Electro-Hydrodynamic Filtration (EHD): Dielectrophoresis of SiO 2 and Al 2 O 3 Particles Abstract Previous work has been done to design an electro- hydrodynamic.

Slides:



Advertisements
Similar presentations
The Refractive Index of a Solid An unusual application of spectroscopy.
Advertisements

Initially, each object is neutral (i.e. each has = numbers of protons & electrons)
Ch 26.4 – Energy Stored in a Capacitor – charging a capacitor
Electrostatics A PowerPoint Presentation by
EMLAB 1 Introduction to electromagnetics. EMLAB 2 Electromagnetic phenomena The globe lights up due to the work done by electric current (moving charges).
Example: A negatively charged rod, of length l, has a total charge Q and is a distance b from a point P. The charge is uniformly distributed along the.
Electro-Hydro-Dynamics Enhancement of Multi-phase Heat Transfer
MANIPULATION OF WHOLE BLOOD USING TRAVELING WAVE DIELECTROPHORESIS Y.J. Lo, A.M. Wo, and U. Lei Institute of Applied Mechanics, National Taiwan University,
CONTENT I. Introduction II. DEP force for CNTs Implementation III. Experimental results IV. Conclusions.
Simulation of Interdigitated Electrodes for Dielectrophoretic Cell Sorting Roger Shih, Dr. Abraham P. Lee Roger Shih ·
Chapter 4 Electrostatic Fields in Matter
 Lecture 3 .  Dielectric Materials  Dielectric materials are also called as insulators.  In dielectric materials, all the electrons are tightly bound.
Sinai University Faculty of Engineering Science Department of Basic sciences 5/20/ From Principles of Electronic Materials and Devices, Third Edition,
Chapter 23 Capacitance.
Charges Force (field) Potential (energy) What for? positive (+)
Energy Stored in a Capacitor Assume a capacitor has a charge q on it and is being charged at the some point, The work needed to transfer a charge.
From Principles of Electronic Materials and Devices, Third Edition, S.O. Kasap (© McGraw-Hill, 2005) These PowerPoint color diagrams can only be used by.
Electric Charge, Force, and Field
LIQUIDS AS INSULATORS Liquid dielectrics are used mainly as impregnants in high voltage cables and capacitors, and for filling up of transformers, circuit.
Lecture 3 The Debye theory. Gases and polar molecules in non-polar solvent. The reaction field of a non-polarizable point dipole The internal and the direction.
Physics 121: Electricity & Magnetism – Lecture 2 Carsten Denker NJIT Physics Department Center for Solar–Terrestrial Research.
Manipulation of Microbeads using DC/AC Electrical Fields By, Michael Scharrer Nitin Sharma Neil Krishnan.
Capacitance and Dielectrics
Atmospheric Concentration Retrieval Using a Quantum Cascade Laser System and Mid-Infrared Technologies Jensen Cheong, Stuyvesant High School Student MIRTHE.
Conclusions Buoyancy force dominated electric field in the vertical displacement of bubbles. However, horizontal displacement of bubble trajectories were.
, Heater PDMS The bubble is pinned to the heater surface by capillary forces due to substantial difference in wettability between the heater cover (glass.
指導老師:許藝菊 學生:邱建龍 介電電泳(DEP)基於微流體粒子分離器Dielectrophoresis (DEP) Based Microfluidic Particle Separator.
Jovi D. Rodriguez (HSS), Christian E. Mejia (UGS), Prof. Steve Greenbaum (PI), Dr. Phil Stallworth (co-PI) Hunter College of the City University of New.
Environmental Change In The Hudson Estuary Marshes Max Perez 1,Zhehan Huang 1,Dorothy Peteet 2, Sanpisa Sritrairat 2,Argie Miller 1, Baruch Tabanpour 1.
Sinai University Faculty of Engineering Science Department of Basic Science 10/9/20151 w3.
X-ray Diffraction Study Of New York City Aerosols Particles Junior Nkrumah Summer Program of 2007 CCNY Dr. Jeff Steiner Ph.D. Student Nick Steiner Dr.
Magnetism Chapter 36. What is a Magnet? Material or object that produces a magnetic field. Two types:  Permanent  Electromagnet.
