Energy Conserving Alternatives HVAC 15a CNST 305 Environmental Systems 1 Dr. Berryman.

Slides:



Advertisements
Similar presentations
Formulas.
Advertisements

HVAC 13a CNST 305 Environmental Systems 1 Dr. Berryman
Improving the Energy Performance of Homes and Households Presented by: Allen Zimmerman, Professor The Ohio State University Wooster Campus and ATI students.
Over 50 Years of Regional Service and World-Class Quality United Air Conditioning is a client-focused, family-owned air conditioning company serving.
BUILDING AIR CONDITIONING
1 1 BASICS OF ENERGY MANAGEMENT Section A - Energy Basics.
HVAC 11a CNST 305 Environmental Systems 1 Dr. Berryman
How to lower the energy use of your home David Parker Building Analyst/ Energy Auditor Parker Energy Solutions David Parker Building Analyst/ Energy Auditor.
Heating, Ventilating, and Air-Conditioning
Heating, Ventilating, and Air-Conditioning (HVAC)
Finding Residential Energy Solutions through Energy Modeling
Environmental Controls I/IG
Make the most of your energy Head Office – Case Study.
HVAC: heating, ventilating, and air conditioning this is a thermostat: it sends signals to the heating/cooling system.
University of Liège Faculty of Applied Sciences Thermodynamics Laboratory Workshop “Commissioning and Auditing of Buildings and HVAC Systems” Use of a.
Summary of Heat Loss Calculations Assessing overall heating requirements for building (E) Component U-ValueAreaHeat Loss Rate (W o C -1 ) Walls U walls.
Energy in Focus Energy Savings with Water Based Systems By Maija Virta Specialist of Indoor Environment Technology.
HVAC 7ab CNST 305 Environmental Systems 1 Dr. Berryman
CLIMA 2010 May 10, 2010 | Energy Performance of Buildings | PAGE 1 Dr. Hicham LAHMIDI Optimization method using genetic algorithms for designing high performance.
AWARD FOR THE BEST ENERGY EFFECTIVE PROJECT 2008 in Slovenia Optimal use of renewable energy sources for heating and cooling of our office building Optimal.
HVAC Systems Overview HVAC Overview - # 1 Tom Lawrence
Heat Loss & Gain Calculations 1. How Heat Moves in Homes Conduction is the transfer of heat through solid objects, such as the ceilings, walls, and floors.
Heat Loss HVAC CNST 305 Environmental Systems 1 Dr. Berryman.
Dual Fuel + Hybrid System Selling.
Do Try This at Home!. Reducing energy consumption at home has many benefits.
Presentation Outline Introduction CHP Analysis Electrical Analysis Acoustical Analysis Thermal Storage Analysis System Optimization Analysis Conclusion.
Energy use in buildings Dr. Atila Novoselac Associate Professor Department of Civil, Architectural and Environmental Engineering, ECJ
This document was specifically prepared to aid utility account managers who are working with C&I customers. Any other use of this material (in whole or.
Massachusetts “Stretch” Energy Code Marc Breslow Executive Office of Energy & Environmental Affairs.
Earth’s Changing Environment Lecture 22 Energy Conservation in Heating and Cooling.
Brought to you by: Connecticut Energy Code Frederick F. Wajcs Senior Energy Engineer Northeast Utilities February 10, 2011.
BEM CLASS 5 Building Thermodynamics – 2 Air-conditioning Load Calculation – latent heat, solar and internal gains.
Energy use in buildings Dr. Atila Novoselac Associate Professor Department of Civil, Architectural and Environmental Engineering, ECJ
Energy Efficiency in Industrial and Commercial Facilities 2003 Energy and Environmental Conference September 16, 2003.
Ductless Heat Pumps Determining Cost Savings Example Gary Nordeen Bill Kingrey, P.E. 11/5/08 AFE Webinar.
Lecture Objectives: Finish with HVAC Systems Discuss Final Project.
Ductwork Systems and Supply Arch 432. What You Need To Know Become familiar with the materials sizing ductwork Understand sizing units.
News  /new_england_sending_a_crowd_to_climate_talks/
Lecture Objectives: Specify Exam Time Finish with HVAC systems –HW3 Introduce Projects 1 & 2 –eQUEST –other options.
Energy Conservation Physics /24/03. Reducing energy consumption may help alleviate environmental problems: Conserve fossil fuel resources Reduce.
Earth’s Changing Environment Lecture 15 Energy Conservation.
Lecture Objectives: Finish with example modeling problems –Phase change thermal storage materials –Energy and airflow Interpret energy simulation results.
Northwest Power and Conservation Council Residential Conservation Resource Assessment Overview of Analytical Process and Major Assumptions April 21, 2009.
Energy conservation strategies Buildings energy consumption depends on building envelop, efficiency of HVAC and lighting systems, amount of required fresh.
Energy Design of Buildings using Thermal Mass Cement Association of Canada July 2006.
Northwest Power Planning Council Residential Space Conditioning and Domestic Hot Water Conservation Resource Assessment Overview of Analytical Process.
Lecture Objectives: -Discus Final Project -Learn about Solar Systems -HW3 (final HW assignment) -HVAC system.
Straumann USA 60 Minuteman Road Andover, MA Kevin Kaufman Mechanical Option The Pennsylvania State University Architectural Engineering.
Introduction to Energy Management. Lesson 4 Determining the Loads on the HVAC System.
Ductwork Systems and Supply Arch 432. What You Need To Know Become familiar with the materials sizing ductwork Understand sizing units.
Design What is the first step in designing a high-performance building? Would it be: Identify synergies Select the correct HVAC system Design around human.
Energy Conservation Building Upgrades Alma School District.
Town of Woodbridge Beecher Road School Infrastructure & Energy Upgrade Presentation to Board of Education December 17 th, 2012 AKF John B. Rice, PE, LEED.
Date of download: 6/30/2016 Copyright © ASME. All rights reserved. From: Evaluation of Passive Cooling Systems for Residential Buildings in the Kingdom.
Lecture Objectives: Discuss HW3 parts d) & e) Learn about HVAC systems
Electric-Heat Equipment
Lecture Announcement Developing Concrete with a Structural and Thermal Insulation Performance and Homogenous and Stratified Approach Dr. Mauricio Lopez.
Lecture Objectives: Discus Final Project Learn about Solar Systems
Achieving Net Zero with a 649,848 Sq. Ft. Industrial Complex
HVAC EQUIPMENT General
Conduction Cooling Loads
Lecture Objectives: Discuss HW3 parts d) & e) Learn about HVAC systems
Section 1.0 — Fundamentals and General
Lecture Objectives: Answer questions related to HW 4
The Benefit of Including Energy Recovery System Analysis
Abbas Shirian, PE Certified GeoExchange Designer
Technology in Architecture
Lecture Objectives: Discus Final Project Learn about Solar Systems
Lecture Objectives: Discuss HW4 parts
Figure 5.1: For coffee to be the hottest when you are ready to drink it at a later time, you should add the cream initially, not just before drinking,
Presentation transcript:

