Water-cooled programs offer decrease energy use than air-cooled alternatives. Many years in the past, the primary water-cooled systems used potable water directly within the condenser to offer heat rejection with the cooling water wasted to a drain. Cooling towers had been developed to recycle greater than 98% of this water, resulting in large reductions in water and vitality use as these systems grew in each dimension and popularity.
Since then, water-cooled programs have steadily improved their efficiency. As an illustration, the effectivity of a 500 ton (1757 kW) water-cooled centrifugal chiller has improved by over 50% since 1975 as indicated by the necessities of ASHRAE/IES Customary ninety.1 (hereafter known as Standard ninety.1). Cooling towers have additionally evolved from centrifugal fan items to far more vitality-environment friendly axial fan designs with improved heat transfer surfaces, referred to as fill. As well as, unbiased certification of thermal efficiency for open circuit cooling towers per the Cooling Technology Institute’s Normal 201 has become widely accepted in the market and turned required by Standard ninety.1 within the 2007 edition.
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Whereas the effectivity enhancements of individual system elements have definitely lowered total energy use, even higher improvements are doable by optimizing the best way cooling techniques are designed and operated. As an example, the complete load vitality use in a 500 ton (1757 kW) water-cooled chiller system, based on Normal 90.1-2013 minimum efficiencies, is roughly broken down as follows: chiller 77%, cooling tower eight%, condenser pump 7%, and chilled water pump 8%. With the chiller accounting for nearly all of the vitality use, many contend that it is sensible to operate the cooling tower fan and condenser pump such that compressor power use is reduced ince it’s by far the largest motor within the system.
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For example, to lower chiller power, the cooling tower is commonly operated at full fan velocity and movement until ambient circumstances allow the minimal condenser water temperature limit to be reached. Beneath this stage, the fan velocity of the cooling tower is modulated, sometimes by a variable velocity drive (VSD), to maintain the set point. This is basically the working sequence for the water-cooled baseline buildings found in Appendix G of Standard ninety.1-2013, which makes use of 70 F (21.1 C) because the lower condenser water set point (although this value is above the low restrict for almost all chillers). In follow, this lower limit varies and is dependent on the kind of chiller. The nearer to full load the system runs, the higher the energy savings from such strategies. Nevertheless, most chiller programs function at less than full load for the majority of time.
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While it could seem counter intuitive, many designers and operators have discovered that utilizing less cooling tower power reduces total system vitality at many off-design conditions. At such circumstances, ancillary tools (condenser pumps and cooling tower followers) operating at full design velocity becomes a bigger portion of the system vitality use, especially when variable pace chillers are used. Decreasing cooling tower fan speed can cut back associated fan power significantly while growing chiller power solely marginally. For instance, slowing the tower fan speed to 80% of design reduces tower fan energy by about half, while solely elevating the cooling tower leaving water temperature about 3 F (1.7 C). Depending on the particular load level, the rise in chiller vitality consumption from the higher condenser water temperature may or may not be less than the reduction in cooling tower energy. The bottom line is to stability the efficiency of the system parts so overall performance is optimized.
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