UTSW Thermal Energy Plants, Power Generation and Electrical System What do we do to meet the Emission Reduction, Energy usage Reduction and Electrical.

Slides:



Advertisements
Similar presentations
Improve Facility Operation through Commissioning-A Case Study Mingsheng Liu, Ph.D., P. E. University of Nebraska.
Advertisements

UCSD Medical Center - Hillcrest Campus Case Study Gerry White Facilities Design & Construction University of California, San Diego.
Lindbergh Field International Airport New Terminal Bill Mahoney LSW Engineers.
Building Coordinators Network Welcome. Building Coordinators Network Meeting Agenda April 13, 2006 Tornado Anniversary – Rod Lehnertz Welcome – Kelli.
Energy Service Productivity Management ©2007 ESPM Energy Consultants, L.L.C. All Rights Reserved.
HARVARD MEDICAL SCHOOL. HARVARD MEDICAL SCHOOL Brian Barmmer Facilities Engineer Managing Critical Facilities at Harvard.
Energy Efficiency and Intelligent Power Plants Rameshbabu R S 10 th May, 2006 The Center For Bits And Atoms MIT.
Learning Outcomes Upon completion of this training one should be able to: Identify open loop and closed loop campus-type hydronic water system applications.
University of Iowa Indoor Practice Facility Outside-the-box HVAC Lincoln Pearce, PE – KJWW Engineering David Hahn – University of Iowa Chilled Water Plant.
Smart Devices. Smart Buildings. Smart Business The Potential for DCx Technology Enabled HVAC Operation Scot Duncan, P.E.
Using Benchmarking to Identify Energy Efficiency Opportunity in Cleanrooms; The Labs 21 Approach William Tschudi and Peter Rumsey June 29, 2004
Denver Place North & South Towers Case Study Matt Urquhart Amerimar Realty Management Company Jack Wolpert E-Cube, Incorporated.
Chilled Water Piping Systems (VPF Focus)
CLEANROOM ENERGY BENCHMARKING William Tschudi October 9, 2002 Acknowledgements: Pacific Gas and Electric Company, Rumsey Engineers
Worcester Polytechnic Institute Gordon Library and Fuller Laboratory B.N. Tripathi Senior Vice President CES/Way.
Cooling Product Positioning
ENERGY EFFICIENCY FOR END-USERS.  CSU Chancellors office coordinates the efforts to accomplish the goals established by Assembly Bill 32 for green house.
UTSW Thermal Energy Plants, Power Generation and Electrical System What do we do to meet the Emission Reduction, Energy usage Reduction and Electrical.
Engineer Fahad Hasan Associate Yousuf Hasan Associates, Consulting engineers District cooling.
SUSTAINABILITY ANALYSIS OF RESIDENTIAL BUILDINGS Ashok Kumar Abhilash Vijayan Department of Civil Engineering.
1Belimo Americas Danbury, Connecticut Belimo Energy Valve™ Investing in Efficiency.
44 th Annual Conference & Technical Exhibition By Thomas Hartman, P.E. The Hartman Company Georgetown, Texas Sustainable Chilled Water.
Jim Chmielewski – HVAC Sales Manager Emerson Control Techniques
CHW Optimization Case Studies
Presentation Outline Introduction CHP Analysis Electrical Analysis Acoustical Analysis Thermal Storage Analysis System Optimization Analysis Conclusion.
2011 National Grid Energy Expo Proprietary & Confidential 1 Energy Management Systems 2011 National Grid Energy Expo April 7, 2011 Assis Flores Account.
 Install new air cooled high efficiency screw chiller (variable speed)  Install new fan coils with ECM motors and low temperature heating coils and proper.
Charles F. Hurley Building Case Study B.J. Mohammadipour Bureau of State Office Buildings.
Common Energy Mistakes
CNN Center John Hester Turner Properties, Inc.. CNN Center Built in ,583,000 square feet on 18 floors Five structures joined by a common atrium.
