Document wgROxE2Je08vaaBQd6gNqv2wo

618 CHAPTER 43 1959 Guide general exposure may suggest the desirability of more re strictive zoning. When the street floor or any other portion of the building is used for public occupancy or activities which differ from those carried on in the remainder of the building, it is desirable to provide separate thermostats and controls for each individual area. Zone controls alone may not provide satisfactory tem perature conditions in all rooms or areas within the zone because occupancy, lighting load, space arrangements, and similar factors cannot always be predicted with accuracy. A combination of zone controls with individual room control in critical areas may be necessary to achieve complete satis faction. INDIVIDUAL ROOM CONTROL Rg, 9___ Effect of Pressure Drop Selection on OpposedBlade Damper Performance velocity coil section where it would have a design pressure drop of less than 0.1 in. water, if it is expected to control with 2 to 3 in. pressure drop during periods of low flow. It should be placed in a high-velocity section where the ripgjgn pressure drop will be 05 in. water or more, careful consideration being given to avoid excessive turbulence on either entering or leaving side of the damper. ZONE CONTROL The ideal temperature control system for any building is one that promotes maintenance of the desired tempera ture in every room at all times regardless of location and occupancy. Individual room temperature control is desirable for securing proper thermal environment in schools, hos pitals, and offices. Control of the temperature in each room, or possibly of adjacent rooms having the same orientation (as in an apart ment), overcomes many of the problems encountered when attempting to regulate the temperature of a building as a whole or of large areas or zones. Each individual thermostat controls the heat input to its particular space regardless of occupancy or exposure to sun and wind. The advantage of individual room control is in fuel economy and comfort' for the occupants. Each room should have a thermostat that controls valves or dampers on all the controllable sources of heating and cooling. One such uncontrolled source may prevent proper operation of the control system. Zone control for any heating, ventilating, or air-con ditioning system is employed where it is desired to control, by one set of controls, the healing or cooling, effect in a number of rooms or areas, having similar orientation or occupancy. For tone control to be successful the require ments must be approximately consistent throughout the extent of the zone. Whether zoning a building for heating or cooling, the following factors should be considered in de termining the number and arrangement of the zones: 1. -Exposure. Solar effect, prevailing winds, and the shelter afforded by surrounding structures affect the heat gain or loss. 2. Occupancy. Indoor temperature requirements for the various activities carried on in different portions of the building and the hours of occupancy of the various spaces impose definite control problems. 3. Building Structure. The physical characteristics of the building will influence the subdivisions of the system into zones since satisfactory temperature conditions throughout a angle zone of given extent may not be obtainable equally in buildings of HinmmilRr types of construction. Other factors are the height of the building and its horizontal extent and form. 4. Floors. Even though several floors have the same wall exposure, it is advisable to have separate zones on the lowest ana highest floors,due to variations of basement or ground floor requirements and the effect of roof exposure. It is also desirable to have a separate zone or zones for the intermediate floors. The initial investment will often influence the decision as to the final number of zones to be employed. In larger buildings accepted practice is to have at least one zone for each exposure. Each exposure may require subdivision vertically into two or more zones for the higher structures. Also, the presence of two or more wings having the PART 111--CONTROL APPLICATIONS Applications of controls to systems or apparatus of a general nature will be found in this section. Applications pertaining to specific systems or apparatus will be found in the chapters covering these subjects. The application of con trols may conveniently be considered for die three divisions of a system indicated in Fig. 10: (1) primary source ap paratus, (2) distribution system, and (3) terminal equip ment. PRIMARY SOURCE APPARATUS <7~ TERMINAL EQUIPMENT DISTRIBUTION SYSTEM Rg. 10___ Three General Divisions of Control Applications PRIMARY SOURCE APPARATUS The control of primary source apparatus is described in the following chapters: Chapter 18, Warm Air Heating Systems, Chapter 34, Automatic Fuel-burning Equipment, Chapter 39, The Heat Pump, and Chapter 38, Refrigera tion. The second and third divisions are considered in tins section. DISTRIBUTION SYSTEMS The control of distribution systems is