
Learn chiller plant design by defining a chiller and its vapor compression or absorption cycles. Identify the compressor, condenser, expansion valve, and evaporator as key components in cooling liquids.
Explore vapor compression chillers, including reciprocating, centrifugal, screw, and scroll types, plus air and water cooled units. Review absorption chillers using lithium bromide-water or ammonia-water and single- or multi-stage configurations.
Design a Gillette plant chiller system by using single and multiple Gillette units, 3d modeling with Rivard MVP, and applying the world book's flow calculations and 2d design guidelines.
Explore the design and operation of water-cooled centrifugal chillers, including compression cycles, condensers, evaporators, cooling towers, and energy-efficient control via a variable frequency drive.
Learn the air-cooled chiller cycle by detailing compression, the condenser, heat transfer to the surrounding air, expansion and gas cooling, and how these steps interact with components to provide cooling.
Describe the lithium bromide absorption chiller, detailing the absorber and generator, heat input, evaporation and condensation of water, and the role of cooling tower water in the condenser.
Determine heat exchange between refrigerant and the external environment and estimate the required flow rate by considering specific heat and the temperature difference.
Explore energy efficiency in chillers by comparing coefficient of performance across air-cooled, water-cooled, and absorption chillers. Coefficient of performance ranges vary with capacity and compressor types.
Learn to read legends and use them to build a single line diagram for a chiller plant, identifying signs for condenser, cooling tower, valves, and key nodes.
Explains air handling unit's role in regulating and circulating air in HVAC, detailing filters, heating and cooling coil, and motor-driven blower with a variable frequency drive to control supply air.
Understand the fan coil unit (fcu) as a heating and cooling device with a heat exchanger, used in ducted setups and connected to boilers or chillers, with easy maintenance.
Learn how a cooling tower rejects heat from chiller condenser and building, and inspect its key components, drift eliminator, fill, spray nozzles, and a variable frequency drive for the fan.
Explore centrifugal pumps for chilled water and condenser circuits, maintaining system dynamic head and required flow while accounting for major and minor losses, with pumps at the condenser inlet.
Explore how centrifugal pumps convert electrical energy to mechanical and then to fluid energy through the impeller and shaft, increasing pressure while reducing velocity.
Learn how to insert and link a Revit file into a project using a mechanical template, set origin, bind the linked file, and verify levels and 3D view.
Design a 100-ton air-cooled chiller piping system for a building, select mechanical equipment, compute evaporator flow, size pipes, evaluate head loss, and integrate air handling units.
Insert and size cooling coils and mechanical equipment within units, then define the piping layout, water flow, and centrifugal pump head to design a chiller piping system.
Design and connect a chiller piping system by detailing suction and outlet branches, inlets and outlets, water supply and recirculation, pump integration, and elevation adjustments for proper flow.
Select and customize pipe materials and properties using a design tool, switching between copper and schedule 40 steel pipes, and adding new pipe types or materials.
Master valve placement in chiller plant design by modeling piping, selecting well types, sizing radii, and connecting inlets and outlets to ensure proper 3-D flow layout.
Select the pipe and apply fiberglass insulation to all visible sections, choose thickness such as 1, 2.5, or 3.5 inches, and toggle insulation on or off as needed.
Explore configuring a vertical type expansion tank with 20 gallon capacity in a chiller plant, connecting to the main pipe with drop pipes and gate valves to manage thermal expansion.
identify and generate a comprehensive pressure loss report for chiller plant systems by configuring project details, selecting hydraulic components, and detailing flows, diameters, and total pressure losses.
The lecture outlines piping distribution options in chiller plant design, covering one pipe, two pipe, three pipe, and four pipe systems with boilers, chillers, pumps, and hot and cold water.
Explore piping systems in chiller plants, comparing closed loop and open loop configurations, with materials such as steel, copper, and plastics, plus pumps, expansion tanks, and cooling towers.
