Information about Reginald Aubrey Fessenden

Reginald Fessenden (October 6, 1866July 22, 1932) was a Canadian inventor, best known for his work in early radio. Three of his most notable achievements include: the first audio transmission by radio (1900), the first two-way transatlantic radio transmission (1906), and the first radio broadcast of entertainment and music (1906).

Early years

Reginald Aubrey Fessenden was born October 6, 1866, in East Bolton, Quebec, Canada, the eldest of Elisha Joseph Fessenden and Clementina Trenholme Fessenden's four children. Elisha Fessenden was a priest of the Church of England in Canada, and through the years the family moved to a number of postings within the Province of Ontario. While growing up, Reginald was an accomplished student. In 1877, at the age of eleven, he attended Trinity College School in Port Hope, Ontario for two years. At the age of fourteen, Bishop's College School in Lennoxville, Quebec granted Fessenden a mathematics mastership. At this time, Bishop's College School was a feeder school of Bishop's University and shared the same campus and buildings. In June 1878, the school had an enrolment of only 43 boys. Thus, while Fessenden was only a teenager, he was teaching mathematics to the young children at the school while simultaneously studying with the older students at Bishop's University. Total enrolment at the university for the school year 1883-84 was twenty-five (all male) students. At the age of eighteen, Fessenden left Bishop's without having been awarded a degree, even though he had "done substantially all the work necessary". (This lack of a degree may have hurt Fessenden's employment opportunities—when McGill University established an electrical engineering department, Fessenden was turned down on an application to be the chairman, in favor of an American.)

The next two years he worked as the principal, and sole teacher, at the Whitney Institute in Bermuda. While there, he became engaged to Helen Trott—they married in September, 1890, and later had a son, Reginald Kennelly Fessenden.

Early work

Fessenden's classical education had provided him with only a limited amount of scientific and technical training. Interested in increasing his skills in the electrical field, he moved to New York City in 1886, with hopes of gaining employment with the famous inventor, Thomas Edison. As recounted in his 1925 Radio News autobiography, his initial attempts were rebuffed—in his first application, Fessenden wrote "Do not know anything about electricity, but can learn pretty quick", to which Edison replied "Have enough men now who do not know about electricity". However, Fessenden persevered, and before the end of the year was hired for a semi-skilled position as an assistant tester for the Edison Machine Works, which was laying underground electrical mains in New York City. He quickly proved his worth, and received a series of promotions, with increasing responsibility for the project. In late 1886, Fessenden began working directly for Edison at the inventor's new Laboratory at in West Orange, New Jersey. A broad range of projects included work in solving problems in chemistry, metallurgy, and electricity. However, in 1890, facing financial problems, Edison was forced to lay off most of the Laboratory employees, including Fessenden.

Taking advantage of his recent practical experience, Fessenden was able to find positions with a series of manufacturing companies. Next, in 1892, he received an appointment as professor for the newly formed Electrical Engineering department at Purdue University in West Lafayette, Indiana—while there he helped the Westinghouse Corporation install the lighting for the 1893 World Columbian Exposition in Chicago. Shortly thereafter, George Westinghouse personally recruited Fessenden for the newly created position of chair of the Electrical Engineering department at the Western University of Pennsylvania, the modern-day University of Pittsburgh.

Radio work

In the late 1890s, reports began to appear about the success Guglielmo Marconi was having in developing a practical radio transmitting and receiving system. Fessenden began limited radio experimentation, and soon came to the conclusion that he could develop a far more efficient system than the spark-gap transmitter and coherer-receiver combination which had been championed by Oliver Lodge and Marconi.

Weather Bureau contract and the first audio radio transmission

In 1900 Fessenden left the University of Pittsburgh to work for the United States Weather Bureau, with the objective of proving the practicality of using a network of coastal radio stations to transmit weather information, thus avoiding the need to use the existing telegraph lines. The contract gave the Weather Bureau access to any devices Fessenden invented, but he would retain ownership of his inventions. Fessenden quickly made major advances, especially in receiver design, as he worked to develop audio reception of signals. His initial success came from a barretter detector, which was followed by the electrolytic detector that consisted of a fine wire dipped in nitric acid, and for the next few years this later device would set the standard for sensitivity in radio reception. As his work progressed, Fessenden also evolved the heterodyne principle, which combined two signals to produce a third audible tone. However, heterodyne reception was not fully practical for a decade after it was invented, since it required a means for producing a stable local signal, which awaited the development of the oscillating vacuum-tube.

