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Re: [TowerTalk] W6NL 40m Moxon

To: "'Joe Subich, W4TV'" <lists@subich.com>, <towertalk@contesting.com>
Subject: Re: [TowerTalk] W6NL 40m Moxon
From: "Hardy Landskov" <n7rt@cox.net>
Date: Sun, 10 Apr 2016 18:09:23 -0400
List-post: <towertalk@contesting.com">mailto:towertalk@contesting.com>
Hi All,
My 2 cents. I have seen the wind suddenly die--then change direction--then 
change again. It's like a box of chocolates....
N7RT/4

-----Original Message-----
From: TowerTalk [mailto:towertalk-bounces@contesting.com] On Behalf Of Joe 
Subich, W4TV
Sent: Sunday, April 10, 2016 7:56 AM
To: towertalk@contesting.com
Subject: Re: [TowerTalk] W6NL 40m Moxon



> I suppose with some trig you could figure the total projected area at 
> various wind angles. One going down and one going up. Would some angle 
> that gives equal projected area from each figure be the max?

You don't need to be concerned with equal areas.  The force (load) on the 
element will be broadside to the element and will vary with the angle of the 
wind to the element.  The force (load) on the boom will be broadside to the 
boom and vary with the angle of the wind to the boom.  Those forces add as a 
vector sum which is maximized when the wind is at 45 degrees to the 
boom/elements.

The area of largest force is:
    sin(45) * (2.88 + 2.76) + cos(45) * (3.67 + 1.24 + 1.20)
  = 0.707 * (5.64) + 0.707 * (6.11)
  = 8.31 sq. ft.

The boom value will need to be increased somewhat to account for a boom to mast 
plate and the element values increased to account for element mounting 
hardware, particularly if the original U channel is used.  I'd allow between 
8.5 and 9 sq. ft in any tower/mast loading calculation.

73,

    ... Joe, W4TV


On 4/10/2016 12:51 AM, Ken K6MR wrote:
> I’ve wondered this myself but never bothered to model it. Here are some rough 
> figures from Yagi Stress:
>
> Reflector element without the tee: 2.88 sq ft.
> Driven element without the tee: 2.76 sq. ft.
>
> Reflector tee (each): 0.62 sq. ft.
> Driven tee (each) 0.60 sq. ft.
>
> Boom: 3.67 sq. ft.
>
> Now the hard part: how do they add? I’m an EE so my logic may be totally 
> flawed. YS doesn’t allow for the tees in a single model so I can’t have it do 
> everything at once.
> Since the tees are parallel with the boom, I would think you would just add 
> the area of the tees to the area of the boom which should be the projected 
> area with the wind blowing 90 degrees to the antenna.
> That would give 6.11 sq. ft. for that case. Wind straight on would be just 
> the elements: 5.64 sq. ft.
>
> I suppose with some trig you could figure the total projected area at various 
> wind angles. One going down and one going up. Would some angle that gives 
> equal projected area from each figure be the max?
>
> My first one is built from scratch and mounted to the side of the tower so I 
> wasn’t concerned with wind area. The XM240 is at the top of a mast so when I 
> convert that one I’ll have to be more careful.
>
> Ok you mechanical types: does this look reasonable??
>
> Ken K6MR
>
>
>
> From: Kevin Stover<mailto:kevin.stover@mediacombb.net>
> Sent: Friday, April 8, 2016 19:18
> To: towertalk@contesting.com<mailto:towertalk@contesting.com>
> Subject: [TowerTalk] W6NL 40m Moxon
>
> I need to figure out the wind area of the W6NL 40 Moxon antenna.
> The antenna starts like as a Cushcraft XM-240 which they say is 5.5 sqft.
> The Moxon is going to be more but how much? I'm guesstimating 8 sqft.
>
> --
> R. Kevin Stover
> AC0H
> ARRL
> FISTS #11993
> SKCC #215
> NAQCC #3441
>
>
> ---
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