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Steam, Its Generation and Use

by Babcock & Wilcox Company

By Babcock & Wilcox Company · Science · Public domain

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Steam, Its Generation and Use is a public-domain classic of science by Babcock & Wilcox Company.

The complete text is on this page and the chapter pages below — all 70 chapters, about 149,925 words (~13 hours of reading), free to read online with no signup.

Steam, Its Generation and Use at a glance

Author
Babcock & Wilcox Company
Length
149,925 words · about 13 hours to read
Chapters
70
Price
Free — public domain

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Part 1

STEAM

ITS GENERATION AND USE

THE BABCOCK & WILCOX CO. NEW YORK

Thirty-fifth Edition

4th Issue

Copyright, 1919, by The Babcock & Wilcox Co.

* * * * *

Bartlett Orr Press

New York

THE BABCOCK & WILCOX CO.

85 LIBERTY STREET, NEW YORK, U. S. A.

Works

BAYONNE NEW JERSEY BARBERTON OHIO

Officers

W. D. HOXIE, President E. H. WELLS, Chairman of the Board A. G. PRATT, Vice-President

Branch Offices

ATLANTA Candler Building BOSTON 35 Federal Street CHICAGO Marquette Building CINCINNATI Traction Building CLEVELAND New Guardian Building DENVER 435 Seventeenth Street HAVANA, CUBA 104 Calle de Aguiar HOUSTON Southern Pacific Building LOS ANGELES I. N. Van Nuy's Building NEW ORLEANS Shubert Arcade PHILADELPHIA North American Building PITTSBURGH Farmers' Deposit Bank Building SALT LAKE CITY Kearns Building SAN FRANCISCO Sheldon Building SEATTLE L. C. Smith Building TUCSON, ARIZ. Santa Rita Hotel Building SAN JUAN, PORTO RICO Royal Bank Building

Export Department, New York: Alberto de Verastegni, Director

TELEGRAPHIC ADDRESS: FOR NEW YORK, "GLOVEBOXES" FOR HAVANA, "BABCOCK"

BABCOCK & WILCOX Limited

ORIEL HOUSE, FARRINGDON STREET, LONDON, E. C. WORKS: RENFREW, SCOTLAND

Directors

JOHN DEWRANCE, Chairman CHARLES A. KNIGHT ARTHUR T. SIMPSON J. H. R. KEMNAL WILLIAM D. HOXIE Managing Director E. H. WELLS WALTER COLLS, Secretary

Branch Offices in Great Britain

GLASGOW: 29 St. Vincent Place BIRMINGHAM: Winchester House CARDIFF: 129 Bute Street BELFAST: Ocean Buildings, Donegal Square, E. MANCHESTER: 30 Cross Street MIDDLESBROUGH: The Exchange NEWCASTLE: 42 Westgate Road SHEFFIELD: 14 Bank Chambers, Fargate

Offices Abroad

BOMBAY: Wheeler's Building, Hornby Road, Fort BRUSSELS: 187 Rue Royal BILBAO: 1 Plaza de Albia CALCUTTA: Clive Building JOHANNESBURG: Consolidated Buildings LIMA: Peru LISBON: 84-86 Rua do Commercio MADRID: Ventura de la Vega MELBOURNE: 9 William Street MEXICO: 22-23 Tiburcio MILAN: 22 Via Principe Umberto MONTREAL: College Street, St. Henry NAPLES: 107 Via Santa Lucia SHANGHAI: 1a Jinkee Road SYDNEY: 427-429 Sussex Street TOKYO: Japan TORONTO: Traders' Bank Building

Representatives and Licensees in

Part 2

ADELAIDE, South Australia ATHENS, Greece AUCKLAND, New Zealand BAHIA, Brazil BANGKOK, Siam BARCELONA, Spain BRUNN, Austria BUCHAREST, Roumania BUDAPEST, Hungary BUENOS AYRES, Argentine Rep. CAIRO, Egypt CHILE, Valparaiso, So. America CHRISTIANIA, Norway COLOMBO, Ceylon COPENHAGEN, Denmark ESKILSTUNA, Sweden GIJON, Spain HELSINGFORS, Finland HENGELO, Holland KIMBERLEY, South Africa MOSCOW, Russia PERTH, Western Australia POLAND, Berlin RANGOON, Burma RIO DE JANEIRO, Brazil SMYRNA, Asia Minor SOURABAYA, Java ST. PETERSBURG, Russia TAMMERFORS, Finland THE HAGUE, Holland

TELEGRAPHIC ADDRESS FOR ALL OFFICES EXCEPT BOMBAY AND CALCUTTA: "BABCOCK" FOR BOMBAY AND CALCUTTA: "BOILER"

FONDERIES ET ATELIERS DE LA COURNEUVE CHAUDIÈRES

BABCOCK & WILCOX

6 RUE LAFERRIÈRE, PARIS

WORKS: SEINE--LA COURNEUVE

Directors

EDMOND DUPUIS J. H. R. KEMNAL ETIENNE BESSON IRÉNÉE CHAVANNE CHARLES A. KNIGHT JULES LEMAIRE

Branch Offices

BORDEAUX: 30 Boulevard Antoine Gautier LILLE: 23 Rue Faidherbe LYON: 28 Quai de la Guillotier MARSEILLE: 21 Cours Devilliers MONTPELLIER: 1 Rue Boussairolles NANCY: 2 Rue de Lorraine ST. ETIENNE: 13 Rue de la Bourse