The initial work took place at Cobb Island, Maryland, located on the Potomac River about 80 kilometers (50 miles) downstream from Washington, DC. While there, Fessenden, experimenting with a high-frequency spark transmitter, successfully transmitted speech on December 23, 1900 over a distance of about 1.6 kilometers (one mile), which appears to have been the first audio radio transmission. At this time the sound quality was too distorted to be commercially practical, but as a test this did show that with further technical refinements it would become possible to transmit audio using radio signals.

As the experimentation expanded, additional stations were built along the Atlantic Coast in both North Carolina and Virginia. However, in the midst of promising advances, Fessenden became embroiled in disputes with his sponsor. In particular, he charged that Bureau Chief Willis Moore had attempted to gain a half-share of the patents — Fessenden refused to sign over the rights, and his work for the Weather Bureau ended in August, 1902. (This incident recalled F. O. J. Smith, a member of the House of Representatives from Maine, who had managed to gain a one-quarter interest in the Morse telegraph.)

Formation of NESCO

At this point, two wealthy Pittsburgh, Pennsylvania businessmen, Hay Walker, Jr., and Thomas H. Given, financed the formation of the National Electric Signaling Company (NESCO), to carry on Fessenden's research, including the development of both a high-power rotary-spark transmitter for long-distance radiotelegraph service, and a lower-powered continuous-wave alternator-transmitter, which could be used for both telegraphic and audio transmissions. Marshfield's Brant Rock, Massachusetts became the center of operations for the new company.

Rotary-spark transmitter and the first two-way transatlantic transmission

Enlarge picture
Photograph of Rotary Gap transmitter at Brant Rock, Ca 1906.
It was decided to try to establish a transatlantic radiotelegraph service, and, in January, 1906, employing his rotary-spark transmitters, Fessenden made the first successful two-way transatlantic transmission, exchanging Morse code messages between a station constructed at Brant Rock and an identical one built at Machrihanish in Scotland. (Marconi had only achieved one-way transmissions at this time.) However, the transmitters could not bridge this distance during daylight hours or in the summer, so work was suspended until later in the year. Then, on December 6, 1906, "owing to the carelessness of one of the contractors employed in shifting some of the supporting cables", the Machrihanish radio tower collapsed, abruptly ending the transatlantic work before it could ever go into commercial service.

Enlarge picture
Postcard image, from around 1910, of the 128 meter (420 foot) tall Brant Rock radio tower.

Alternator-transmitter and the first audio radio broadcast

The development of a rotary-spark transmitter was something of a stop-gap measure, to be used until a superior approach could be perfected. Fessenden felt that, ultimately, a continuous-wave transmitter—one that produced a pure sine-wave signal on a single frequency—would be far more efficient, particularly because it could be used for quality audio transmissions. His design idea was to take a basic electrical alternator, which normally operated at speeds that produced alternating current of at most a few hundred Hz, and greatly speed it up in order to create electrical currents at tens of kHz. Thus, the high-speed alternator would produce a steady radio signal when connected to an aerial. Then, by simply placing a carbon microphone in the transmission line, the strength of the signal could be varied in order to add sounds to the transmission—in other words, amplitude modulation would be used to impress audio on the radio frequency carrier wave. However, it would take many years of expensive development before even a prototype alternator-transmitter would be ready, and a few more years beyond that for high-power versions to become available.

Fessenden contracted with General Electric to help design and produce a series of high-frequency alternator-transmitters. In 1903, Charles Proteus Steinmetz of GE delivered a 10 kHz version which proved of limited use and could not be directly used as a radio transmitter. Fessenden's request for a faster, more powerful unit was assigned to E. F. W. Alexanderson, and in August, 1906 he delivered an improved model which operated at a transmitting frequency of approximately 50 kHz, although with far less power than Fessenden's rotary-spark transmitters.

The alternator-transmitter achieved the goal of transmitting quality audio signals, but the lack of any way to amplify the signals meant they were somewhat weak. On December 21, 1906, Fessenden made an extensive demonstration of the new alternator-transmitter at Brant Rock, showing its utility for point-to-point wireless telephony, including interconnecting his stations to the wire telephone network. (A detailed review of this demonstration appeared in the The American Telephone Journal.) [1] A few days later, two additional demonstrations took place, which appear to be the first audio radio broadcasts of entertainment and music ever made to a general audience. (Beginning in 1904, the U.S. Navy had broadcast daily time signals and weather reports, but these employed spark transmitters, transmitting in Morse code). On the evening of December 24, 1906 (Christmas Eve), Fessenden used the alternator-transmitter to send out a short program from Brant Rock, which included his playing the song O Holy Night on the violin and reading a passage from the Bible. On December 31, New Year's Eve, a second short program was broadcast. The main audience for both these transmissions was an unknown number of shipboard radio operators along the Atlantic Coast. Although now seen as a landmark, these two broadcasts were barely noticed at the time and soon forgotten—the only first-hand account appears to be a letter Fessenden wrote on January 29, 1932 to his former associate, Samuel M. Kinter. There are no known accounts in any ships radio logs, nor any contemporary literature, of the reported holiday demonstrations. In addition, Fessenden does not appear to have made any additional broadcasts intended for a general audience, and was actually promoting the alternator-transmitter as ideal for point-to-point wireless telephone service. Still, in retrospect, it was an important glimpse of the future of radio. (Although primarily designed for transmissions spanning a few kilometers, on a couple of occasions the test Brant Rock audio transmissions were apparently overheard by NESCO employee James C. Armor across the Atlantic at the Machrihanish site).