Energy Conserving Alternatives HVAC 15a CNST 305 Environmental Systems 1 Dr. Berryman

Formulas Note: These calculations do not include the cost of fan operation…add 10% for residential and 20% for commercial applications

Estimate Annual Energy

Energy Sources

Annual Costing Office – Example I Office – Example II Given: 1500 hrs heating and cooling Contributing lighting load (10 hrs) – 220,320 BH Peak Heat Loss – 406,850 BH Peak Heat Gain – 630,172 BH

Energy Alternatives Improved Heat Pumps Given: Current Heat Pump – COP 2; SEER 9 New Heat Pump – COP 2.8; SEER 13 Annual Full Load heating hrs = 1500 Annual Full Load cooling hrs = 1500 Electricity $0.08 per kWh Annual Heat Loss 389,680,000 BTU/yr Annual Heat Gain 945,000,000 BTU/yr Cost $10,000 1 st year return on investment: 47%

Energy Alternatives Less Ventilation Given: Original Design – 2,970 CFM winter 2,400 summer New Design – 2000 CFM winter/summer Winter TD is 60 o F; Summer CLTD 20 o F GD (grain difference) = 40 Annual Full Load heating hrs = 1600 Annual Full Load cooling hrs = 1400 Heat w/ an 75% efficient oil fired boiler Oil $0.90 per gallon Cool w/ SEER 8 electric chiller Electricity $0.07 per kWh Cost $2,500 1 st year return on investment: 53%

Energy Alternatives More Roof Insulation Given: Roof area 10,800 SF Current U value = 0.05 New U value = 0.04 Winter TD is 60 o F; Summer CLTD 36 o F Annual Full Load heating hrs = 1600 Annual Full Load cooling hrs = 1400 Heat w/ an 80% efficient gas furnace Natural Gas $0.75 per therm Cool w/ SEER 10 air conditioner Electricity $0.09 per kWh Cost $3,000 1 st year return on investment: 5.8%

Efficient Designs - Opportunities Solar Designs Thermal Mass Evaporation Air movement Ventilation/Infiltration Mechanical Systems Zoning

Summary Calculated values for heat loss and gain may be used to estimate annual energy consumption and evaluate energy conserving alternatives. Indoor fan energy is not usually included in equipment efficiency ratings – Allow 10% residential and 20% for commercial