Collier's New Encyclopedia

A complete general encyclopedia of 1921 — the world as it was understood just after the Great War, from Aachen to Zwingli, across twelve volumes and six thousand pages.

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Aeronautics (Science of artificial flying)

the science of artificial flying.

The first ventures into this field date back to 1783. They were based chiefly upon the discovery by Cavendish of hydrogen gas, and his demonstration that it was lighter than air. Scientists were quick to grasp the idea that if containers of sufficient size and light weight could be secured and filled with hydrogen they would ascend. The first experiments in balloons, however, were carried on without the use of hydrogen gas.

Stephen and Joseph Montgolfier, brothers, of Annonay, France, in 1783 made a paper balloon of a capacity of 700 cubic feet, which they fill from a fire beneath the bag. On June 5, 1783, this pioneer in aerial navigation rose to a height of a thousand feet. A little later, a French scientist, Charles, with Cavendish's discovery in mind, planned a balloon which should be filled with hydrogen gas instead of heated air.

The first obstacle encountered was the difficulty of creating a perfectly airtight envelope. This was overcome by the discovery by two brothers named Roberts, that a coating of dissolved rubber over silk fabric would prevent the hydrogen gas from escaping. The test of this new balloon was made on Aug. 20, 1783, and the bag as soon as liberated rose to a great height, but because of too great inflation of the gas split filled with heated air asunder and fell to the ground.

Hitherto the balloons had carried no passengers, but on Nov. 21, 1783, Pilâtre and the Marquis d'Arlandes sailed over the Seine and a large part of Paris in a balloon filled with heated air, remaining above the earth 25 minutes. A few days later, Dec. 1, an ascent was made by Messrs. Charles and Roberts in a balloon filled with hydrogen gas.

In the two years ensuing, many flights were made, the most notable of which was that of Blanchard, the Englishman, who, accompanied by an American, Dr.

AERONAUTICS Jeffries, crossed the English Channel from Dover and landed at Calais.

Up to this time ballooning had been carried on as an adventure or a sport.

Scientists intervened, and sought through this novel medium to ascertain scientific data that so far had been based only on conjecture. The first ascent with this object in view was made in 1804 from Paris. It was learned that as the balloon rose the air became drier and that at 23,000 feet the chemical composition of the air did not vary from that at the surface of the earth.

The two most notable ascents recorded were those made by Glaisher and Coxwell in September of 1862 and of Berson SPHERICAL BALLOON - UNITED STATES and Suring, July 31, 1901. In the former ascent it was claimed that a height of seven miles was reached, but this was not susceptible of proof, because at 29,- 000 feet Glaisher lost consciousness. The ascent continued until Coxwell, who was AERONAUTICS almost paralyzed, opened the valve with his teeth, and the balloon finally landed with both passengers safe. More reliable figures as to altitude were those recorded by Berson and Suring, when they ascended from Berlin to a height of 6.7 miles. This is the greatest height that has ever been attained by men in a balloon, although it was exceeded by Major Schroeder of America who reached an altitude of 33,113 feet in an airplane.

Within the last twenty-five years, many notable balloon flights have been recorded, some of them negotiated with great risk to the aerial adventurers. Up to the present century, the longest flight was that made by M. Goddard, who traveled the distance of 1,032 miles from Leipsic to Wilna in a little over twentyfour hours. In 1900 De la Vaulx covered the distance from Vincennes, France, to Korosticheff, Russia, 1,193 miles, in 35% hours. In 1912, Dubonnet and Dupont made a trip of 1,211 miles in the "Condor II." But a still longer flight was that of Rumpelmayer, who on March 24, 1913, completed a journey of 1,493 miles from Paris to the vicinity of Kharkoff, Russia. In America, Hawley and Post in the balloon "America" drifted 1,172 miles from St. Louis, landing in a dense Canadian forest.

The great defect of the globular balloon that was recognized almost from the date of its invention was its inability to be propelled or steered. The huge machine was wholly at the mercy of the winds. It could rise by lightening its load; it could descend by releasing its gas; but it could not choose its direction of flight. No goal except that of altitude could be achieved. The devices that were originally employed to supply this need were such as to almost provoke a smile. Blanchard, the English aeronaut, tried to use oars and a rudder, but failed.

Another device was the making of a large hole in the side of the balloon, through which the gas escaping was by reaction to force the balloon forward.

What doomed all these contrivances to failure in advance was the spherical shape of the balloon. The surface offered to the wind was too great to be overcome. It was only when the shape of the balloon was changed that propulsion and direction became possible.