Siemens sans siemens sans bold siemens sans italic siemens sans italic bold siemens sans black siemens black italic Siemens Building Technologies.
Chilled Water Systems Total Cost of Ownership
Auraria Higher Education Center Case Study John Ismert & Frank Ellis Auraria Higher Education Center Facilities Management.
Examples of Commissioning Cost Savings Commissioning for Sustained Building Performance September 29, 2011 Marriott Birmingham, AL.
1 Multi-use Facility. 2 Occupancy – 140 persons Building Characteristics Single story 20,000 square feet (250’ x 80’) Standard construction.
1 Atmospheric Vortex Engine Development and Economic.
Lecture Objectives: Finish with thermal storage systems Plumbing Hydronic distribution systems –Chiller/Boiler – Storage – Building.
Chilled water Meyrin consolidation Study 1 st Part Many thanks for their contribution to: Pasquale Alemanno, Fortunato Candito, Alexander Putzu.
K Hartman & Ralph E H Sims Centre for Energy Research, Massey University, Palmerston North Dairy Insight Project.
Lecture Objectives: Finish with thermal storage systems Learn about plumbing systems.
Foothill College & Space Science Center Bill Kelly Viron Energy Services (510) ext 13,
Some Basic UVM Info 425 acres of maintained acreage.. Central Steam Plant Central Chilled Water Plant Back Up Boilers Research.
NOVO ETS IMPROVING YOUR ORGANIZATIONS’ ENVIRONMENTAL, HEALTH AND SAFETY PERFORMANCE ENERGY MANAGEMENT IN THE CONTEXT OF GREEN PRODUCTIVITY.
Lecture Objectives: Summarize sorption chillers Learn about Chiller modeling Cooling towers and modeling.
Re-Commissioning of the Water Cooling System at Université de Sherbrooke Department of Buildings June 2008.
November 2004 Low Hanging Fruit Low Cost Energy Efficiency Opportunities in Cleanrooms.
CHAPTER 5: Mass and Energy Analysis of Control Volumes
Management and Organisation of Electricity Use Electrical System Optimisation Belgrade November 2003.
Retrocommissioning Program UBS 677 Washington Blvd, Stamford, CT.
Whitman-Hanson Regional High School Energy Efficient Systems: HVAC All fans and pumps are VFD controlled with fully reactive controls Condensing gas-fired.
Introduction to HVAC Optimization
Utah State University Logan Utah. Founded 1888 as a Land Grant Institution Host City – Logan, Utah (48,ooo+ population) ~ 15,000 Students (~ 28,700 students.
Introduction to Energy Management. Week/Lesson 12 Advanced Technology for Effective Facility Control.
Variable Speed Applied to Pumps. Life Cycle Costs - Courtesy of Hydraulic Institute and Europump Initial cost is not the only cost associated with a pump.
7th International Scientific Conference on “Energy and Climate Change”
1 Hospital Building and Campus Piping. 2 Hospital Building Occupancy – office and patient areas Patient areas: 24 hours per day Office areas: 8 am – 5.
Introduction to Energy Management. Week/Lesson 13 Control Strategies for Occupant Comfort.
Kansas City International Airport Michael Glasker, P.E. George Butler Associates, Inc.
Hilario J. Negrón (787) ext 3223 (787) Measuring Operational Efficiency.
Copyright © 2015 Optimum Energy LLC. All Rights Reserved. Proprietary & Confidential Incorporating Energy Conservation Strategies into University Research.
7/15/2002PP.AFD.09 1 of 43 Yaskawa Electric America Variable Frequency Drives In HVAC Applications.
Lecture Objectives: Learn about thermal storage systems
Sustainability Best Practices
The Data Center Challenge
Energy Savings Projects
Lecture Objectives: Continue with Sorption Cooling
Kaeser Compressors, Inc.
Grunenwald Science and Technology Building
Thermal Energy Storage
Energy Efficiency in District Coiling System
Presentation transcript:

