Www.orcnext.be ORCNext – WP4 Development of supercritical technologies Catternan Tom 1.

Slides:



Advertisements
Similar presentations
HEAT TRANSFER Final Review # 1.
Advertisements

ORCNext – WP4 Development of supercritical technologies Catternan Tom 1.
Estimation of Convective Heat Transfer Coefficient
Chapter 8 : Natural Convection
Two-Phase Flow Boiling Heat Transfer P M V Subbarao Professor Mechanical Engineering Department Selection of Optimal Parameters for Healthy and Safe Furnace.
System and Component Efficiency with Refrigerant R410a A. T. Setiawan 1, A. Olsson 2, H. Hager 2 1 Department of Energy Technology, Div. Of Applied Thermodynamics.
Analysis of Simple Cases in Heat Transfer P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Gaining Experience !!!
Design of Systems with INTERNAL CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi An Essential Part of Exchanging.
CHE/ME 109 Heat Transfer in Electronics LECTURE 17 – INTERNAL FORCED CONVECTION FUNDAMENTALS.
Free Convection: Mass Transfer Chapter 9 Section 9.10.
CHE/ME 109 Heat Transfer in Electronics
Correlations for INTERNAL CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi An Essential Part of Exchanging Heat……..
Computation of FREE CONVECTION P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi Quantification of Free …….
Heat Exchangers with Cross Flow past Cylinders P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Another Common Industrial Application!!!
Kern Method of SHELL-AND-TUBE HEAT EXCHANGER Analysis
Exergy analysis of an LNG boil-off gas reliquefaction system
Heat Pipes Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Heat Exchange through Another Natural Action….
Momentum Heat Mass Transfer
▪The PCM-epoxi nano-composite materials obtained as cross-linked three dimensional structures are attractive for space heating and cooling of buildings.
Internal Flow Convection -constant surface temperature case Another commonly encountered internal convection condition is when the surface temperature.
CHE/ME 109 Heat Transfer in Electronics LECTURE 19 – NATURAL CONVECTION FUNDAMENTALS.
Deduction of Fundamental Laws for Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Modification of Basic Laws for.
Thermodynamics Part II. Remaining Topics Mechanisms of Heat Transfer Thermodynamic Systems and Their Surrounding Thermal Processes Laws of Thermodynamics.
Introduction to Heat Transfer
FREE CONVECTION Nazaruddin Sinaga Laboratorium Efisiensi dan Konservasi Energi Jurusan Teknik Mesin Universitas Diponegoro.
Fouling Factor: After a period of operation the heat transfer surfaces for a heat exchanger become coated with various deposits present in flow systems,
ORCNext – WP4 Development of supercritical technologies Tom Catternan Henk Huisseune 1.
Pro-Science 4 th International Conference of Hydrogen Safety, September 12-14, 2011, SAN FRANCISCO, USA EXPERIMENTAL STUDY OF IGNITED UNSTEADY HYDROGEN.
ORCNext – WP4 Development of supercritical technologies Huisseune Henk 1.
Department of Flow, Heat and Combustion Mechanics – Ghent University – UGent Linear stability analysis of a supercritical loop C.
