British Airships, Past, Present, and FutureWhale, George
History
British Airships, Past, Present, and Future
Whale, George
Aircraft; Airships -- Britain -- History
Both the semi-rigid and the non-rigid have the very great advantage of
being easily deflated and packed up. In addition to the valves, these
ships have a ripping panel incorporated in the envelope which can
easily be torn away and allows the gas to escape with considerable
rapidity. Innumerable instances have occurred of ships being compelled
to land in out-of-the-way places owing to engine failure or other
reasons; they have been ripped and deflated and brought back to the
station without incurring any but the most trifling damage.
Experience in the war has proved that for military purposes the large
rigid, capable of long hours of endurances and the small non-rigid made
thoroughly reliable, are the most valuable types for future
development. The larger non-rigids, with the possible exception of the
North Sea, do not appear to be likely to fulfil any very useful
function.
Airship design introduces so many problems which are not met with in
the ordinary theory of structures, that a whole volume could easily be
devoted to the subject, and even then much valuable information would
have to be omitted from lack of space. It is, therefore, impossible,
in only a section of a chapter, to do more than indicate in the
briefest manner a few salient features concerning these problems. The
suspension of weights from the lightest possible gas compartment must
be based on the ordinary principles of calculating the distribution
loads as in ships and other structures. In the non-rigid, the envelope
being made of flexible fabric has, in itself, no rigidity whatsoever,
and its shape must be maintained by the internal pressure kept slightly
in excess of the pressure outside. Fabric is capable of resisting
tension, but is naturally not able to resist compression. If the car
was rigged beneath the centre of the envelope with vertical suspensions
it would tend to produce compression in the underside of the envelope,
owing to the load not being fully distributed. This would cause, in
practice, the centre portion of the envelope to sag downwards, while
the ends would have a tendency to rise. The principle which has been
found to be most satisfactory is to fix the points of suspension
distributed over the greatest length of envelope possible proportional
to the lift of gas at each section thus formed. From these points the
wires are led to the car. If the car is placed close to the envelope
it will be seen that the suspensions of necessity lie at a very flat
angle and exert a serious longitudinal compression. This must be
resisted by a high internal pressure, which demands a stouter fabric
for the envelope and, therefore, increased weight. It follows that the
tendency of the envelope to deform is decreased as the distance of the
car from the gas compartment is increased.
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