Electric Energy and Capacitance
Sponsors: National Aeronautics and Space Administration (NASA) NASA Goddard Space Flight Center (GSFC) NASA Goddard Institute for Space Studies (GISS)
CONDENSATION OF FLUORESCENT NANOPARTICLES USING A DEP CHIP WITH A DOT – ELECTRODE ARRAY STUDENT’S NAME : TRAN HONG CHUONG 陳紅章.
Charges positive (+) negative (-) conservation Force (field) Potential (energy) Force between point charges Force on charge in the field Connect field.
Hardware Sponsors National Aeronautics and Space Administration (NASA) NASA Goddard Space Flight Center (GSFC) NASA Goddard Institute for Space Studies.
Magnetism Chapter 36. What is a Magnet? Material or object that produces a magnetic field. Two types:  Permanent  Electromagnet.
ELEC 3105 Basic EM and Power Engineering Conductivity / Resistivity Current Flow Resistance Capacitance Boundary conditions.
BIOPARTICLE SEPARATION AND MANIPULATION USING DIELECTROPHORESIS Advisor: Yi-Chu Hsu Student: Le Van Cong ( 黎 文 功 ) Date: 11/04/2011.
Powerpoint Templates Page 1 Depth Effects of DEP Chip with Microcavities Array on Impedance Measurement for Live and Dead Cells Cheng-Hsin Chuang - STUST.
The ability to accurately predict climate in the New York metropolitan area has tremendous significance in terms of minimizing potential economic loss.
Belinda Kwok New Jersey Institute of Technology New York City Research Initiative (NYCRI) Mentored by Dr. Boris Khusid Mentored by Dr. Boris Khusid Graduate.
Wu Sponsors: National Aeronautics and Space Administration (NASA) Goddard Space Flight Center (GSFC) Goddard Institute for Space Studies (GISS) New York.
Electrostatic Forces Homework: Complete handout. Magnitude of Force According to Coulomb’s Law  The magnitude of force exerted on a charge by another.
AC Breakdown characteristics of LDPE in the presence of crosslinking byproducts. N. Hussin and G. Chen University of Southampton, Southampton, UK Weibull.
Christian E. Mejia, Christoph F. Weise, Steve Greenbaum, Hunter College Dept. of Physics and Astronomy Shane E. Harton, Columbia University Dept. of Chemical.
Sponsors: National Aeronautics and Space Administration (NASA) NASA Goddard Space Flight Center (GSFC) NASA Goddard Institute for Space Studies (GISS)
Sponsors: National Aeronautics and Space Administration (NASA) NASA Goddard Space Flight Center (GSFC) NASA Goddard Institute for Space Studies (GISS)
Firohman Current is a flux quantity and is defined as: Current density, J, measured in Amps/m 2, yields current in Amps when it is integrated.
Chapter 8. FILTRATION PART II. Filtration variables, filtration mechanisms.
The minispectrometer is attached to the polarimeter with a fiber optic cable. It measures the intensity at a much wider range of wavelengths—from 350nm.
Chapter 5: Conductors and Dielectrics. Current and Current Density Current is a flux quantity and is defined as: Current density, J, measured in Amps/m.
J.Vaitkus IWORID6, Glasgow,
Belinda Kwok New Jersey Institute of Technology NASA SHARP High School Apprenticeship Program mentored by Dr. Boris Khusid.
REFERENCES 1. Leppänen, O., H. Sievänen, and T. Järvinen. “Biomechanical testing in experimental bone interventions – May the power be with you.” Journal.
Company LOGO A continuous cell separation chip using hydrodynamic dielectrophoresis (DEP) process Pichit Sirikriangkrai ( 李俊榮 ), ME November 5 th, 2012.
A MEMS Micro Flow-cytometer Based on Dielectric Particle Focusing and Integrated Optical and Impedance Detection Peter R.C. Gascoyne Department of Molecular.
Pencil lead microelectrode and the application on cell dielectrophoresis Name:Tsung-Han Lin Teacher:Pofessor Hsu Class:Introduction to the Nano-electromechanical.
