Document MQNKN3GQq1rdwa8g6rKMyga9

American Society of Heating and Ventilating Engineers Guide, 193^ ~ A thermal conductivity method may also be. used to measure carbon dioxide in air over a range of 0 to 1.5 .per cent7. Where field conditions are such that this apparatus may not be con veniently used, as in street cars, air samples may be collected in clean bottles having mercury-sealed rubber stoppers, and these may be sub jected to laboratory analysis. DUST DETERMINATION Many laboratory methods have been developed to measure the dust in the air. These involve the collection of dust on sticky plates, on filter paper, in water, on porous crucibles, or by electric precipitation, and the subsequent determination of the amount of dust by microscopic counting, weighing, or titration. While there is no standard method, the Hi]j dust-counter, using a microscope, the impinger8, using chemical changes in water, and the Lewis sampling tube9, involving the analytical weighing of a porous crucible, are accepted. All test results should be accompanied by the name of the instrument used as great variation in counts with the different instruments will be obtained. The American Society of Heating and Ventilating Engineers has developed a code10 for the testing and rating of air cleaning devices used in general ventilation work. FLUE GAS ANALYSIS .The analysis of flue'gases by chemical means is made with the Orsat apparatus. A solution of KOH is used to absorb the COj. Free oxygen is absorbed by a mixture of pyrogallic acid and KOH. The solution for absorbing the CO is cuprous chloride. The apparatus consists of a burette surrounded by a water jacket, to receive and measure the volume of gas. The burette is connected by a manifold of glass to pipettes con taining liquids for absorbing C02, Oj and CO. Various forms of automatic indicating and recording gas analysis .devices are available, operating on either chemical or physical principles. Such devices are convenient for plant operation. I 3 MEASUREMENT OF SMOKE DENSITY Relative smoke density is usually measured by comparison with the Ringelmann Chart (Fig. 1). In making observations of the smoke issuing from a chimney, four cards ruled like those in Fig. 1, together with a card printed in solid black and another left entirely white, are placed in a horizontal row and hung at a point 50 ft from the. observer and con veniently in line with the chimney. At this distance, the lines become invisible, and the cards appear to be of different shades of gray, ranging from very light gray to almost black. The observer glances from the smoke coming from the chimney to the cards, which are numbered from 0 to 5, determines which card most nearly corresponds with the color of the smoke, and makes a record accordingly, noting the time. Observa- TLoc. Cit. Note 5. 'Public Health Bulletin, No. 144, 1925. U. S. Public Health Service. Testing and Rating of Air Cleaning Devices Used for General Ventilation Work, by Samuel R. Lewis (A.S.H.V.E. Transactions. Vol. 39, 1933). A.S.H.V.E. Standard Code for Testing and Rating Air Cleaning Devices Used in General Ventilation Work (A.S.H.V.E. Transactions, Vol. 39, 1933). 784 Chapter 43--Test Methods and Instruments tions are made continuously during one minute, and the estimated average density during that minute recorded. The average of all the records made during a boiler test is taken as the average figure for the smoke density during the test, and the entire record is plotted on cross-section paper in order to show how the smoke varied in density from time to time. Smoke Recorders Smoke recorders are available which give a much more accurate in dication of the amount of smoke being produced than does the Ringel mann Chart. They all depend upon projecting a beam of light through the smoke flue or through a separate compartment from which a sample of the flue gas is drawn continuously. The light of the beam which passes Fig. 1. Ringelmann Smoke Chart through without being absorbed by the smoke is measured to determine the smoke density. Most of these instruments make use of a photo electric cell or a thermopile to measure the relative amount of light which has not been absorbed. Standard electrical instruments serve for in dicating or recording. MEASUREMENT OF RATE OF HEAT TRANSMISSION The standard methods of testing built-up wall sections are by means of the guarded hot-box11 and the guarded hot-platen. The Nicholls heat-flow metern may be used for testing actual walls of buildings. It would be obviously impossible to determine the air-to-air heat trans mission coefficients of every type of wall construction in use with the heat-flow meter, the guarded hot-box or the guarded hot-plate on account of the great amount of time involved. Hence, the method of computing the coefficients from the fundamental constants must be resorted to in most cases. The guarded hot-plate is used to determine the fundamental constants. The heat-flow meter, guarded hot-box and guarded hot-plate tests can be used to good advantage in checking the accuracy of the computed values. "Standard Code for Heat Transmission through Walls (A.S.H.V.E. Transactions. Vol. 34. 192S) and Report of the Committee on Heat Transmission, National Research Council. Heat Transmission in Building Structures and a Heat Transmission Meter, by P.` Nicholls (A.S.H.V.E. Transactions. Vo!. 30, 1924). 785