The first dirigible balloon that could be called a success was the invention of Giffard, a Frenchman. He constructed a spindle-shaped bag that was 143 feet long, 39 feet in diameter, and had a capacity of 75,000 cubic feet. From beneath the bag hung a car that carried a 3-horse-power engine that drove a three-blade propeller at the rate of 110 AERONAUTICS turns a minute. A triangular sail at the dent of Paris, though of Brazilian birth, end served as a rudder. The first trip made notable advances in the development had only a relative success. as the strong of the dirigible and created a sensation AERONAUTICS "

A SPHERICAL BALLOON AND BALLOON SHED USED IN THE UNITED STATES ARMY wind was inimical to the experiment, but Giffard demonstrated that he could steer his craft readily and attain a speed of from six to ten feet a second. He had h solved the problem of directed and propelled aeronautical voyaging. His work ELEVATING PLANES,

ONE ON EACH SIDE OF BAG ABOUT 200 FT a little later by the ease and accuracy with which he circled the Eiffel Tower in Paris. In Germany, the famous aircraft that took its name from its indefatigable inventor, Count Zeppelin, was pushed to completion in 1900, RUDDER C-50 40F FUSELAGE TWO 120 H.P. UNION MOTORS SIX CYLINDERS EACH.

ONE ON EACH SIDE OF FUSELAGE UNITED STATES NAVY DIRIGIBLE, TYPE C was greatly improved on by a compatriot, but it was not until 1910 that the first Renard. In 1884 he built the airship "La France," which was a pronounced success. His motive power was electricity, furnished by a motor that weighed 220 pounds and had 9 horse power. In 1898 Santos-Dumont, a resia great passenger Zeppelin made its initial trip over Lake Constance and made aerial traveling a matter of ease and luxury and measurably of safety. Scientific study of temperatures at high altitudes has been facilitated. AERONAUTICS While the invention and perfecting of the balloon was a triumph of human ingenuity, it offered few of the difficulties that faced those who dreamed of navigating the air in a heavier-than-air machine. The very name seemed to defy the immutable law of gravitation. But the audacity of the idea acted as a stimurather than deterrent. centuries, men have tried to achieve the For seemingly impossible. In the time of the Renaissance, Leonardo da Vinci who did so many things and did them exa AERONAUTICS resented marked advances on anything before achieved, they fell short of real success. Both Maxim's and Adler's machines were wrecked at their first trial. Langley did somewhat better. Congress had appropriated $50,000 to further his invention.

He had constructed a tandem monoplane with 48 feet of wing spread engine was employed. His experiments and 52 feet in length. A 50-horsepower were carried on over the Potomac river, but at each of its two trials the machine was wrecked and thrown into the river.

THE FIRST WRIGHT BIPLANE cellently, sketched out several devices, which were however ineffective, because of the lack of the motor power that succeeding centuries have supplied. In the 19th century a great deal of attention was devoted to the subject in England. , Henson, Wenham and Stringfellow supplied illuminating ideas that were afterward utilized, and contributions were made by Pénaud and Mouillard in France. Only, however, with the approach of the 20th century did these theories and experiments begin to give a real promise of success. Otto Lilienthal, a German inventor, demonstrated the principles of passive flight, the value of the arched wings and the pressure of air upon the wings at various angles.

Had he not met with a fatal accident in 1896, he might have anticipated the Wrights. Pilcher, Chanute, and Montgomery elaborated and improved on Lilienthal's work. In the period between 1890 and 1903, aeroplanes were built by Langley in America, Ader in France, and Maxim in England, but though they rep- While the defective launching apparatus was chiefly responsible for the failure, there was a reaction in public interest, no more money was furnished by Congress , and the project was generally ridiculed.

It remained for the Wright brothers, two remarkable young men of Ohio, to achieve the actual mastery of the air in boyhood days, they had been obsessed by a heavier-than-air machine. During their the idea of flying, but their thoughts did not take a practical turn in that direction until 1896.

Then they gave themselves up to experiment and study, and in 1900 began to try to fly at Kitty Hawk, N. C., where the sand dunes and wide spaces gave them ample room for tests, Nearly three years passed, however, years of tremendous labor and concentrated thought and indomitable resolution. Then, on Dec. 17, 1903, they actually flew in a light glider fitted with a small motor.

Their first flights lasted only for from 12 to 59 seconds. But they had flownand the aeroplane was born. AERONAUTICS Even then they did not spread their success broadcast, and it was only in 1908, after five years more of hard work, that they made a flight in public. But such news travels fast, and the world of science and invention was immensely stirred by what was permitted to be known. A school of enthusiastic experimenters sprang up in France, and practical results were soon shown by Blériot, Farnam, Delagrange and others, who by applying what they had learned of the work of the Wrights, constructed machines that made actual flights. The AERONAUTICS greater load that it is able to carry. The monoplane has extreme speed because of its lightness and can climb more readily than the others, but its management demands proficiency and involves more hazardous risks. It is unexcelled for sport or racing, but its inability to carry heavy loads detracts from its practical value.