Methods Results Conclusion Gathered and analyzed PM 2.5 and AOD data for 2 months (May-June 2011) Looked into patterns and consistency of data – for urban,
Single particle trapping and characterization
ELEC 3105 Basic EM and Power Engineering
Polyimide sheet (5 mils)) AZ-93 Thermal Paint (5 mils))
Capacitance and Dielectrics
The Refractive Index of a Solid
Physical Properties of Molecules
Christopher Crawford PHY
Dielectrophoretic particle trap: Novel trapping and analysis technique
ELECTRO-HYDRODYNAMICS ANALYSIS OF COROTRONS
Presentation transcript:

Electro-Hydrodynamic Filtration (EHD): Dielectrophoresis of SiO 2 and Al 2 O 3 Particles Abstract Previous work has been done to design an electro- hydrodynamic (EHD) filter to remove soot particles from fresh oil. Currently, a fifth generation working model has been designed but requires efficiency tests to ensure success. Through the use of dielectrophoresis, the filter is able to capture micro-particles as contaminated oil runs through the filter. Captivity tests on soot particles were performed. Polarizability of Aluminum Oxide (Al 2 O 3 ) and Silica Oxide (SiO 2 ) particles in lubricating oil was determined. Subsequently, captivity test on these two particles under non-uniform electric field is ongoing. Introduction The purpose of an EHD filter is to capture polarizable micro-particles from a suspension. This allows less need to change substances such as oil that becomes plagued with particles that are not possible to remove with conventional filtration systems. An EHD filter is ideal due to the fact that it is cost efficient, simple to use, and has no moving parts. The way the filter works is through the phenomenon of dielectrophoresis. Dielectrophoresis is the lateral motion applied to an uncharged particle in a non-uniform electric field. Due to the non-uniform properties of the electric field, polarization will occur. Based on a particle’s polarizability we can determine the direction of the dielectic force on the particle. If the particle is more polarizable than the medium around it, the dipole aligns with the field and the force moves the particle towards the region of high field gradient. If the particle is less polarizable than the medium, the dipole aligns against the field and the particle is repelled from regions of high field gradient. The field must have inhomogeneous (localized time-varying charge) properties in order for this to take place. Method To find the dielectrophoretic force on Al 2 O 3 and SiO 2 particles, we must first determine the real part of the Clausius Mossotti factor. The Classius Mossotti factor determines the direction of the overall dielectrophoretic force as well as the electro-rotational torque on a particle. The relation consists of two parts, the real (determines force) and the imaginary (determines torque). For our purpose, we want to find the real part in order to understand the magnitude and direction of the force. If this factor is positive it will tell us that the particles move to regions of high field gradient, while a negative factor means that particles will be repelled from those regions. We prepared 3 suspensions of silicon oxide particles in fresh oil, 1%, 10% and 20% by volume fraction. Sample complex permittivities were obtained through Broadband dielectric spectroscopy in the Keck Laboratory of NJIT. Polarizability was determined using Maxwell-Wagner Model. Particle Captivity Experiment Parameters  Lubricating Oil Flow Rate  Voltage  Oil Temperature Results of Efficiency Test Conclusion Preliminary result shows that Al 2 O 3 is more polarizable than SiO 2 particles in lubrication oil. Particle captivity results for Al 2 O 3 showed a beta ratio of at 400V compared to a ratio of 3.37 at zero voltage which amounts to 94.8% efficiency. The result for SiO 2 particles is in process as data for its captivity under electric field is still being gathered. These results demonstrates the advantages of EHD filter in contaminant removal. Determination of Particle Polarizability Positive DielectrophoresisNegative Dielectrophoresis Fifth Generation EHD Filter Al 2 O 3 SiO 2 Maxwell-Wagner Model Equation for force of dielectric particle Clausius Mossotti Factor Beta results Test NoFlow rate, LPM AC Voltage, V Injected, gComing out, g Captured, gBETA Sponsors: National Aeronautics and Space Administration (NASA) NASA Goddard Space Flight Center (GSFC) NASA Goddard Institute for Space Studies (GISS) NASA New York City Research Initiative (NYCRI) Contributors: New Jersey Institute of Technology Dr. Boris Khusid Ezinwa Elele, Graduate Student Ian O’Leary, NYCRI High School Apprentice