|
"Bill Turner" wrote in message ... On Fri, 3 Jun 2005 15:53:31 -0400, "Fred W4JLE" wrote: First, I would say that 1.7 to 1 is fine, leave it alone. It is what is expected. __________________________________________________ ____________ Fred is correct and you can prove it to your own satisfaction if you like: Place a field strength meter nearby, close enough so you can read the meter, and sweep your transmitter across the band. You will find your power output is remarkably constant whether the SWR is 1:1 or 1.7:1. There will be some variation of course, but when you find the bandwidth where it drops no more than about 90% or so, you can operate confidently anywhere in that region without worrying about SWR. Works for me. -- Bill, W6WRT Just a quick back-of-the-envelope calculation. SWR' = 1.7 or SWR" = 1.0 Let's assume worst case; all the reflected power is absorbed in the source. This is not necesssarily the case, but gives us the least signal strength in the high SWR case, SWR'. So then, comparing the two cases, the change in power to the load in db is 10*log(SWR'/SWR"). SWR'/SWR" = 1.7 2.3 db, barely detectable, worst case. So it's a question of how much reflected power can the rig tolerate as well. 73 H. NQ5H |
H. Adam Stevens, NQ5H wrote:
Just a quick back-of-the-envelope calculation. SWR' = 1.7 or SWR" = 1.0 Let's assume worst case; all the reflected power is absorbed in the source. This is not necesssarily the case, but gives us the least signal strength in the high SWR case, SWR'. So then, comparing the two cases, the change in power to the load in db is 10*log(SWR'/SWR"). SWR'/SWR" = 1.7 2.3 db, barely detectable, worst case. So it's a question of how much reflected power can the rig tolerate as well. That calculation completely baffles me. The ALC in my Icom rig keeps the forward power constant up to the point where it reduces power, at around 3:1 SWR. This is typical for commercial rigs. The rig delivers 100 watts to a 1:1 SWR load. (Techically, this really means a load which, if terminating a 50 ohm line, will produce 1:1 SWR on that line.) 1.7:1 SWR is a reverse/forward power ratio of 0.067. The ALC keeps the forward power at 100 watts, so with 1.7:1 SWR, the reverse power is 6.7 watts. The net power delivered to the load is 100 - 6.7 = 93.3 watts, or 0.3 dB, not 2.3 dB, less than the power delivered to a 1:1 load. Oh, and the "reverse power" isn't "absorbed in the source". Anyone interested in learning more about this might take a look at "Food for thought - Forward and Reverse Power.txt" at http://eznec.com/misc/food_for_thought/. Roy Lewallen, W7EL |
I would disagree with your statement about SWR being absorbed in the source.
The reflected wave is rereflected and aside from losses caused by the 2 way trip is reradiated. While your math is correct, your application in my opinion is incorrect. "H. Adam Stevens, NQ5H" wrote in message ... "Bill Turner" wrote in message ... On Fri, 3 Jun 2005 15:53:31 -0400, "Fred W4JLE" wrote: First, I would say that 1.7 to 1 is fine, leave it alone. It is what is expected. __________________________________________________ ____________ Fred is correct and you can prove it to your own satisfaction if you like: Place a field strength meter nearby, close enough so you can read the meter, and sweep your transmitter across the band. You will find your power output is remarkably constant whether the SWR is 1:1 or 1.7:1. There will be some variation of course, but when you find the bandwidth where it drops no more than about 90% or so, you can operate confidently anywhere in that region without worrying about SWR. Works for me. -- Bill, W6WRT Just a quick back-of-the-envelope calculation. SWR' = 1.7 or SWR" = 1.0 Let's assume worst case; all the reflected power is absorbed in the source. This is not necesssarily the case, but gives us the least signal strength in the high SWR case, SWR'. So then, comparing the two cases, the change in power to the load in db is 10*log(SWR'/SWR"). SWR'/SWR" = 1.7 2.3 db, barely detectable, worst case. So it's a question of how much reflected power can the rig tolerate as well. 73 H. NQ5H |
Fred W4JLE wrote:
I would disagree with your statement about SWR being absorbed in the source. The reflected wave is rereflected and aside from losses caused by the 2 way trip is reradiated. Reflected current flowing into the final amp can superpose in phase with the forward current and, without protection circuitry, cause the final amp to exceed its dissipation rating. Another possibility is when the reflected voltage superposes in phase with the forward voltage, and without protection circuitry, exceeds the voltage rating of the final. If all reflected power was always re-reflected, there would be no need for protection circuitry. The generated power is *defined* as the forward power minus the reflected power. That does NOT mean that the reflected power is 100% re-reflected. -- 73, Cecil http://www.qsl.net/w5dxp ----== Posted via Newsfeeds.Com - Unlimited-Uncensored-Secure Usenet News==---- http://www.newsfeeds.com The #1 Newsgroup Service in the World! 120,000+ Newsgroups ----= East and West-Coast Server Farms - Total Privacy via Encryption =---- |
On Sat, 4 Jun 2005 22:02:48 -0400, "Fred W4JLE"
wrote: I would disagree with your statement about SWR being absorbed in the source. The reflected wave is rereflected Hi Fred, I've seen this thesis offered before. I generally ask, since this is exactly the same thesis offered for a conjugate match offered by a tuner, and a tuner is used for this very purpose (rereflecting the mismatch), if the Transmitter already does it - What is the Tuner for? Why do you use a tuner? What is a match? Why would anyone seek to match a Transmitter to its load? 73's Richard Clark, KB7QHC |
