thermal storage for large laboratory loads, a case … · 2006-06-26 · thermal storage for large...
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THERMAL STORAGE FORLARGE LABORATORY
LOADS, A Case StudyAugust, 2000
Jerry SavageMechanical Engineer, MTS
Sandia is a multiprogram laboratory operated by Sandia Corporation, a Lockheed Martin Company,for the United States Department of Energy under contract DE-AC04-94AL85000.
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THERMAL STORAGE SYSTEM
•Makes Chilled Water At Night When Electric Rates Are Less ForUse During The Day To Cool Ten Connected Buildings
•Stores Over One Million Gallons Or Ten Thousand Ton/Hours OfCooling Water
•Allows For The Shutoff Of Chillers During The Day When ElectricRates Are High
•Potential Energy Savings Of Over $ 200,000 Per Year
•Adds The Potential To Optimize Other Related Systems ForAdditional Savings
•No Moving Parts
•No New Pumps Required
•Will Last Over Fifty Years
•Low Maintenance
•Fast Payback
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Thermal Storage Theory
• Warm return water and cold supply water inthe same tank
• Thermocline forms due to densitydifferences associated with temperature
• Cold water stays at the bottom, Warm at thetop, similar to a lake
• Non Turbulent diffuser system
• Closed system, no head loss due to lowvelocity
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Tank Internals
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Background and History
• We were designing a new laboratory, theProcessing and Environmental TechnologyLaboratory or PETL
• PETL would need a source of chilled waterfor cooling
• We had a nearby Campus chiller plant thatserved ten other buildings
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PETL Nearing Completion
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• We were under a normal Electrical ratestructure with Peak, Off Peak, and DemandCharges
• Thermal Storage was presented as apossible alternative to new chillers andcooling towers
• The existing chiller plant was in need of athorough design review ( known overpumping problems )
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Design Review of ThermalStorage
• Our A&E Firm came back to us with a lessthan optimistic life cycle cost report
• I worked with CBI and found a totallydifferent result
• A last minute decision was made to useChilled Water Thermal Storage
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Cost Analysis
• First cost was available from the PETLproject that would have been spent onchillers and cooling towers
• Estimated $200,000 a year in energy costsand reduced maintenance
• Simple payback of less than one year,operational before PETL for a near zeropayback period
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Our Plan
• Gain a complete understanding of theexisting chiller plant operation
• Create a campus wide design intent andoperating structure
• Design the Thermal Storage System tosupply PETL while correcting designdeficiencies of the entire campus system( AE’s design later replaced with Sandiadesign )
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Our Plan
• Perform a complete flow analysis to verifythe new design
• Implement the findings
• Keep metrics on the operation and correctthe control strategy as required
• Claim victory for our facilities group andlive happily ever after
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System Layout
• Three 1300 ton 1000HP centrifugal chillerswith 2000 GPM circulation pumps
• Primary loop with 20 HP, 4000GPMcirculation pumps
• Decoupled secondary supply loops
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System Layout
• We first drew up the system and gathereddata, pump curves, etc.
• The system was sketched and reverseengineered with known operating data
• A flow model was done to verify presentoperation
• The new Storage tank was added to the flowmodel
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Tank Charge Cycle, Two Chillers On, Partial System Load
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Tank Discharge Cycle, Chillers Off, Medium System Load
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Final Design Analysis
• Utilized existing pumps, with new VFDdrives, increase primary flow by 50%
• Two connection points with valves for tanklines
• Self balancing
• Blending available with bypass valve
• Chiller Plant sensor upgrade with BTUmeters
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Design Comparison
• A&E Firm design had six new pumps withassociated VFD’s
• A complicated piping system with at leastsix connection points
• multiple operating valves and bypass lines
• It doesn’t have to be complicated if youtake the time to understand your system
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Lessons Learned
• Keep tank temperature sensors out of thesun
• Watch your chemical program, it can getexpensive
• Hire an A&E firm with experience inthermal storage
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Tank design
• One million gallon above ground (no USTregulations )
• Steel with epoxy painted interior
• Ring wall foundation with sand fill ( no oil )
• Active cathodic protection system( impressed current )
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Lower Difuser Cone
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Upper Difuser Cone and Roof Structure
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Insulation System and Sheething
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Insulation System
• Two inches of polyiso. With a bondedaluminum skin
• Very low losses due to volume vs.. surfacearea
• Losses of around one degree per week in 95degree temperatures
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Completed Tank
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