p13621: conductive heat transfer lab equipment

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P13621: CONDUCTIVE HEAT TRANSFER LAB EQUIPMENT HTTPS://EDGE.RIT.EDU/EDGE/P13621/PUBLIC/HOME MSD 1: Detailed Design Review 2 November, 2012 RIT KGCOE

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P13621: Conductive Heat Transfer Lab Equipment https://edge.rit.edu/edge/P13621/public/Home. MSD 1: Detailed Design Review 2 November, 2012 RIT KGCOE. Project Participants. Project Sponsor : RIT KGCOE, Chemical Engineering Dept. Dr. Karuna S. Koppula Mr. Paul Gregorius - PowerPoint PPT Presentation

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Page 1: P13621: Conductive Heat Transfer Lab Equipment

P13621: CONDUCTIVE HEAT TRANSFER LAB EQUIPMENT

HTTPS://EDGE.RIT.EDU/EDGE/P13621/PUBLIC/HOME

MSD 1: Detailed Design Review

2 November, 2012

RIT KGCOE

Page 2: P13621: Conductive Heat Transfer Lab Equipment

Project ParticipantsProject Sponsor : RIT KGCOE, Chemical Engineering Dept.

Dr. Karuna S. Koppula

Mr. Paul Gregorius

MSD 1 Team Guides : Neal Eckhaus

Steve Possanza

Chinmay Patil

(field expert)

Team P13621:

Shannon McCormick - (ChemE) PM

Tatiana Stein - (ChemE) Team Facilitator

Shayne Barry - (ME) Procurement

Jordan Hill - (EE)

Piotr Radziszowski - (ME)

Meka Iheme - (ChemE) Risk Manager

Rushil Rane - (ISE) Lead Engineer

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Agenda• Project Overview • Customer Needs and Engineering Metrics• Assembly Drawing & CAD Drawings • Feasibility Analysis

• Specimen dimension analysis • Cooling Capacity• Insulation Analysis • Experimental Basis• Safety Analysis

• Bill of Materials • Spec Sheets • Project Plan • Risk Assessment • Test Plan

Page 4: P13621: Conductive Heat Transfer Lab Equipment

Project Overview

Mission Statement: To provide students with the ability to observe conductive heat transfer and the ability to measure the thermal conductivity of a material.

Background:

• A material’s ability to transfer heat is a measurable quantity

• RIT ChemE department would like to procure lab equipment that would demonstrate heat transfer such that students may be able to calculate thermal conductivity

• Experimental results would be comparable to published data

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Customer Needs

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Engineering Metrics

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Engineering Metrics

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Assembly Drawing

Assembly/ disassembly instructionsTransfer of heatLinear profile

Size of cold plateConstant pressure applicationThermal stickers for visualLosses

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CAD Drawings

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CAD Drawings

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CAD Drawings

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Specimen Dimension Analysis

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Specimen Dimension Analysis

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Specimen Dimension Analysis

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Cooling Capacity

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Insulation Dimension Analysis

𝑋=𝑘𝐴 (𝑇1−𝑇 2 )

𝑞X = Ideal Insulation Thickness (m)K = Thermal Conductivity (W/mK)A = Area of Sample (m2)T2 = Outside Temperature (K or C)T1 = Sample Temperature (K or C)Q = Power in (W)

Monte Carlo Analysis

K – Held Constant (0.2 W/mK)A – Held Constant (0.0079 m2)T2 – Held Constant (20 C)

-Q and T1 are varied simultaneously-Generate large data set and use stochastic methods to determine best insulation thickness

It is infeasible to use deterministic methods due to the many non-converging values of X resulting from combinations of Q and T1 . T2 values also change along the length of the sample, adding to the complexity of a deterministic model.

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Error Minimized using Excel Solver Function

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Insulation Dimension Analysis

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Insulation Dimension Analysis

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Current Lab Set-Up

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Experimental Basis

Conclusions from Lab•Aluminum graph was more linear than the copper graph

• Aluminum sample was longer than the copper sample the longer the sample size, the better the accuracy that was achieved

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ANSYS – Thermal Model

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ANSYS – Heat Generation Model

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ANSYS – Temperature Boundary Model

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ANSYS – Heat Flux Model

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Safety Analysis

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Safety Analysis

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Bill of Materials

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Bill of Materials

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Spec Sheets – cartridge heater

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Spec Sheets – cold plate

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Spec Sheets – cooling unit

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NI 9211 DAQ vs. NI USB-TC01

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DAQ comparison

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Power Supply

• 0 to 48 voltage range• 0-1 A current range• P=I*V• Provides exact method of calculating energy into the system

Page 36: P13621: Conductive Heat Transfer Lab Equipment

Project Plan

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Project Plan

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Risk Assessment

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Risk Assessment

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Test Plan

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Test Procedures

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Test Procedures

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Test Template

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Questions?