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:? 486 Chapter 25 . ; 1945 Guide i %. _ the calculations of Equation 17, by using an average water temperature -and the actual tube diameter. Performance of Coils and Refrigeration Compressor Practically all data published by various makers of direct expansion cooling coils are based "upon maintaining a predetermined refrigerant temperature within the coils. While it is often, possible to maintain a definite refrigerant temperature within a given cooling coil, for the greater part it is either impossible or impractical. This is due to the fact that the capacity of standard refrigeration compressors is usually fixed and in matching a given cooling coil with a standard compressor the capacity of the latter is often somewhat smaller or greater than that of the former. Consequently, very often the refrigerant temperature resulting within a cooling coil and correspondingly the capacity of the coil-compressor coin bination are not what they were originally calculated to be. In order to determine the actual performance of a given coil-compressor, combination under varying conditions of operation, a graphical solution . of the balance point is highly desirable. A typical method of graphical analysis of a coil-compressor combination performance is shown in Fig. 18, which-is constructed in a manner described herewith: 1. On a piece of graph paper (with a uniform scale), the equipment capacity scale, ' total Btu per hour, is laid out along the vertical axis while the refrigerant suction tem, perature scale is laid out along the horizontal axis. 2. The performance curve of a given compressor with a definite condenser (com bination usually called a condensing unit) is plotted as a function of suction temperature corresponding to the saturation suction pressure at the compressor suction service valve for a given inlet water temperature and quantity supplied to the condenser. 3. The performance curve of the given cooling coil is next plotted as a function of mean suction temperature within the coil, and the wet-bulb temperature of air entering the coil, for a given mass air velocity over the coil. Heat Transfer Surface Coils 487 4. The refrigerant pressure drop between the center of the cooling coil and the com pressor suction service valve is computed and converted into the terms of temperaturedifference. This temperature difference is then fitted in horizontally between the performance curves of the cooling coil and the compressor, as shown, and the total ' capacity of the coil-compressor combination is read along the horizontal line upon which the above mentioned temperature-difference segment falls. COIL SELECTION In the selection of a coil it. is necessary to consider several factors: 1. The duty required--heating, cooling, dehumidifying. 2. Temperature of entering air--dry-bulb only if there is no dehumidification, dryand wet-bulb if moisture is to be removed. ' 3. Available.heating and cooling medial 4. Space and dimensional limitations. 5. Air quantity limitations. 6. Allowable resistances in air circuit and through tubes. 7. Peculiarities of individual designs of coils. 8. Individual installation requirements, such, for example, as type of automatic con trol to be used. The duties required may be determined from information in Chapters 4, 5, 6 and 7. There may or may not be a choice of cooling, and heating media, as well as temperatures available, depending upon whether the installation is new or is in combination with present sources of heating or cooling. Space limitations are dictated by the requirements of individual cases. The air quantity is influenced by a number of considerations. The air quantity through heating coils is often made the same as. that necessary to handle the summer cooling load. The air handled may be fixed by the use of old ventilating ducts as an air distribution system for new air conditioning apparatus, or may be dictated by requirements of satisfac tory air distribution or ventilation. The resistance through the air circuit influences the fan horsepower and speed. This resistance may be limited to allow the use of a given size of fan motor, or to keep the opera-. ting expense low, or jt may be limited by the maximum fan peripheral velocity which requirements of/ quietness may permit. The friction through the water or brine circuit may be dictated by the head available from a given size of pump and pump motor. As the fan arid pump motor inputs represent a refrigerating load on cooling installations, it is eco nomical to keep them low. Proper performance of a surface heating or cooling coil depends upon correct choice of the original equipment and upon certain other factors. The usual coil ratings are based on a uniform, face velocity of airi If the air is brought in at odd angles or if the fan is located so as to block part of the air flow, the performance as given in the manufacturer's ratings cannot usually be obtained. To obtain this performance it is necessary also that the air quantity be adjusted on the job to that used in deter mining the coil selection, and must also be,kept at, this-value. The most common causes for a reduction of air quantity are the fouling of the filters and collection of dirt in the coils. These difficulties can be avoided by proper design and proper servicing. There are a number of ways in which coils may be cleaned. A common method is to wash thein off with water. They can sometimes be brushed and cleaned with a vacuum cleaner. In bad cases of neglect, especially on restaurant jobs where grease and dirt have accumulated, it is sometimes necessary to remove the coils and wash