Continuing work and dismissal from NESCO

The technical achievements made by Fessenden were not matched by financial success. Walker and Given had hoped to sell NESCO to a larger company such as the American Telephone & Telegraph Company, but were unable to find a buyer. Fessenden's formation of the Fessenden Wireless Company of Canada in Montreal in 1906 may have led to suspicion that he was trying to freeze Walker and Given out of a potentially lucrative competing transatlantic service. There were growing strains between Fessenden and the company owners, and finally Fessenden was dismissed from NESCO in January of 1911. He in turn brought suit against NESCO for breach of contract. Fessenden won the initial court trial and was awarded damages, however, NESCO prevailed on appeal. To conserve assets, NESCO went into receivership in 1912, and Samuel Kintner was appointed general manager of the company—the legal stalemate would continue for over 15 years. In 1917, NESCO finally emerged from receivership, and was soon renamed the International Radio Telegraph Company. The company was sold to Westinghouse in 1920, and the next year its assets, including numerous important Fessenden patents, were sold to the Radio Corporation of America, which also inherited the Fessenden legal proceedings. Finally, on March 1, 1928, Fessenden settled his outstanding lawsuits with RCA, receiving a large cash payment.

Ongoing influence

After Fessenden left NESCO, E. F. W. Alexanderson continued to work on alternator-transmitter development at GE, mostly for long range radiotelegraph use. It took many years, but he eventually developed the high-powered Alexanderson alternator capable of transmitting across the Atlantic, and by 1916 the Fessenden-Alexanderson alternator was more reliable for transatlantic communication than spark apparatus. Also, after 1920, audio radio broadcasting became widespread, using vacuum-tube transmitters rather than the alternator, but employing the continuous-wave AM signals that Fessenden had helped introduce in 1906. In 1921, the Institute of Radio Engineers presented Fessenden with its Medal of Honor, and the next year the City of Philadelphia awarded him a John Scott Medal and a cash prize of $800 for his invention in "Continuous Wave Telegraphy and Telephony", and recognized him as "One whose labors had been of great benefit".

Later years

Although Fessenden ceased radio activities after his dismissal from NESCO in 1911, he continued to work in other fields. As early as 1904 he had helped engineer the Niagara Falls power plant for the newly formed Hydro-Electric Power Commission of Ontario. However, his most extensive work was in developing a type of sonar system for submarines to signal each other, as well as a method for locating icebergs, to help avoid another disaster like the one that sank Titanic. At the outbreak of World War I, Fessenden volunteered his services to the Canadian government and was sent to London, England where he developed a device to detect enemy artillery and another to locate enemy submarines.

An inveterate tinkerer, Fessenden eventually became the holder of more than 500 patents. He could often be found in a river or lake, floating on his back, a cigar sticking out of his mouth and a hat pulled down over his eyes. At home he liked to lie on the carpet, a cat on his chest. In this state of relaxation, Fessenden could imagine, invent and think his way to new ideas, including a version of microfilm, that helped him to keep a compact record of his inventions, projects and patents. He patented the basic ideas leading to reflection seismology, a technique important for its use in exploring for petroleum. In 1915 he invented the fathometer, a sonar device used to determine the depth of water for a submerged object by means of sound waves, for which he won Scientific American's Gold Medal in 1929.

