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I don't see the original posting here on rec.radio.amateur, but there
are a few misconceptions in the followups which should be addressed. Lancer wrote: On Tue, 28 Jun 2005 19:13:35 GMT, james wrote: On Tue, 28 Jun 2005 18:31:58 GMT, Lancer wrote: To have the measured SWR change with coax length, means you have current flowing on the outside of the coax. Your coax then becomes part of the antenna, so changing its length is changing the antenna length. This would change the feedpoint impedance and the SWR. That's correct, except that coax loss will also cause the SWR to change with coax length. Loss will cause the SWR at the antenna (load) to always be greater than at the transmitter (source). Unless the line is carrying common mode currents that affect antenna impedance, changing coax length won't change the SWR, even if the antenna isn't matched. Again correct except for overlooking the effect of coax loss. But there's a real problem in communicating this. If you hook a 50 ohm SWR meter to the input of a 75 ohm, 300 ohm, or line of any impedance other than 50 ohms, the meter reading won't be the SWR on the transmission line. That can mislead people into thinking that the SWR is changing with line length when it actually isn't. ******** BS Common mode currents on the shield of coaxial cables do not alter the feed impedance. Repeat ofter me. Common mode currents on the shield of coaxial cables do not alter the feed impedance. Why repeat it if it isn't true? The explanation given by Lancer was correct. If you change the length of the antenna, the feedpoint impedance will change. When you have common mode current flowing on the feedline, the feedline is part of the antenna; changing its length is changing the antenna's length. The feed impedance of an antenna is solely determined by its physical length and any load impedances within the antenna structure. Load impedances can be stray capacitance with ground via metal objects within the near field of the antenna or even a building. You have to realize that a radiating feedline (one carrying common mode current) IS part of the antenna structure. The "Magic" of an electrical halfwave transmission line is at a precise frequency, the reflection of the load to the transmistter is equal to the characteristic impedance of the transmission line irregardless of what impedance it is terminated with. This is true only of a lossless line. If the load impedance isn't far from the line's characteristic impedance (i.e., the line's SWR is low), a small amount of loss won't make much difference. However, if the line SWR is high, even a small amount of loss can make a major change in the impedance seen at the line's input. The effect is to skew the impedance toward the line's Z0. Other lengths have the load impedance reflected back and transformed by the length of the coax. The coax then acts as a transformer. It will either step up or step down the impeadnace of the load depending on the load itself and the electrical length of the coax. It's a little more complicated than that. The line doesn't simply multiply or divide the impedance by a constant, like a transformer -- except in the special case of a quarter electrical wavelength line or odd multiples thereof. In other cases, the line does transform the impedance, but in a complex way in which the resistance and reactance are transformed by different factors. And reactance can be present at a line's input even when the load is purely resistive. A Smith chart is a good visual aid in seeing what happens. Assuming a lossless line, the impedance traverses a circle around the origin. The radius of the circle corresponds to the line's SWR. With the chart, you can see all the combinations of R and X which a given line can produce with a given load by changing its length. Incidentally, loss causes the impedance to spiral inward toward the origin as the line gets longer, showing how loss skews the input impedance toward Z0. All a tuner does is electrically lengthen or shoten the coax by introducing a lumped LC constant that helps present a resistive load to the transmitter. The SWR at the feedline does not change. By placing various different lengths of coax inline, you do the same thing a tuner does, add a lumped LC constant. As can be seen from the Smith chart, you can produce only particular combinations of R and X by changing the length of a line which has a given load impedance. Unless you're unusually lucky or have planned things carefully, none of these combinations will result in 50 + j0 ohms, the usual goal, at the line's input. In contrast, a tuner is able to adjust both R and X to produce, if designed right for the application, 50 + j0 for a wide range of load impedances. It requires at least two adjustable components to achieve an impedance match from an arbitrary load impedance, because there are two separate quantities, R and X or impedance magnitude and phase, which have to be adjusted. Changing the line length is only one adjustment, so it can't be guaranteed to provide a match. If you could also change the line's Z0, for example, or the length of a stub, you'd have two adjustments and you could guarantee a match providing you have enough adjustment range. james So thats all my tuner does, lengthen or shorten the coax? Are you sure about that? Rest assured, that's not all it does. Roy Lewallen, W7EL |