The biplane can adapt itself to almost any conditions of air and weather, and its strength and carrying capacity have made it the most popular type. The triplane is as yet little used, but it can be depended upon as a cargo and passen- A CURTISS FLYING-BOAT first officially recorded European aeroplane flight was made by Santos-Dumont in 1906. He flew a distance of 700 feet, remaining in the air for 21 seconds. In 1907 Farnam flew 2,500 feet in 52.5 seconds. In 1909, Blériot crossed the English Channel from Calais to Dover in 37 minutes. In 1908, the Wright brothers visited France and made flights of several hours' duration. They were showered with honors by the French Government and people. From that time on the art of flying took its place as an important factor in the world's life and progress. For the military history and uses of aeroplanes, see AVIATION IN THE WORLD WAR, below.

There are three leading types of planes in general use. The monoplane, as its name implies, has one plane surface; the biplane has two, one above the other, and is by far the most common; the triplane has three, and its value lies in the ger carrier because of its strength. A combination of aeroplane and boat is the hydroaeroplane, that can navigate either element. Some of them carry single floats and others double floats, for the purpose of alighting on the water.

Strength is a prime requisite in their construction, in order to enable them to withstand the buffeting of the waves.

The buoyancy of the floats, in order to insure safety from disaster, should be double the weight of the machine when it is loaded to capacity.

During the World War the attention of the world was engrossed by the great conflict, and there was little time or opportunity for spectacular or long-distance flights. But with the cessation of the struggle there came in quick succession a series of endurance and distance contests that broke all previous records in the history of aviation. A class of airmen had been developed to AERONAUTICS AERONAUTICS At times whom danger was a part of the day's They passed through alternate layers off their engine. There were periods when they did not know whether they were traveling in the customary way or upside down. They were at one time so near the surface of the sea that they work, and feats were attempted that of fog and cloud and snow. previously_would have daunted the most they had to climb out and chip the ice so near the surface of the sea that they daring. Prominent among these were off their engine. There were periods ing their machine landed nose down in first having crossed the ocean in a were traveling in the customary way or heavier than air machine fell to America. upside down. They were at one time a bog at Clifden, Ireland. The aviators On May 16, 1919, the United States injured. Alcock was knighted for his exploit and received the "Daily Mail" Trepassey Bay, Newfoundland, on the they plunged on, and the following mornfirst leg of a trip to Lisbon, Portugal. ing their machine landed nose down in It made the distance to Horta in the Azores, 1,200 miles, in 15 hours and 18 were badly shaken up, but not otherwise minutes. It reached Lisbon on May 27, injured. Alcock was knighted for his and then flew from there to Plymouth, exploit and received the "Daily Mail" England, making one stop at Ferrol, prize of $50,000. He was killed in an on May 31. The entire distance traveled airplane accident, while flying over AILERONS ELEVATOR CONTROL WIRES ELEVATORS TAIL PLANE RUDDER CONTROL UPPER WING BOTTOM AILERON ENGINE PROPELLER RUDDER WIRES LANDING WHEELS

THE FIRST NON-STOP FLIGHT ACROSS THE ATLANTIC DIAGRAM OF A BRITISH VICKERS-VIMY BIPLANE. AN AIRPLANE OF THIS TYPE MADE LANDING WHEELS was 3,925 nautical miles, and the total flying time was 57 hours and 16 minutes.

But while America won honors for the first crossing of the ocean, a flight that was still more sensational, because it involved no stop on the way and because the hazards attending it were greater, was that made by Captain John Alcock, of England, who with one companion flew from St. John's, Newfoundland, to Clifden, Ireland, a distance of 1,960 miles, in 16 hours and 12 minutes.

The trip was made in a Vickers-Vimy cause the hazards attending it were greater, was that made by Captain John trip was started on June 14, 1919, and from the beginning the conditions were the worst imaginable. The aviators had no light from sun or moon or stars.

The trip was made in a Vickers-Vimy biplane with a Rolls-Royce engine. The A notable attempt, that if it did not achieve success at least deserved it, was the flight of Hawker and Grieve. They a half hours and making about 1,100 started to cross the Atlantic in a Sopwith biplane May 18, 1919. The team flew from St. John's directly toward Ireland, but after traveling twelve and miles, the circulation system became Normandy in the December following.

See ALCOCK, SIR JOHN. were forced to were landed in England, where they clogged and they miles, the circulation system became clogged and they were forced to by a Danish steamer, and six days later had been given up as lost.