Death and afterwards

Enlarge picture
Although Fessenden's antenna in Brant Rock, Massachusetts was demolished in 1917, the insulated base on which it stood still survives. The layers of concrete were originally separated by arrays of ceramic insulators.
After settling his lawsuit with RCA, Fessenden purchased a small estate called "Wistowe" in Bermuda. He died there in 1932 and was interred in the cemetery of St Mark's Church on the island. An editorial in the New York Herald Tribune said:
It sometimes happens, even in science, that one man can be right against the world. Professor Fessenden was that man. He fought bitterly and alone to prove his theories. It was he who insisted, against the stormy protests of every recognized authority, that what we now call radio was worked by continuous waves sent through the ether by the transmitting station as light waves are sent out by a flame. Marconi and others insisted that what was happening was a whiplash effect. The progress of radio was retarded a decade by this error. The whiplash theory passed gradually from the minds of men and was replaced by the continuous wave — one with all too little credit to the man who had been right.

Reginald A. Fessenden House

Fessenden's home at 45 Waban Hill Road in the Chestnut Hill district of Newton, Massachusetts is on the National Register of Historic Places and is also a U.S. National Landmark. He bought the house in 1906 or earlier and owned it for the rest of his life.[2]

Quotations

An inventor is one who can see the applicability of means to supplying demand five years before it is obvious to those skilled in the art.
"The Inventions of Reginald A. Fessenden". (January, 1925). Radio News, p. 1142.

Patents

Viewing these patent images requires TIFF capable software

Reissued

See also

References

  • Hugh G. J. Aitken, The Continuous Wave: Technology and American Radio, 1900-1932. Princeton University Press. Princeton, New Jersey. 1985.
  • Susan J. Douglas, Inventing American Broadcasting, 1899-1922. The Johns Hopkins University Press. Baltimore, Maryland. 1987.
  • Orrin E. Dunlap, Jr., Radio's 100 Men of Science, Reginald Aubrey Fessenden entry, p. 137-141. Harper & Brothers Publishers. New York. 1944.
  • Helen M. Fessenden, Fessenden: Builder of Tomorrows. Coward-McCann, Inc. New York. 1940.
  • Reginald A. Fessenden, "The Inventions of Reginald A. Fessenden". Radio News, 11 part series beginning with the January, 1925 issue.
  • Reginald A. Fessenden, "Wireless Telephony." Pp. 553-629. Transactions of the American Institute of Electrical Engineers: January 1 to June 30, 1908. Vol. XXVII, Part I. New York. 1908.
  • S. M. Kinter, "Pittsburgh's Contributions to Radio." Pp. 1849-1862. Proceedings of the Institute of Radio Engineers. December, 1932.
  • David W. Kraeuter, "The U. S. Patents of Reginald A. Fessenden". Pittsburgh Antique Radio Society, Inc., Washington Pennsylvania. 1990. OCLC record 20785626
  • Ormond Raby, Radio's First Voice, Macmillan Company of Canada Limited, 1970

External links

Awards
Preceded by
Guglielmo Marconi
IRE Medal of Honor
1921
Succeeded by
Lee De Forest
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Clementina Trenholme, (4 May 1843 – 14 September 1918), was born at Trenholme, Canada East and died at Hamilton, Ontario. (Clementina Fessenden Trenholme), author, social organizer. Also, mother of Reginald Fessenden, the radio pioneer. Buried in St.
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Bishop's University is an English-language liberal arts university located in the borough of Lennoxville Sherbrooke, Quebec, Canada. Primarily undergraduate, it also offers graduate courses and M.A. and M.Ed. degrees in education and M.Sc in Computer Science and Physics.
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Guglielmo Marconi

Guglielmo Marconi
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Spark-gap transmitter is a device for generating radio frequency electromagnetic waves. These devices served as the transmitters for most wireless telegraphy systems for the first two decades of radio (1885-1906) and the first demonstrations of practical radio were carried out
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The coherer is a primitive form of radio signal detector, used in the late 19th century, consisting of a capsule of metal filings in the space, sometimes evacuated, between two electrodes.
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Sir Oliver Joseph Lodge, FRS, (June 12,1851 - August 22, 1940), born at Penkhull in Stoke-on-Trent and educated at Adams' Grammar School, was a physicist and writer involved in the development of the wireless telegraph.
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National Oceanic and Atmospheric Administration (NOAA) is a scientific agency of the United States Department of Commerce focused on the conditions of the oceans and the atmosphere.
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The Hot wire barretter was a demodulating detector invented in 1902 by Reginald Fessenden that found limited use in early radio receivers. In effect it was a highly sensitive thermoresistor developed to permit the reception of amplitude modulated signals, something that the
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The electrolytic detector, or the bare-point electrolytic detector as it was also called, was a type of wet demodulator used in early radio receivers. This form of detector was in extensive use, and was very sensitive and reliable.
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heterodyning is the generation of new frequencies by mixing two or more signals in a nonlinear device such as a vacuum tube, transistor, diode mixer, Josephson junction, or bolometer.
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