$
Your 1W resistor would be running at its limit, with no margin. I would use a 2W resistor here.
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
edited 2 hours ago
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
answered 3 hours ago
Dave Tweed♦Dave Tweed
122k9152263
122k9152263
add a comment |
add a comment |
Thanks for contributing an answer to Electrical Engineering Stack Exchange!
- Please be sure to answer the question. Provide details and share your research!
But avoid …
- Asking for help, clarification, or responding to other answers.
- Making statements based on opinion; back them up with references or personal experience.
Use MathJax to format equations. MathJax reference.
To learn more, see our tips on writing great answers.
Sign up or log in
StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
var $window = $(window),
onScroll = function(e)
var $elem = $('.new-login-left'),
docViewTop = $window.scrollTop(),
docViewBottom = docViewTop + $window.height(),
elemTop = $elem.offset().top,
elemBottom = elemTop + $elem.height();
if ((docViewTop elemBottom))
StackExchange.using('gps', function() StackExchange.gps.track('embedded_signup_form.view', location: 'question_page' ); );
$window.unbind('scroll', onScroll);
;
$window.on('scroll', onScroll);
);
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
StackExchange.ready(
function ()
StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2felectronics.stackexchange.com%2fquestions%2f428730%2fcalculating-wattage-for-resistor-in-high-frequency-application%23new-answer', 'question_page');
);
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
var $window = $(window),
onScroll = function(e)
var $elem = $('.new-login-left'),
docViewTop = $window.scrollTop(),
docViewBottom = docViewTop + $window.height(),
elemTop = $elem.offset().top,
elemBottom = elemTop + $elem.height();
if ((docViewTop elemBottom))
StackExchange.using('gps', function() StackExchange.gps.track('embedded_signup_form.view', location: 'question_page' ); );
$window.unbind('scroll', onScroll);
;
$window.on('scroll', onScroll);
);
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
var $window = $(window),
onScroll = function(e)
var $elem = $('.new-login-left'),
docViewTop = $window.scrollTop(),
docViewBottom = docViewTop + $window.height(),
elemTop = $elem.offset().top,
elemBottom = elemTop + $elem.height();
if ((docViewTop elemBottom))
StackExchange.using('gps', function() StackExchange.gps.track('embedded_signup_form.view', location: 'question_page' ); );
$window.unbind('scroll', onScroll);
;
$window.on('scroll', onScroll);
);
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Sign up or log in
StackExchange.ready(function ()
StackExchange.helpers.onClickDraftSave('#login-link');
var $window = $(window),
onScroll = function(e)
var $elem = $('.new-login-left'),
docViewTop = $window.scrollTop(),
docViewBottom = docViewTop + $window.height(),
elemTop = $elem.offset().top,
elemBottom = elemTop + $elem.height();
if ((docViewTop elemBottom))
StackExchange.using('gps', function() StackExchange.gps.track('embedded_signup_form.view', location: 'question_page' ); );
$window.unbind('scroll', onScroll);
;
$window.on('scroll', onScroll);
);
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Sign up using Google
Sign up using Facebook
Sign up using Email and Password
Post as a guest
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
Required, but never shown
$begingroup$
Dividing peak power by frequency doesn't make sense to me. As you say, the units are watt-seconds, not watts.
$endgroup$
– Elliot Alderson
3 hours ago