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22 76. Scale Trap
CHAPTER 2
80.6 Evaporator Pressure Regulating, Throt tling Type (Evapo rator Side)
1957 Guide
77. Spray Pond
80.7 Hand Expansion
78. Thermal Bulb
79. Thermostat (Remote Bulb)
80. Valves 80.1 Automatic Expan
sion 80.2 Compressor Suction
Pressure Limiting, Throttling Type (Compressor Side)
80.3 Constant Pressure, Suction
80.4 Evaporator Pressure Regulating, Snap Action
80.5 Evaporator Pressure Regulating, Thermo static Throttling Type
80.8 Magnetic Stop
80.9 Snap Action 80.10 Suction Vapor
Regulating 80.11 Thermo Suction 80.12 Thermostatic Ex
pansion
80.13 Water 81. Vibration Absorber,
Line
IDENTIFICATION OF PIPING SYSTEMS BY COLOR
. The color scheme for identification of piping systems, based on material
carried, as listed in the following table and shown in Fig. 1, is reprinted
from Part V, Fourth Edition, of the Engineering Standards of the Heat
ing, Piping and Air Conditioning Contractors National Association.''
CLASS
CCrotrc/oIHa
F--Fire-protection D--Dangerous materials S--Safe Materials
Red. Yellow or Orange Green (or the achromatic colore, white,
black, gray or aluminum)
and, when required P--Protective materials V--Extra valuable materials
Bright blue Deep purple
Fro. 1. Main Classification bt Colob
1 8ee Scheme loz Identification of Piping Systems, A13-262S, American SUwAarit Auociation
CHAPTER 3
THERMODYNAMICS
Mass and Energy Balances; Thermodynamic Properties of Moist Air; Formulas and Tables; Thermodynamic Properties of Water, Formulas and Tables; Degree of Saturation; ASHAE Psychrometric Chart; Solution of Air Conditioning Problems by Use of Tables and Psychrometric Chart; U. S. Standard Atmosphere
THERMODYNAMICS is that branch of natural science which deals with energy and its transformations into various forms. In this chap ter the discussion will be limited to thermodynamics as it aSects the arts of heating and air conditioning. This will necessarily presume some knowledge of the fundamentals of the science on the part of the reader
who may also find it desirable to refer to a standard text on the subject, preferably one published after 1930.
MASS AND ENERGY BALANCES
The First Law of Thermodynamics is a statement of the Principle of Conservation of Energy. It may be stated as follows: The energy added to a system is equal to the increase or decrease of the energy stored in the system, plus the energy which leaves the system. For a completely contained, or non-flow system, this may be restated as: The heat added to a non-flow system is equal to the change in the internal energy of the system, plus the work done by the system.
,q, = Uz - U, + w
(1)
For a constant pressure process
,qz = H, -- Hz
(2)
where
iqz = energy added between points 1 and 2. U = internal energy of system, w = work done by system. H = enthalpy of system.
Subscripts 1 and 2 refer to sections of the system between which a change takes place.
For engineering problems, a more important application of the First Law is its use in cases in which, in addition to energy, one or more fluids are crossing the boundaries of the system. The most simple of these is the steady flow system, in which the rates of energy and mass flow across the boundaries of the system are constant, and no mass or energy is stored or released by the system.
Consider a system as illustrated in Fig. 1. The fluid crossing the boundaries of the system carries with it potential energy by reason of its elevation above some convenient datum, kinetic energy by reason of its
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