REPRESENTATIVE FOR SWITZERLAND: SPOERRI & CIE, ZURICH

TELEGRAPHIC ADDRESS: "BABCOCK-PARIS"

THE EARLY HISTORY OF THE GENERATION AND USE OF STEAM

While the time of man's first knowledge and use of the expansive force of the vapor of water is unknown, records show that such knowledge existed earlier than 150 B. C. In a treatise of about that time entitled "Pneumatica", Hero, of Alexander, described not only existing devices of his predecessors and contemporaries but also an invention of his own which utilized the expansive force of steam for raising water above its natural level. He clearly describes three methods in which steam might be used directly as a motive of power; raising water by its elasticity, elevating a weight by its expansive power and producing a rotary motion by its reaction on the atmosphere. The third method, which is known as "Hero's engine", is described as a hollow sphere supported over a caldron or boiler by two trunnions, one of which was hollow, and connected the interior of the sphere with the steam space of the caldron. Two pipes, open at the ends and bent at right angles, were inserted at opposite poles of the sphere, forming a connection between the caldron and the atmosphere. Heat being applied to the caldron, the steam generated passed through the hollow trunnion to the sphere and thence into the atmosphere through the two pipes. By the reaction incidental to its escape through these pipes, the sphere was caused to rotate and here is the primitive steam reaction turbine.

Hero makes no suggestions as to application of any of the devices he describes to a useful purpose. From the time of Hero until the late sixteenth and early seventeenth centuries, there is no record of progress, though evidence is found that such devices as were described by Hero were sometimes used for trivial purposes, the blowing of an organ or the turning of a skillet.

Mathesius, the German author, in 1571; Besson, a philosopher and mathematician at Orleans; Ramelli, in 1588; Battista Delia Porta, a Neapolitan mathematician and philosopher, in 1601; Decause, the French engineer and architect, in 1615; and Branca, an Italian architect, in 1629, all published treatises bearing on the subject of the generation of steam.

To the next contributor, Edward Somerset, second Marquis of Worcester, is apparently due the credit of proposing, if not of making, the first useful steam engine. In the "Century of Scantlings and Inventions", published in London in 1663, he describes devices showing that he had in mind the raising of water not only by forcing it from two receivers by direct steam pressure but also for some sort of reciprocating piston actuating one end of a lever, the other operating a pump. His descriptions are rather obscure and no drawings are extant so that it is difficult to say whether there were any distinctly novel features to his devices aside from the double action. While there is no direct authentic record that any of the devices he described were actually constructed, it is claimed by many that he really built and operated a steam engine containing pistons.

In 1675, Sir Samuel Moreland was decorated by King Charles II, for a demonstration of "a certain powerful machine to raise water." Though there appears to be no record of the design of this machine, the mathematical dictionary, published in 1822, credits Moreland with the first account of a steam engine, on which subject he wrote a treatise that is still preserved in the British Museum.

Dr. Denys Papin, an ingenious Frenchman, invented in 1680 "a steam digester for extracting marrowy, nourishing juices from bones by enclosing them in a boiler under heavy pressure," and finding danger from explosion, added a contrivance which is the first safety valve on record.

The steam engine first became commercially successful with Thomas Savery. In 1699, Savery exhibited before the Royal Society of England (Sir Isaac Newton was President at the time), a model engine which consisted of two copper receivers alternately connected by a three-way hand-operated valve, with a boiler and a source of water supply. When the water in one receiver had been driven out by the steam, cold water was poured over its outside surface, creating a vacuum through condensation and causing it to fill again while the water in the other reservoir was being forced out. A number of machines were built on this principle and placed in actual use as mine pumps.

The serious difficulty encountered in the use of Savery's engine was the fact that the height to which it could lift water was limited by the pressure the boiler and vessels could bear. Before Savery's engine was entirely displaced by its successor, Newcomen's, it was considerably improved by Desaguliers, who applied the Papin safety valve to the boiler and substituted condensation by a jet within the vessel for Savery's surface condensation.

In 1690, Papin suggested that the condensation of steam should be employed to make a vacuum beneath a cylinder which had previously been raised by the expansion of steam. This was the earliest cylinder and piston steam engine and his plan took practical shape in Newcomen's atmospheric engine. Papin's first engine was unworkable owing to the fact that he used the same vessel for both boiler and cylinder. A small quantity of water was placed in the bottom of the vessel and heat was applied. When steam formed and raised the piston, the heat was withdrawn and the piston did work on its down stroke under pressure of the atmosphere. After hearing of Savery's engine, Papin developed an improved form. Papin's engine of 1705 consisted of a displacement chamber in which a floating diaphragm or piston on top of the water kept the steam and water from direct contact. The water delivered by the downward movement of the piston under pressure, to a closed tank, flowed in a continuous stream against the vanes of a water wheel. When the steam in the displacement chamber had expanded, it was exhausted to the atmosphere through a valve instead of being condensed. The engine was, in fact, a non-condensing, single action steam pump with the steam and pump cylinders in one. A curious feature of this engine was a heater placed in the diaphragm. This was a mass of heated metal for the purpose of keeping the steam dry or preventing condensation during expansion. This device might be called the first superheater.

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