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744 Chapter 43 _______ _', - 1945 Guide 2. Meter Rates. a. Straight-line. b. Step. Obsolescent. c. Block. (a) Class rates. '---- Straight-Line Meter Rate. -The price charged per unit is constant, and the consumer pays in direct proportion to his consumption without regard to the difference in costs of supplying the individual customers. "Block. Meter Rale. The pounds of steam consumed by a customer are divided into blocks of thousands of pounds each, and lower rates are charged for each successive block consumed: This type of charge predominates in steam heating rate schedules for it has the advantage of proportioning the bill according to the consumption and the cost of service, ft has the disadvantage of not discriminating between customers having a high load factor (relatively low demand) and those having a low load factor (relatively high demand). The utility company, must maintain sufficient capacity to serve the high demand customers and the cost of the increased plant investment is divided equally among the users,' so the high demand customers are benefited at the expense of the others. 3. Demand Rates. a. Flat demand. b. Wright. c. Hopkinson. d. Doherty (or Three charge). " Demand Rates. These refer to any method of charge based on a measured maximum load during a specified period of time. The flat demand rate is usually expressed in dollars per thousand pounds of demand per month or per annum. It is based on the size of a customer's instal lation, and is seldom used except where a meter is not practicable. The Wright demand rate is similar in calculation to the block rate except that it is expressed in terms of hours' use of the maximum demand. It is seldom used but forms the basis for other forms of rates. The Hopkinson demand rate is divided into two elements: () A charge based upon the demand, either estimated or measured. () A charge based upon the amount of steam consumed. This rate may be modified by dividing the quantities of steam demanded and consumed into blocks charged for at different rates. The Doherty rate is divided into three elements: (a) A charge based upon demand. (b) A charge based upon steam consumed. (c) A customer charge. In the Hopkinson rate, the last two elements are combined into one element. Demand rates are comparatively new and are not yet widely used; though they are equitable and competitive they are difficult for the average layman to understand. They are of benefit to utility companies and to consumers because the investment and operating costs can be divided to suit the particular circumstances into demand, customer, and consumption groups through the use of some modification of the Hopkinson. rate. Demand rates are an advantage to the customer in that the use of such a rate reduces the rate per thousand pounds to the long-hour user. . Fuel Price Surcharge. It is usually.desirable to establish a rate upon a specified basic cost of fuel to the utility company. Where there are wide variations in the price of fuel, it is also desirable to add a definite charge per thousand pounds of. steam sold for each increment of increase in the price of fuel. This surcharge automatically compensates for the -District-Heating---------- --------------------------------- ---------------------------------------------------------------------- 743 variations without necessitating frequent changing of the whole rate structure. > Some utility companies include a labor surcharge as well as a coal surcharge. UTILIZATION . Considerable savings can be made by the proper and intelligent oper ation of heating systems. It should be borne in mind that a heating system is designed to heat a building to 70 F inside when the outside temperature is at its lowest point for that particular locality. There is a tendency to overheat the building at any time the outside temperature is above the design temperature unless some method of regulation is used, either automatic or manual. The general rules for economical operation2 are as follows: 1. Reduce the heat losses from the building to a minimum. . a. Weatherstrip all windows, and caulk all window frames. b. Provide revolving or vestibule doors on all entrances. Separate shipping and receiving rooms from the remainder of the building by partitions so that the large doors will not ventilate the entire building. c. Eliminate all unnecessary ventilation. Ventilating equipment is usually sized to meet extreme requirements. In a theater or auditorium, do not supply enough ventilation for an audience of 2000 when there are only 200 present. - . 2. Limit the hours of heating to those in which the required temperature is necessary. a. Determine the hours that heating is required and see that steam is shut off for the maximum time when not required, such as nights, Sundays, and holidays. b. Shut steam off entirely in unoccupied sections of the building, taking care to avoid freezing plumbing, c. Install separate lines for those parts of the building that require long-hour or 24-hour heating. This is much cheaper than heating the entire building. d. Control the heat supplied to water storage tanks located on or above the roof. Such tanks require heat to prevent freezing when the outdoor temperature is below 32 F. 3. Regulate the amount of heat so as to prevent overheating and to maintain uniform temperatures during the hours of occupancy. a. Determine the temperature required for the occupancy of a building. Do not heat a storage garage or a furniture warehouse to the temperature required in a hospital ward. b. Shut off steam diming the day whenever possible. An automatic control will do this, but it can be done by hand, with good results. c. Provide some good means of temperature control. 4. See that the heat input is properly balanced throughout the building. a. See that the entire heating system responds rapidly when steam is turned on. Locate and eliminate the cause of any sluggish circulation. Balance the radia tion, provide adequate air elimination, and correct any trapped run-outs to provide quick system drainage. b. Place the radiation near the outside walls under the windows or where the exposure occurs, if possible. c. Do not obstruct radiators or prevent the free circulation of air around them; to do so seriously reduces the heating capacity of a radiator. 5. Keep all healing equipment in first class condition. a. Keep the system in good repair. This applies to all traps, valves, vents, steam and return piping, vacuum pumps, and temperature control apparatus. b. In a vacuum system, maintain the degree of vacuum recommended by the ' control manufacturer. If this is not possible, locate and eliminate all leaks. c. Insulate all steam pipes not used as heating surface. 'Principles of Economical Heating. Notional Association of Building Owners and Managers.