‘Before making another boiler I obtained a quantity of copper
tubes, about 8 feet long, ⅜ inch external diameter, and 1/50 of an
inch thick. I subjected about 100 of these tubes to an internal
pressure of 1 ton per square inch of cold kerosene oil, and as
none of them leaked I did not test any more, but commenced my
experiments by placing some of them in a white-hot petroleum fire.
I found that I could evaporate as much as 26½ lbs. of water per
square foot of heating surface per hour, and that with a forced
circulation, although the quantity of water passing was very small
but positive, there was no danger of overheating. I conducted many
experiments with a pressure of over 400 lbs. per square inch,
but none of the tubes failed. I then mounted a single tube in a
white-hot furnace, also with a water circulation, and found that
it only burst under steam at a pressure of 1,650 lbs. per square
inch. A large boiler, having about 800 square feet of heating
surface, including the feed-water heater, was then constructed.
This boiler is about 4½ feet wide at the bottom, 8 feet long and
6 feet high. It weighs, with the casing, the dome, and the smoke
stack and connections, a little less than 1,000 lbs. The water
first passes through a system of small tubes--¼ inch in diameter
and 1/60 inch thick--which were placed at the top of the boiler
and immediately over the large tubes.... This feed-water heater is
found to be very effective. It utilises the heat of the products
of combustion after they have passed through the boiler proper and
greatly reduces their temperature, while the feed-water enters the
boiler at a temperature of about 250 F. A forced circulation is
maintained in the boiler, the feed-water entering through a spring
valve, the spring valve being adjusted in such a manner that the
pressure on the water is always 30 lbs. per square inch in excess
of the boiler pressure. This fall of 30 lbs. in pressure acts upon
the surrounding hot water which has already passed through the
tubes, and drives it down through a vertical outside tube, thus
ensuring a positive and rapid circulation through all the tubes.
This apparatus is found to act extremely well.’
Thus Maxim, who with this engine as power for his large aeroplane
achieved free flight once, as a matter of experiment, though for what
distance or time the machine was actually off the ground is matter for
debate, since it only got free by tearing up the rails which were to
have held it down in the experiment. Here, however, was a steam engine
which was practicable for use in the air, obviously, and only the rapid
success of the internal combustion engine prevented the steam-producing
type from being developed toward perfection.
Public-domain text, read in full here on John Shaqi.
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