discussed sepa rately for central fan systems, hot water systems, zoned steam systems, and zoned hot water systems, due to the dif ference in these systems. Automatic Control 619 Rg. 11....Manual Adjustment of Outdoor-Air Quantity With Low-Limit Control of Mixture Temperature CENTRAL FAN SYSTEMS Refer to Chapter 19 for additional material on control for a typical central fan system. Since there are numerous control combinations that ran be employed with central fan systems, the following sections will deal with only a few of the typical combina tions for controlling outdoor- and return-air dampers, pre heat coils, heating coils, cooling coils, and humidity control. The complete control system is obtained by combining the selected method for each item into an integrated set of controls. Proper consideration must be given to the inter relation of the several parts and the sequence of operation, etc. Outdoor-Air Damper Control Outdoor air for ventilation is usually controlled by a damper arrangement providing a homogeneous mixture of outdoor air and recirculated air. Outdoor air-to meet mini mum ventilation requirements should be available whenever the fan is running and is usually provided in one of the fol lowing ways: . By a minimum outdoor-air damper which is fully .open when the fan is started. A maximum outdoor-air damper may also be provided if additional outdoor air for natural cooling is desired. . By an outdoor-air damper which opens to a minimum position when .the fan is started. Additional outdoor air is provided by further opening of the damper under automatic control. Recirculated-air and exhaust-air dampers are synchronized to operate with the outdoor-air dampers. Mechanical inter connections are preferable bu^separate operators on each the dampers can be used when Tnerhonirai interconnec tions are impractical. In most arrangements provisions are made to prevent admission of more than the minimum out door air required for ventilation both during heating opera tion and when the outdoor-air temperature is too high to HICM LIMIT RETURN THERMOSTAT Alft 2-POSITION provide some natural cooling. Provisions should also be made to close the outdoor-air and exhaust-air dampers and open the return-air damper whenever the fan is stopped. Fig. 11 shows a system having manual adjustment for maximum outdoor air and having an optional, but very desirable, mixed-air controller. This controller overrides the manual switch whenever the mixed-air temperature drops below its set point. This provides for a minimum mixedair temperature for safety of downstream equipment. When ever the fan motor is stopped the outdoor-air and exhaustair dampers close while the return-air damper opens. Fig. 12 shows an all-season ventilation control system with a fixed minimum quantity of outdoor air and auto matic control of maximum outdoor- and return-air dampers. This arrangement is sometimes referred to as an economizer control of outdoor air. With outdoor-air temperatures be low the set point of the summer controller, the mixed-air controller positions the outdoor- and return-air dampers. When outdoor-air temperature rises to the set point of the outdoor high-limit controller, usually about 70 F, the maximum outdoor-air damper is closed and the return-air damper opened. The minimum quantity of outdoor air is 'assured by the separate minimum outdoor-air damper. Both outdoor-air dampers are closed and the return-air damper opened whenever the fan motor is stopped. By adding a thermostat in the conditioned space or in the retum-air duct the opening of the maximum outdoor-air damper can be limited to only the desired minimum quan tity of outdoor air until the space heating requirements are satisfied. This feature is desirable for quick warm-up during winter heating. Preheater Coil Control The function of s preheater is to temper the outdoor air to prevent the possibility of freezing beyond the coil. Care must be taken to avoid freezing in the coil itself. The proper selection, installation, and sizing of steam traps are very important to assure rapid elimination of condensate to pre vent freezing. Other important considerations are vacuum breakers to insure condensate removal, provisions for rapid air elimination from coil, and the use of vertical rather th^n horizontal tubes wherever possible. Fig. 13 shows a simple application of an outdoor ther mostat usually set for 35 F controlling the preheat coil valve. Careful sizing of the coil is very important with this type of control. The temperature rise through the coil should be limited to a maximum of 30 deg when the entering air is 35 F. A higher temperature rise will very likely cause overheating of the space. If more than a 30deg temperature rise is needed then multiple coils should be used and their control valves operated in sequence at selected outdoor temperatures. Fig- 14 offers a method of control which reduces the OA. THERMOSTAT Rg. 12.... All-Season Ventilation Control With fixed Minimum Outdoor Air Phis Additional Outdoor Air When Practicable