UTSW Thermal Energy Plants, Power Generation and Electrical System What do we do to meet the Emission Reduction, Energy usage Reduction and Electrical generation goals?

Mission We are a service organization with mission to provide QUALITY SERVICE in support of the educational, research, health care, and community service goals of UT Southwestern.

How big are we in Utilities? Consumption per year (2010) ◦Electric – 317,199,934 KWh or $23,954,638 ◦Gas – 1,051,310 MCF or $7,612,321 ◦Water – 559,372 MGal. or $3,175,029 52,000 tons of cooling capacity – Chillers 550,000 lbs/hr Steam capacity – Boilers 31 MW of Power – Peak engine/backup 38 plus Emergency Generators 250,000 EMS points monitored – We are the biggest in the D/FW Metroplex Million ft 2 Campus

Introduction to the total Plants North Thermal Energy Plant – 1992 ◦Chillers – 18,500 tons ◦Boilers – 138,000 lbs/hr steam South Thermal Energy Plant – 1972 ◦Chillers – 18,750 tons ◦Boilers – 246,000 lbs/hr Steam Bass Thermal Energy Plant – 1956 ◦Chillers – 4,500 tons ◦Boilers – 40,000 lbs/hr Steam St. Paul Thermal Energy Plant – 1961 ◦Chillers – 3,000 tons ◦Boilers – 50,000 lbs/hr Steam Zale Thermal Energy Plant – 1987 ◦Chillers – 2,800 tons ◦Boilers – 30,000 lbs/hr Steam North Campus Generation Plant – 2005 ◦Natural Gas Driven Engines – 9 MW South Campus Generation Plant ◦Natural Gas Driven Engines – 12 MW

Serves North Campus

Sustainable Chiller

Equal Marginal Performance Principle Based Control Sustainable Chilled Water Systems

Tower Approach Temperature For 3 Tower System At lower wet bulb temperatures, the approach of cooling towers rises due to reduced moisture capacity of cooler air. By keeping towers on line and slowing fans and pumps, greater air and water volumes pass over larger surface areas per unit energy expended to improve part load approach temperatures, as shown in this chart. The total power to fans and pumps is the same for the variable speed and constant speed systems at each condition. Note the improved approach by slowing, not shedding towers at low loads. Sustainable Chilled Water Systems

Chiller Plant with Conventional Controls Equipment is operated independently with local PID temperature and pressure loops. Chillers and towers are sequenced to keep on-line equipment as fully loaded as possible. Plant optimization, if it is applied at all, requires another level of control that continuously resets the various set-points, which can reduce overall system stability. Sustainable Chilled Water Systems

All-Variable Speed Demand Based Control Equipment is connected via an integrated network and operation is coordinated to maintain lowest overall energy use at all load conditions using demand based control and natural curve sequencing of equipment. Unless incorporated as design criteria, temperature and pressure setpoints are not employed except as operating limits. Sustainable Chilled Water Systems

Network Enabled Demand Based Control Of All-Variable Speed Chiller Plants Control Features: Simple Direct Control Relationships between Chillers, Pumps and Tower Fans "Natural Curve" Sequencing of chillers Benefits: Ultra-Efficient Plant Operation Simpler and More Stable Plant Operation Longer Life for Equipment and Lower Maintenance Costs Sustainable Chilled Water Systems

Primary/Secondary CHW Distribution System Sustainable Chilled Water Systems

Variable Speed Pump Operation Comparison Sustainable Chilled Water Systems

Improving Efficiency of Variable Flow Distribution System for Demand Based Control Reduce the pressure drop through chilled water valves. Line size valves with zero pressure drop at full flow are effective if they are properly controlled. Operate chilled water pumps with network control that reacts to actual demand for flow by the valves served and sequence pumps to so that on-line pumps operate as close as possible to their natural curve. Sustainable Chilled Water Systems

Implementing All-Variable Speed Chilled Water Systems WHY? Achieves approximately 0.5 kW/ton overall annual plant & distribution system performance – about half the energy use of most existing plants. Simple, stable, ultra-efficient control with reduced system maintenance. HOW? Network control coordinates all-variable speed equipment for optimum operation in response to actual demand on system. Plant is designed for direct control among components, and distribution system to minimize pressure drops and variations Sustainable Chilled Water Systems

Next Steps Toward a Sustainable Chilled Water System 1.Instrument current facility or facilities to obtain actual energy used to generate and distribute chilled water. 2.Calculate the potential avoided costs by converting to an ultra-efficient all-variable speed chilled water system. 3.Develop cost-effective budgets, goals and target dates to implement a conversion to a more sustainable system. 4.Implement the project or projects required to achieve the targeted plant performance. 5.Incorporate performance verification and performance accountability to ensure the goals are achieved and maintained. Sustainable Chilled Water Systems

ANY Questions?