IP Library Granted Patent US 8,991,614
Granted Patent B2
US 8,991,614 · App. 14/246,981 · Granted Mar 31, 2015

Microfluidic ultrasonic particle separators with engineered node locations and geometries

Inventors: Klint A. Rose (Alviso, CA); Karl A. Fisher (Brentwood, CA); Douglas A. Wajda (Urbana, IL); Raymond P. Mariella, Jr. (Danville, CA); Christopher Bailey (Oakland, CA); Dietrich Dehlinger (San Francisco, CA); Maxim Shusteff (Oakland, CA); Byoungsok Jung (Palo Alto, CA); Kevin D. Ness (San Mateo, CA)
Assignee: Lawrence Livermore National Security, LLC
B01D21/28B01D21/283B01L3/502761G01N33/491G01N33/48728B01D2221/10B01L2200/0636B01L2200/0652B01L2300/0816B01L2300/0864B01L2400/0439B01L2400/0487
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Quick Facts
Patent No.
US 8,991,614
App. No.
14/246,981
Granted
Mar 31, 2015
Kind
B2
Abstract

An ultrasonic microfluidic system includes a separation channel for conveying a sample fluid containing small particles and large particles, flowing substantially parallel, adjacent to a recovery fluid, with which it is in contact. An acoustic transducer produces an ultrasound standing wave, that generates a pressure field having at least one node of minimum, pressure amplitude. An acoustic extension structure is located proximate to said separation channel for positioning said acoustic node off center in said acoustic area and concentrating the large particles in said recovery fluid stream.

Claims (18)

1. An ultrasonic microfluidic method for separating small particles from large particles contained in a sample fluid, comprising the steps of:

providing a sample channel for channeling the sample fluid containing the small particles and the large particles;

routing a recovery fluid channel to flow recovery fluid substantially parallel and adjacent said sample fluid, wherein said recovery fluid contacts the sample fluid thereby creating a separation channel;

locating an acoustic extension structure proximate said separation channel, wherein said step of locating an acoustic extension unit proximate said sample channel and said recovery fluid channel comprises locating a bypass fluid channel containing bypass fluid substantially parallel and adjacent said recovery fluid channel and locating an acoustically transparent wall between said bypass channel and said recovery fluid channel wherein said step of locating an acoustic extension unit proximate said sample channel and said recovery fluid channel comprises locating a gel unit proximate said sample channel and said recovery channel positioning said at least one acoustic node off center in said acoustic area concentrating the large particles in said recovery fluid channel; and

using an acoustic transducer for producing an ultrasound standing wave that generates a pressure field having at least one node of minimum pressure amplitude, said pressure field encompassing said separation channel, and said acoustic extension structure; wherein said acoustic transducer positions at least one acoustic node off center in said separation channel concentrating the large particles in said recovery fluid stream.

2. An ultrasonic microfluidic method for separating small particles from large particles contained in a sample fluid of, comprising the steps of:

providing a sample channel for channeling the sample fluid containing the small particles and the large particles;

routing a recovery fluid channel to flow recovery fluid substantially parallel and adjacent said sample fluid, wherein said recovery fluid contacts the sample fluid thereby creating a separation channel;

locating an acoustic extension structure proximate said separation channel, wherein said step of locating an acoustic extension unit proximate said sample channel and said recovery fluid channel comprises locating a bypass fluid channel containing bypass fluid substantially parallel and adjacent said recovery fluid channel and locating an acoustically transparent wall between said bypass channel and said recovery fluid channel wherein said step of using an acoustic transducer for producing an acoustic area comprises using an acoustic transducer for producing at least two acoustic nodes that concentrate the large particles in said recovery fluid channel; and

using an acoustic transducer for producing an ultrasound standing wave that generates a pressure field having at least one node of minimum pressure amplitude, said pressure field encompassing said separation channel, and said acoustic extension structure; wherein said acoustic transducer positions at least one acoustic node off center in said separation channel concentrating the large particles in said recovery fluid stream.

3. An ultrasonic microfluidic method for separating small particles from large particles contained in a sample fluid, comprising the steps of:

providing a sample fluid stream containing the small particles and the large particles;

providing a recovery fluid stream located substantially parallel and adjacent to said sample fluid stream, wherein said recovery fluid stream contacts said sample fluid stream;

providing an acoustic transducer that produces

an acoustic standing wave, that generates a pressure field having at least one node of minimum sound pressure amplitude; and

providing an acoustic extension structure located proximate said sample fluid stream and said recovery fluid stream that positions said at least one acoustic node in said

recovery fluid stream concentrating the large particles in said recovery fluid stream,

wherein said step of providing an acoustic extension structure located proximate said sample fluid stream and said recovery fluid stream includes providing a gel proximate said recovery fluid stream.

Assignments (3)
CONFIRMATORY LICENSE Recorded Dec 18, 2014
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 034536/0928 →
CONFIRMATORY LICENSE Recorded Sep 30, 2014
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 033849/0243 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 15, 2014
From: ROSE, KLINT A.; FISHER, KARL A.; WAJDA, DOUGLAS A.; MARIELLA, RAYMOND P., JR.; BAULEY, CHRISTOPHER; DEHLINGER, DIETRICH; SHUSTEFF, MAXIM; JUNG, BYOUNGSOK; NESS, KEVIN D.
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 032907/0468 →
Continuity (3)
Division 13571640 · Aug 10, 2012
Provisional Application 61524020 · Aug 16, 2011
Related Publication 20140216992A1 · Aug 7, 2014