ORCNext – WP4 Development of supercritical technologies WP-leader: UGent– Applied Thermodynamics and Heat Transfer Prof.dr.ir. Michel De.
Heat Transfer/Heat Exchanger How is the heat transfer? Mechanism of Convection Applications. Mean fluid Velocity and Boundary and their effect on the rate.
FREE CONVECTION 7.1 Introduction Solar collectors Pipes Ducts Electronic packages Walls and windows 7.2 Features and Parameters of Free Convection (1)
Convection in Flat Plate Boundary Layers P M V Subbarao Associate Professor Mechanical Engineering Department IIT Delhi A Universal Similarity Law ……
Analysis of Flow Boiling
Performance Analysis of Heat Exchangers P M V Subbarao Professor Mechanical Engineering Department I I T Delhi A First Step in Techno-Economics of HXs?!?!?!
MULTI-COMPONENT FUEL VAPORIZATION IN A SIMULATED AIRCRAFT FUEL TANK C. E. Polymeropoulos Department of Mechanical and Aerospace Engineering, Rutgers University.
Date of download: 5/28/2016 Copyright © ASME. All rights reserved. From: Forced Convection Heat Transfer in Spray Formed Copper and Nickel Foam Heat Exchanger.
Convection Heat Transfer in Manufacturing Processes P M V Subbarao Professor Mechanical Engineering Department I I T Delhi Mode of Heat Transfer due to.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 8 Internal flow.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 9 Free Convection.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 6 Introduction to convection.
CERN Cryolab CO 2 cooling for pixel detectors Investigation of heat transfer Christopher Franke, Torsten Köttig, Jihao Wu, Friedrich Haug TE-CRG-CI.
The Molecular Physics of Chain Clusters Boris Sedunov Professor Russian New University Moscow.
Heat Transfer Su Yongkang School of Mechanical Engineering # 1 HEAT TRANSFER CHAPTER 9 Free Convection.
The Experimental study of supercritical CO 2 flow in the porous media for the heat transfer of EGS Reporter :Ming-Che Chung Date : 2014/07/01.
Date of download: 10/3/2017 Copyright © ASME. All rights reserved.
Reporter :Ming-Che Chung
Nucleate pool boiling heat transfer of TiO2–R141b nanofluids
Date of download: 10/11/2017 Copyright © ASME. All rights reserved.
International Topical Meeting on Nuclear Reactor Thermal Hydraulics
Chapter 8: Internal Flow
Date of download: 10/27/2017 Copyright © ASME. All rights reserved.
SAMPLE PROBLEM MATRA Input Preparation
PPT by Heliokinesis Research Group
Date of download: 11/7/2017 Copyright © ASME. All rights reserved.
Date of download: 12/23/2017 Copyright © ASME. All rights reserved.
Leonard Vasiliev, Alexander Zhuravlyov and Alexander Shapovalov
Extended Surface Heat Transfer
Chapter 8 : Natural Convection
Date of download: 3/4/2018 Copyright © ASME. All rights reserved.
Dimensional Analysis in Mass Transfer
Subject Name: FLUID MECHANICS
Fundamentals of Convection
Natural Convection New terms Volumetric thermal expansion coefficient
Heat Exchangers Heat Exchangers.
Temperature Profiles in Heat Exchangers
REBOILERS AND VAPORIZERS
Aditya Pillai, Alihan Kaya, Michel De Paepe, Steven Lecompte
RMSoEE, IIT Kharagpur, India
Presentation transcript:

