by Dayhead » Thu Aug 18, 2016 11:18 am
Thanks for chiming in Kai. At this point in time, I'm "imagineering" the BNG, just thinking things thru, and making rough sketches on a dry-erase board.
So far as pitch stability and the tuck/tumbling phenomenon go, My plan is to have the decalage, or the difference between wing incidence and tail incidence, variable by the pilot. While a positive pitching moment is desirable, it is possible to have too much of a good thing; witness trying to launch a Falcon-type of glider when it's blowin' in really good. I want to be able to easily control pitch even in strong winds.
One approach to the tuck and tumble thing is to provide a bunch of nose-up moment at low alpha. Way back in the '70's this was the method we chose. I do find myself wondering if just maybe we should try reducing the glider's tendency to nose down when the AoA get's really high. If that can be done it's possible we could reduce tucking episodes, which in turn would reduce tumbling accidents.
But for sake of argument let's say that tucking and tumbling are just a fact of life, and there's little we can do about it, other than the "long tail boom" solution.
If that's the case, then we should look at what happens in a tuck and tumble, and figure out a way to make a glider that can tumble and fly out of it, without suffering any significant damage. How was Witold Kasper able to perform intentional tumbles with his swept-aft flying wing at air shows? Our present tech isn't working very well here. It seems like almost every time a topless blade wing tucks and tumbles, the pilot is flung violently around, loses his grip on the bar, then hits the glider, which in turn either explodes or simply folds in half.
The answer, IMO, is to severely restrict the pilot's ability to get thrown out of position. If he can stay in place and not get tossed all the way around the trailing edge and on top of the glider, then the CG wouldn't go extremely aft and work to sustain the tumble.
So the BNG will have a pilot positioning system that will ensure that the CG can only go just so far aft as is necessary for normal operations, such as landing. And the pilot will never be able to move too far away from the control bar or whatever is used for control.
Although it will be possible to full-flare the BNG for foot landings, I know that I personally will be landing on large diameter wheels. My goal is for a glider that will stall appreciably slower than most current Hg's, and when combined with a really excellent glide angle control system, will enable me to safely land in very small areas. The biggest hurdle will likely be my requirement that the glider be fully controllable even when stalled. That goal may prove elusive, but any improvement over what we have now will be appreciated. The idea is simply to reduce to an absolute minimum those scenarios where a pilot is low and slow and gets involuntarily turned off course, whacks and damages his glider and quite possibly his body as well.
We're always saying things like "Don't launch in conditions you wouldn't want to land in", even though we do it anyway. So we constantly find ourselves coming in to land at 2:00 on a Hot Summer Day, with flags and streamers arguing with each other about which the wind is blowing, and dust devils and whatever else plotting against us.
I want "Right Now" control of my flying apparatus. Of course there will always be a limit to what we can handle, but that limit shouldn't be as low as it is now.
There will be those that will defend the status quo, saying we should just suck it up and practice more, or attend some kind of clinic, and adapt ourselves to the equipment now available.
I say hogwash. The equipment should adapt to MY needs, not the other way around. I want to be the Master, not the Slave.
I've often referred to Hg as "athletic aviation". For people that are athletic, there doesn't seem to be much interest in trying a different path. And perhaps those folks don't need something else. But I'm ME and I'm not so athletically inclined, so I want to build a glider that even an all-thumbs guy with two left feet can safely enjoy Personal Flight.
As for the tail, I'm sketching out some variations on the theme presented to us in the form of the Aolus Hg from back in the early-mid eighties. That glider had minimal sweep and a bird-like tail built into the root area of the sail. My thinking is along those lines. I want very little, if any, sweep-back in the wing, primarily because I want a glider where wash-out has nothing to do with pitch stability. A swept-aft wing doesn't need a vertical fin or V-tail, but it does have to have a lot of torsional rigidity so that the washout will remain even under negative loads. I'm thinking a straight wing, with a pitch-neutral or slightly positive moment airfoil, will require minimal torsional strength. That should allow for a much lighter structure. Perhaps out at the extreme wing tip area a negative-moment rib could be used, that would allow the wing to washout under high loads and reduce the bending moment on the spar. I'll need every little trick there is to reach my weight goal, which right now I've set at 50#'s.
Some of my sketches have been of planforms having a few degrees of forward sweep. But for simplicity's sake I want the wing spar to be in a straight line, although the planform may end up with a little forward sweep. Straight-wing HG's have been built, but they were very sensitive to the CG location and easy to over-control in pitch. My thinking here is for a wing planform that will have a very long root chord length, enough so that the "overall length" of the glider would be similar to what you have if you measure from the trailing edge of the wingtips to the nose on a current design. This long root chord contains the tail, which can be hinged so that it can move upward and not have a problem with the terrain on the launch ramp. This would also allow the pilot to fully flare for landing, and as I mentioned earlier, could even reduce or eliminate the glider's desire to nose down sharply at high AoA, which may prove beneficial in reducing tucking incidents. If we reduce or eliminate the tuck we also reduce the tumbling. Not all tucking incidents are caused by a large negative pitching moment at high AoA, but it's my belief that most, if not all, of my tucks were inspired by a turbulence induced high AoA. "Fixed Washout", which is the way we've tackled the tucking/tumbling thing to date, is an "after the fact" solution. Reducing the nose-down moment that comes with high AoA is more of a preventative measure, as opposed to using a high positive moment to try and stop the tuck from tumbling. In truth there will be a combination of these techniques to improve safety in turbulence or in blown aerobatic maneuvers.
So far as my BNG goes, I'm trying to arrange a list of priorities for the design. My list will probably be similar to anyone else's, with the possible exception of the order in which performance is balanced against other desires. Number One is "user friendliness", where low weight and fast setup concerns will trump flat-glide-at-high-speed. I'm basically striving for a glider that will do everything a Pg can, without the baggage of poor penetration and susceptibility to becoming un-airworthy in mid-flight. I know my glider won't fold as small or be as light as a Pg, but if I can come up with a design that reduces the gap between Hg and Pg I will have succeeded.
I want my flying to be as stress free as I can make it. Should I desire an adrenaline rush, I'll merely roll to inverted and thermal upside down with you in a thermal. Now THAT would truly be COOL.