The first dirigible to cross the Atlantic had been given up as lost. was the British airship "R-34." This 11 R-34, BRITISH DIRIGIBLE THAT MADE THE FIRST BALLOON FLIGHT ACROSS THE ATLANTIC AERONAUTICS gigantic craft was 643 feet long, was driven by five engines of 275 horse power each and was capable of a speed of from 40 to 60 miles an hour. She left East Fortune, Scotland, on July 2, 1919, and landed at Mineola, N.Y., in 108 hours and 12 minutes flying time. The distance was 3,130 miles. Her return to England, July 9-12, was made in 74 hours AERONAUTICS tinental race, completing the round trip of 5,400 miles in 67 hours, 3 minutes and 40 seconds. In the spring of 1920, a successful flight was made by British aviators from Cairo to the Cape in Africa. On Dec. 10, 1919, Captain Ross Smith, an Australian aviator, landed at Port Darwin, Australia, thus winning the aeroplane race from London to Australia, FRAME STRUCTURE CONTAINS 19 GAS FILLED BALLONETS SILK COVER -639 FEET - - FORE GONDOLA CONTAINING NAVIGATION CABIN, ENGINE, WIRELESS.

R 34.

MIDSHIP ENGINE CARS CARRYING CAPACITY 30TONS FIVE 275 HORSE-POWER ENGINES FOUR GONDOLAS REAR GONDOLA TWO MOTORS GEARED TO ONE PROPELLER --- RUDDER DIAGRAM OF THE BRITISH DIRIGIBLE R-34 and 56 minutes. The total distance traveled in the round trip was 6,330 miles, and the time was 183 hours and 8 minutes.

Other notable events in aviation in America were the New York-Toronto air race and the trans-continental race from New York to San Francisco and return. In the first-named contest, the winner was Lieut. B. W. Maynard as regards actual net flying time. He averaged more than two miles a minute for the total distance of 1,042 miles.

The same aviator won the trans-convia India, which had been begun on Nov. 12. The altitude record was made by Major R. Schroeder of America, who rose to a height of 33,113 feet on Feb. 27, 1920.

Aerial mail service has been established in the United States between important cities, and regular cargo and passenger service is maintained by air from London to Paris, Rome to Milan, and from Berlin to various cities of Germany.

Aviation in the World War. - The conflict that convulsed the world for over four years differed from any that AERONAUTICS preceded it, in the use of aviation as an offensive and defensive arm of military service. The airplane had been demonstrated as really practicable for navigation of the air only since 1908, when the Wright brothers had given their tests in Paris. For some time after that, it was thought of chiefly in connection with sports, and realization of its great importance in war was slow in coming. Even when the military authorities of the various nations took the matter up, they thought of it a AERONAUTICS taking advantage of darkness for withdrawals and renewals of troops. Two notable failures of aerial observers occurred when the Germans were able to concentrate vast masses of men on Verdun sector in 1916 with the French generals all at sea as to the direction from which the attack was coming, and again when Hindenburg was able to withdraw his men from the Arras salient in March, 1917, without the Allied aviators having learned of the movement. The reasons for these A GERMAN "TAUBE" MONOPLANE chiefly as an aid in reconnoissance. It could go where human spies or scouts could not. No trenches or entanglements could hinder it from seeking out the location and movements of the enemy. But its enormous value for other work was apprehended dimly if at all. This was shown by the comparatively small number of planes possessed by the belligerents when the war started. Germany, the best equipped of all the warring nations in this respect, had not quite 1,000; England had only 250, and France had barely 200.

As a scout, the airplane may be said to have met expectations. The movehave met expectations. The movements and concentrations of the enemy were detected with a fair amount of success.

It was not wholly and always reliable, however, especially as the war progressed, and both sides grew expert in camouflaging their movements and occasional failures can be readily understood. The aviator has to fly so high to avoid attack from anti-aircraft guns, airmen, that his opportunities of obser. or so fast to escape the attack of enemy vation are lessened. A height of less than 10,000 feet was considered unsafe, as anti-aircraft guns developed in range and accuracy during the progress of the war. which must often be added unfavorable Under such conditions , to weather , accurate observation was often impossible. Still, with all these hanas a valuable observation arm of the dicaps the aerial service justified itself service.

The seaplane soaring in the air could At sea also its value was demonstrated. detect the wake of a submarine more readily than it could be seen from the deck of a vessel. The "mother ship," on which the seaplane could descend, AERONAUTICS from which it could rise, and where it could receive repairs and supplies, enabled them to opcrate a long distance off the coast and made them the "eyes of the fleet." They could give warning of the approach of a hostile squadron AERONAUTICS miles. He had time to study a suspicious thicket or clump of trees, and see whether it really marked a concealed gun position. He could keep constantly in touch with his batteries by telephone.

To be sure, his work was extremely

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