Cecil, for every question, there are any number of answers if you refashion
the question. In this case the SWR was defined as !.7:1 "Cecil Moore" wrote in message ... Fred W4JLE wrote: I would disagree with your statement about SWR being absorbed in the source. The reflected wave is rereflected and aside from losses caused by the 2 way trip is reradiated. Reflected current flowing into the final amp can superpose in phase with the forward current and, without protection circuitry, cause the final amp to exceed its dissipation rating. Another possibility is when the reflected voltage superposes in phase with the forward voltage, and without protection circuitry, exceeds the voltage rating of the final. If all reflected power was always re-reflected, there would be no need for protection circuitry. The generated power is *defined* as the forward power minus the reflected power. That does NOT mean that the reflected power is 100% re-reflected. -- 73, Cecil http://www.qsl.net/w5dxp ----== Posted via Newsfeeds.Com - Unlimited-Uncensored-Secure Usenet News==---- http://www.newsfeeds.com The #1 Newsgroup Service in the World! 120,000+ Newsgroups ----= East and West-Coast Server Farms - Total Privacy via Encryption =---- |
You have created an all encompassing case from the original SWR of 1.7:1 No
tuner needed. Under these conditions, the amount of reflected energy radiated approaches Ivory Soap. "Richard Clark" wrote in message ... On Sat, 4 Jun 2005 22:02:48 -0400, "Fred W4JLE" wrote: I would disagree with your statement about SWR being absorbed in the source. The reflected wave is rereflected Hi Fred, I've seen this thesis offered before. I generally ask, since this is exactly the same thesis offered for a conjugate match offered by a tuner, and a tuner is used for this very purpose (rereflecting the mismatch), if the Transmitter already does it - What is the Tuner for? Why do you use a tuner? What is a match? Why would anyone seek to match a Transmitter to its load? 73's Richard Clark, KB7QHC |
On Sun, 5 Jun 2005 10:02:17 -0400, "Fred W4JLE"
wrote: You have created an all encompassing case from the original SWR of 1.7:1 Thanx Fred, No one has ever been able to answer when the Transmitter rereflects energy, why they need a tuner. 73's Richard Clark, KB7QHC |
Roy
Worst case. Get it? H. "Roy Lewallen" wrote in message ... H. Adam Stevens, NQ5H wrote: Just a quick back-of-the-envelope calculation. SWR' = 1.7 or SWR" = 1.0 Let's assume worst case; all the reflected power is absorbed in the source. This is not necesssarily the case, but gives us the least signal strength in the high SWR case, SWR'. So then, comparing the two cases, the change in power to the load in db is 10*log(SWR'/SWR"). SWR'/SWR" = 1.7 2.3 db, barely detectable, worst case. So it's a question of how much reflected power can the rig tolerate as well. That calculation completely baffles me. The ALC in my Icom rig keeps the forward power constant up to the point where it reduces power, at around 3:1 SWR. This is typical for commercial rigs. The rig delivers 100 watts to a 1:1 SWR load. (Techically, this really means a load which, if terminating a 50 ohm line, will produce 1:1 SWR on that line.) 1.7:1 SWR is a reverse/forward power ratio of 0.067. The ALC keeps the forward power at 100 watts, so with 1.7:1 SWR, the reverse power is 6.7 watts. The net power delivered to the load is 100 - 6.7 = 93.3 watts, or 0.3 dB, not 2.3 dB, less than the power delivered to a 1:1 load. Oh, and the "reverse power" isn't "absorbed in the source". Anyone interested in learning more about this might take a look at "Food for thought - Forward and Reverse Power.txt" at http://eznec.com/misc/food_for_thought/. Roy Lewallen, W7EL |
Like I said to Roy.
"Worst case." Get it? OF COURSE it isn't absorbed in the source. H. "Fred W4JLE" wrote in message ... I would disagree with your statement about SWR being absorbed in the source. The reflected wave is rereflected and aside from losses caused by the 2 way trip is reradiated. While your math is correct, your application in my opinion is incorrect. "H. Adam Stevens, NQ5H" wrote in message ... "Bill Turner" wrote in message ... On Fri, 3 Jun 2005 15:53:31 -0400, "Fred W4JLE" wrote: First, I would say that 1.7 to 1 is fine, leave it alone. It is what is expected. __________________________________________________ ____________ Fred is correct and you can prove it to your own satisfaction if you like: Place a field strength meter nearby, close enough so you can read the meter, and sweep your transmitter across the band. You will find your power output is remarkably constant whether the SWR is 1:1 or 1.7:1. There will be some variation of course, but when you find the bandwidth where it drops no more than about 90% or so, you can operate confidently anywhere in that region without worrying about SWR. Works for me. -- Bill, W6WRT Just a quick back-of-the-envelope calculation. SWR' = 1.7 or SWR" = 1.0 Let's assume worst case; all the reflected power is absorbed in the source. This is not necesssarily the case, but gives us the least signal strength in the high SWR case, SWR'. So then, comparing the two cases, the change in power to the load in db is 10*log(SWR'/SWR"). SWR'/SWR" = 1.7 2.3 db, barely detectable, worst case. So it's a question of how much reflected power can the rig tolerate as well. 73 H. NQ5H |
| All times are GMT +1. The time now is 03:57 AM. |
Powered by vBulletin® Copyright ©2000 - 2024, Jelsoft Enterprises Ltd.
RadioBanter.com