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CHAPTER 42
1960 Guide
OCW POINT AT ATMOSPHERIC PRESSURE - F Fig. 11.... Dew Point Conversion Chart
transfer is controlled. For these reasons a vapor barrier ' should be located within the wall construction as near to the
high vapor-pressure side as feasible. To be effective, a bar. Tier must be continuous and should be so located within the structure that it will be protected from rupture. (See Chapter 10 Moisture In Building Construction.)
BIBLIOGRAPHY
R. C. Amero, J. W. Moore, and R. G. Capell: Design and use of adsorptive units (.Chemical and Engineering Progress,
Vol. 43, July 1947, p. 349). A full bibliography is included in this article.
W. L. Ross and E. R. McLaughlin: An analysis method for predicting behavior of solid adsorbents in solid sorption dehumidifiers (A5HAE Transactions, Vol. 61, 1955, p. 321).
Symposium Bulletin on Dehumidification (five papers pre sented at Symposium held at 63rd Annual Meeting ASHAE February 28, 1957).
G. C. F. Asker and T. H. Urdahl: Ship Dehumidification Sys tems (International Institute of Refrigeration, Nantes, France, June 20, 1957). Several references included.
CHAPTER 43
AUTOMATIC CONTROL
fundamentals: Types of Control Systems and Action, System Components, Controllers and Controlled Devices, Auxiliary Control Equipment; Design Coordination: Equipment Selection and Layout; location of Controllers; Control of Steam, Water, or Air Flow; Zone Control; Control Applications: Central Fan, Temperature Control in Hot Water Systems, Zoned Steam and Water Systems, Terminal Equipment, Residential Heating and Air Conditioning
PRESENT-DAY standards of comfort combined with outdoor temperature is an example. This system has no feed capacity and rapid response - of modem beating and back. It depends for its operation on a prearranged relation cooling equipment make automatic controls an essential part ship between outdoor temperature and heat input to the of heating, ventilating, and air-conditioning systems. These building, and room temperature has no effect on the con automatic controls respond to variables such as temperature, troller.
relative humidity, and pressure. They operate individually
or in sequence to maintain the desired conditions throughout
TYPES OF CONTROL SYSTEMS
the system and in the occupied space. A factor that has made the subject of automatic control somewhat confusing has been the matter of terminology. Many different expres sions or words have sometimes been used -to convey a angle idea or concept. This chapter, therefore, attempts to use and define the terms that are most common and suitable so that they will be readily understood. The terms and definitions used are also selected so as to conform, as nearly as possible, to automatic control terminology sH by engineers in other fields of control.
PART I--FUNDAMENTALS OF AUTOMATIC CONTROL
A control system, Fig. 1, consists essentially of (1) a con
Control systems are divided into five main groups accord ing to the primary source of energy:
1. A self-contained system combines the controller
con
trolled device in one unit and employs the power of the meas
uring system to effect the necessary corrective action. The meas
uring system derives its energy from the process under control
without amplification by any auxiliary source of energy, and
may be of the sealed-bellows or remote-bulb type as described
under Types of Measuring Elements. Temperature changes at
the bellows or the remote bulb result in pressure or volume
changes of the enclosed media which are transmitted directly
to the operating device of the valve or damper.
2. A pneumatic system utilizes compressed air, usually at a pressure of 15 to 25 prig, as a source of energy. This is supplied
to the controller which in turn regulates the pressure supplied to the controlled device.
troller, (2) a controlled device, and (3) a source of energy.
A controller is a device which measures a variable condition such as temperature, humidity, pressure, and liquid level, rH produces a suitable action or impulse for transmission to the controlled devices. Thermostats, bumidistats, and pressure con trollers are examples.
A controlled device reacts. to ^the impulse received from a controller and varies the flow-of the control agent. It may be a valve, damper, electric relay, or a motor driving a pump, fan, etc.
The control agent is the medium manipulated by the con trolled device. It may be air or gas flowing through a damper; gas, steam, water, etc., flowing through a valve; or an electric current.
The controlled variable is the condition such as temperature, humidity, or pressure, being controlled.
Most control systems, of which Fig. 1 is typical, form a
3. A hydraulic system utilizes a suitable liquid under pressure as the source of energy. The pressure often is considerably higher than in a pneumatic system, but in other respects the systems are similar. Hydraulic systems find their chief use in applications where large forces are required for operation of the controlled devices.
4. An electric system utilizes electric energy, either low or line voltage as the energy source. The electric energy supplied ta the controlled device is regulated by the controller either directly or through relays.
5. An electronic system also" utilises electric energy, but em ploys an electronic amplifier to increase the minute voltage variations of the measuring element to values required for operation of standard electrically controlled devices. Measuring elements usually are of the resistance type, but thermo couples also are employed. Combination electronic-pneumatic fystems utilize compressed air for operation of the controlled device by converting the output of the electronic amplifier into
closed loop. That is, the controller measures and responds to
changes in the controlled variable and actuates the controlled
device to bring about &n opposite change which is gin
measured by the controller. This system of transmitting
information about the results of an action or operation
back to its origin is known as feedback, and makes true
automatic control posable.
An open-loop system is sometimes employed in control
circuits, but it does not provide complete control. An out
door thermostat arranged to control the flow of heat to a
building in proportion to the load caused by changes in
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