ORCNext – WP4 Development of supercritical technologies Catternan Tom 1

ORCNext – WP4 Development of supercritical technologies Transcritical ORCs – Literature review 2

Transcritical ORCs Best efficiency and highest power output when temperature profile of HS and WF match  lower exergy destruction (Larjola et al.). 3 Better thermal matching  driving force LMTD↓  UA↑

Screening criteriaCycle criteria Safety (ASHRAE 34)Thermodynamic PI Environmental (GWP, ODP, ATL)Heat exchanger PI Stability working fluidCost PI Compatibility with materials Thermophysical properties Availability and cost Selection of working fluids Wide range of applications and ranges  no consensus for best working fluid. 4

Selection of working fluids 5 Physical dataSafety dataEnvironmental data NameTypeT crit (°C)p crit (bar) Molecular weight (g/mol) ASHRAE 34 safety groupATL (yr)ODP GWP (100 yr) HFC-23Wet26,1448,3070,01A R-747 (CO 2 )Wet31,1073,8044,01A1>5001 HFC-125Wet66,0236,20120,02A HFC-410A-70,2047,9072,58A116, PFC-218Isentropic71,8926,80188,02A HFC-143aWet72,7337,6484,04A HFC-32Wet78,1157,8352,02A24,90550 HFC-407C-86,7945,9786,20A HFC-134aIsentropic101,0340,56102,03A HFC-227eaDry101,7429,29170,03A134, PFC Dry113,1823,20238, HFC-152aWet113,5044,9566,05A21,40124 PFC-C318Dry115,2027,78200,03A HFC-236eaDry139,2234,12152,04-10, PFC Dry147,4120,50288, HFC-245faIsentropic154,0536,40134,05B17,60900 HFC-245caDry174,4239,25134,05A16,20693

Heat exchanger design Influence ORC parameters on HX design (Schuster and Karellas, 2012) R134a, R227ea and R245fa Jackson correlation (1979): Water and CO 2 HTC decreases with increasing supercritical pressure and temperature  HX area increases Relatively unknown heat transfer mechanisms around C.P.  need further investigation 6

ORCNext – WP4 Development of supercritical technologies Forced convective heat transfer at supercritical pressures Literature review 7

Supercritical state Critical point ‘c’ For T>T crit  Continuous transition from liquid-like fluid to gas-like fluid (no phase change) 8

Thermophysical properties h=f(c p, ,, Pr…)=f(T) Pseudo-critical temperature  T pc = f(p) 9

Thermophysical properties 10

Literature overview Experimental – H 2 O, CO 2, nitrogen, hydrogen, helium, ethane, R22 – Uniform cross section Circular Recently: triangular and square – Uniform heat flux  electrically  forced T w – Different experimental results 11

General characteristics Heat transfer enhancement 12 Variation of the heat transfer coefficient with bulk temperature for forced convection in a heated pipe for carbon dioxide of 78.5bar flowing upwards in a 1.0 diameter vertical pipe.

General characteristics Heat transfer deterioration 13 Wall and bulk temperature as a function of the distance along a vertical heated 1.6 cm diameter pipe for water at 245 bar (1.11 pcrit). Comparison upward and downward flow – Downward  no unusual behaviour – Upward  Deterioration Flow direction Vertical upward Vertical upward Vertical upward Vertical upward Vertical downward Vertical downward Vertical downward Vertical downward Upward flowDownward flow

General characteristics Heat transfer deterioration 14 Comparison upward, downward and horizontal flow (1) Horizontal pipe – upper surface (2) Horizontal pipe – lower surface (3) Vertical pipe – upward flow (4) Bulk fluid temperature

Influence of parameters 15

Correlations 16 Bringer and Smith (1957) Miropolsky and Shitsman (1959, 1963) Petukhov, Krasnoshchekov and Protopopov (1959, 1961, 1979) Domin (1963) Bishop (1962, 1965) Kutateladze and Leontiev (1964) Swenson (1965) Touba and McFadden (1966) Kondrat’ev (1969) Ornatsky et al. (1970) Yamagata (1972) Yaskin et al. (1977) Jackson (1979) Yeroshenko and Yaskin (1981) Watts (1982) Bogachev et al. (1983) Griem (1995, 1999) … Heat transfer coefficient for supercritical water according to different correlations (Cheng X. et al.)

ORCNext – WP4 Development of supercritical technologies Goals and planning for the next 6 months 17

Transcritical ORCs Finish literature study (± 10 more papers to read) Model sub – and transcritical cycle (together with WP1) – Choose parameter range – Compare both cycles using the Performance Indicators for several working fluids – Check influence of the variable parameters on the objective functions  sensitivity – Make a list of 3 working fluids, which will be used in the experimental setup 18

Supercritical forced convection heat transfer Investigate thermophysical properties under supercritical conditions of the selected working fluids (via REFPROP or EES) Finish literature study – Deteriorated and improved heat transfer regimes – Onset deterioration – Correlations Fundamental understanding heat transfer and occurring flow -  Test setup have to be built: – Prepare setup – Choose materials – Order 19

Thank you for your attention. 20