Explore piping insulation for industrial and commercial facilities, covering glass insulation, glass fiber material, polyurethane form, and phenolic form, and how insulation minimizes heat loss and prevents condensation.
Analyze piping materials and friction factors to maximize energy efficiency, reduce pump power, and lower energy costs while balancing pressure drop with capital cost and system lifetime.
Explore how expansion tanks accommodate water's thermal expansion. Compare open and closed types and learn to size the tank using system volume and operating pressures.
Design the single Jillette by binding the selected file, switching to 3d view, and sharing the encrypted file with you.
Place hvac equipment in a chiller plant design, select centrifugal liquid chiller, cooling tower, air handling units, and waterside pumps to support a 550-ton system.
Explore the condenser and cooling tower connection in a chiller plant, detailing the water supply to the condenser, its passage to the cooling tower, and return to the pump.
Connect the evaporator to the AHU by configuring the water-side path, load and place coils and components, and set US units for accurate sizing.
Explore AHU and evaporator GPM distribution by adjusting connections and piping for the chiller and cooling water, verifying flow rates such as 1320 GPM across five circuits.
Analyze condenser and cooling gpm distribution, optimize pipe connections and diameters, and evaluate hydraulic losses to ensure proper pump performance in chiller plant design.
This course is Designing of chiller Plant. chillers are part of HVAC system. after this Course you became able to Design chiller Plant. In The specialty of This course was that we can Discuss From basic to advance level. so in this course you will Learn about Each component Of that we can use in Designing of chiller Plant. Firstly we can Discuss all the basics of chillers there working principle & typical Details of chillers. And then calculations and Flow rate of within systems. so in next steps we can Discuss about piping Systems in Chiller plant and component of piping like fittings etc and about the piping systems used in designing. after this we can Discuss about the the typical Details of Air handling units and pumps and then we can calculate pump head so we also Design complete system using Revit MEP. expansion tank and chemical dosing is part of chiller plant Designing so we can Discuss these devices in Details. and also calculate the sizes of these devices so after that we can discuss all about the chiller plant room Design using Revit MEP we can Discuss about the placing chiller in parallel and then we can also discuss about Primary and Secondary pumping system. we discuss about Decupling of systems and about the Designing of header. we can Discuss about multiple pump system. we can discuss about control valves, Thermometers, Gauges and Pete’s Plug, Air Vents, Pipe Hangers and Anchors and other devices. we can also Discuss about Tertiary Pumping system and then we can Discuss Parallel Chiller System.
there are different Methods of water distribution Systems like 1-Pipe Distribution System,2-Pipe Distribution System,3-Pipe Distribution System & 4-Pipe Distribution System so we Discuss all systems in Details. so at the end we can discuss very large chiller plant using Revit mep in which we use chiller in series and parallel and we can use different chillers like centrifugal, water absorption and air cooled chiller and Design large plant using primary, secondary and tertiary pumps. we can calculate flow rate and complete distribution of water and all losses through fittings pipes etc.
at the end we can discuss about district cooling systems using very big chiller plant. there are huge amount of district cooling system. we can Design using Revit MEP
course contents
Chiller Basic
Single Chiller system
Flow and Capacity Calculations
WATER FLOW RATE IN CHILLER
Typical Air-Cooled Chiller Piping Detail
Typical Water-Cooled Chiller Piping Detail
Chillers and Energy Efficiency
CHILLER PIPING BASICS
Closed Loop Piping System
OPEN Loop Piping System
Expansion Tanks
Expansion Tanks CALCULATION
Piping Insulation
Piping and Energy Efficiency
Pumping Basics
Cooling Tower Basics
Control Valve
Air Vents
Thermometers, Gauges and Pete’s Plug
Pipe Hangers and Anchors
Pipe Distribution System
Parallel Chiller System
Multiple Secondary Loops
District Cooling System
District Cooling System
BENEFITS OF USING DISTRICT COOLING
Very Large Chiller Plants