Document rBzn18oVDVgMB2xgBvdOVJMzv

:738 CHAPTER 38 1949 Guide different adsorbents and may vary even for different types of the same compound. The effects of vapor pressure and temperature upon the mois ture content of an adsorbent may be observed by referring to Fig. 1. When the given type of solid adsorbent is in equilibrium with air having a drybulb temperature of 70 F and 70 per cent relative humidity, that is, having a dew-point of 60 F or a water vapor pressure of 13.2 mm Hg, the water content of the adsorbent is 33 per cent. With air having the same dry-bulb Fig. 1. Temperature--Vapor Prebsure--Concentration Characteristics for a Typical Solid Adsorbent Fig. 2. A Typical Solid Adsorbent Dehumidification Unit Air Flow Diagram temperature and a dew-point of 37 F, or a vapor pressure of 5.6 mm Hg, the water content is 20 per cent. The increase in weight for an.activated solid adsorbent after it reaches equilibrium with a gas of any given water vapor content may be found by subtracting the residual water content (for ex ample 6 per cent) from the equilibrium value. In the case of the two examples cited, the actual water gain would be 27 per cent and 14 per cent respectively. The effect of temperature upon the adsorptive capacity may be observed by following the 5.6 mm Hg vapor pressure line. At a tem perature of 70 F the moisture content of the adsorbent is 20 per cent, while at 100 F the equilibrium water content is 11 per cent. In practice the temperature rise in the dehumidified air caused by the adsorption heat is approximately 10 deg F for each grain of moisture re moved per cubic foot of air at atmospheric pressure. This temperature rise occurs progressively through the adsorbent bed and is an important con sideration in predetermining the performance of a given design of apparatus. Data such as these, together with information covering other characteristics such as specific heat, resistance to air flow, etc., are of value in the basic design of adsorption apparatus. In the solution of air conditioning prob- Dehumidification by Sorbent 'Materials 739 lems, however, reference must be made to performance data on established apparatus designs. DEHUMIDIFICATION EQUIPMENT USING SOLID ADSORBENTS A typical solid adsorbent dehumidification unit air flow diagram is shown in Fig. 2. The apparatus consists of two adsorbent containers (adsorbers) with necessary interconnecting piping, valves, and auxiliaries consisting of filters, fans, activation air heater, controls, and, in some instances, a cooler, for the dehumidified air. Before entering the adsorber the air to be de humidified is drawn into a filter to remove dust and other impurities. In passing through the adsorbent bed, the moisture content of the air is reduced and the dehumidified air is then introduced into the space or process requiring it. While the first adsorber is dehumidifying the air, the second adsorber is being reactivated by means of outside air drawn through a filter and heater in which its temperature is raised to 300 F. The heat may be supplied by electric heating elements, steam coils, the direct products of combustion of gas, oil, waste heat, or any other convenient source. In passing through the adsorbent bed, the hot gases supply the necessary heat for releasing adsorbed water from the adsorbent and then carry it out of the adsorber to the activation gas outlet, where it is exhausted to the out side atmosphere. In some instances a thermostat placed in the activation outlet connection shuts off the activation fan and heater when the adsorbent is completely reactivated, as indicated by a rapid rise in the temperature of the outlet activation gas. The length of the adsorption period may be con trolled by a timing device which changes the valves or dampers from the adsorbing to the activating position, or by a humidistat located in the dehumidified air connection or in the dehumidified space. The majority of commercial units are time controlled. In applications where a continuous stream of dehumidified air is not required, a single adsorber type unit may be used, while in other cases where a continuous stream of dehumidified air is required, a multiple num ber of adsorbers or even a continuously rotating system may be used. If the air to be dehumidified is very warm, and especially where exceed ingly low dew-point dehumidified air is required, it is advantageous to install a pre-cooler to reduce the temperature of the inlet air. In this way the working temperature in the adsorber is lowered and the over-all performance-appreciably increased. Some equipment manufacturers install cooling coils in the adsorbent beds for the same purpose, while others divide the adsorbent bed and install coolers between the sections. Dehumidification equipment is employed to the best advantage where the air conditioning problem is primarily one of obtaining low relative humidity control rather than temperature control. This requirement is found in the case of the preservation of inactive naval vessels where the interior of the ship must be kept at a relative humidity below 30 per cent to avoid corrosion, mold, mildew, and other moisture damage that occurs at humidities substantially in excess of this figure. Other advantageous applications for dehumidification systems are found in industrial processes where low relative humidity atmospheres are required during the manu facture as well as for preservation of the finished products. Dehumidifica tion with cooling may be used to advantage in work-rooms or other spaces occupied by humans, where the moisture load is high in comparison to the sensible heat load. In many instances where independent control of tem perature and humidity is important dehumidification is used to advantage in conjunction with cooling.