IP Library Granted Patent US 9,788,788
Granted Patent B2
US 9,788,788 · App. 14/712,113 · Granted Oct 17, 2017

Three dimensional imaging of veins

Inventors: Ron Goldman (Cold Spring Harbor, NY); Fred Wood (Medford, NY); Stephen P Conlon (Cold Spring Harbor, NY); Vincent Luciano (Shoreham, NY)
Assignee: AccuVein, Inc
A61B5/489A61B5/0037A61B5/0059A61B5/0062A61B5/0068A61B5/0071A61B5/0075A61B5/0079A61B5/0082A61B5/6824A61B5/6831A61B5/6887A61B5/743A61B5/7475A61B17/3403A61M5/427A61M5/46A61B2019/202A61B2090/366A61B2560/0214A61B2560/0425A61B2560/0431A61B2562/028
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Quick Facts
Patent No.
US 9,788,788
App. No.
14/712,113
Granted
Oct 17, 2017
Kind
B2
Abstract

An apparatus and method for creating a three dimensional imaging system is disclosed. There is a first source of laser light and a second source of laser light having a wavelength different from the wavelength of the laser light of the first source. The laser light from the first and second sources are combined, and the combined laser light is transmitted to a scanner. The scanner further transmits the combined light to a surface to be imaged.

Claims (52)

1. A method of creating a layered vein image of subcutaneous veins beneath a target skin surface of a patient, and for projecting the image onto the surface, said method comprising:

(a) emitting a first beam of light at a first wavelength;

(b) emitting a second beam of light at a second wavelength being different than said first wavelength;

(c) combining said first beam of light and said second beam of light into a single combined beam of light;

(d) scanning said single combined beam of light in a pattern, and onto the target skin surface, using a scanner;

(e) receiving a contrasted vein image formed of said first wavelength of light, by a photodetector responsive to said first wavelength, after being differentially absorbed and reflected by veins and surrounding tissue of the target skin surface;

(f) converting said contrasted vein image into a digital image, using an analog-to-digital converter;

(g) storing said digital vein image in a memory;

(h) increasing an intensity of said first wavelength of light, by one or more increments, and repeating steps (a) through (g) for each said one or more incrementally increased light intensities, and storing, in said memory, a corresponding one or more digital vein images being at one or more incrementally increased depths beneath the target skin surface;

(i) creating a processed vein image by layering of each vein in said stored vein images, by depicting veins being at a greater depth as appearing beneath veins at a shallower depth;

(j) converting said processed vein image from a digital image into an analog image, using a digital-to-analog converter; and

(k) scanning said analog processed vein image onto the target skin surface using said second wavelength of light.

2. The method according to claim 1 further comprising replacing each vein of said processed vein image with a unique pattern.

3. The method according to claim 1 further comprising replacing each vein of said processed vein image with a unique color of light.

4. The method according to claim 1 further comprising concurrently displaying said processed vein image on computer screen.

5. The method according to claim 1 further comprising incrementally increasing said intensity of said first wavelength of light for at least two of said incremental increases, and incrementally increasing said intensity in linear increments, with each said incremental increase being the same amount of increase in intensity.

6. The method according to claim 1 further comprising scanning of said pattern of said single combined beam of light in a raster pattern.

7. The method according to claim 1 wherein said scanning of said pattern of said single combined beam of light onto the target skin surface comprises scanning a field of view of said scan pattern to correspond with a top of the target skin surface of the patient.

8. The method according to claim 7 further comprising correcting a size of said veins in each of said stored vein images prior to said layering and scanning onto the target skin surface, by performing a trigonometric scaling process for each said layered vein image, according to a difference between a distance of said scanner to the target skin surface, and a respective distance of said scanner to each of said one or more incrementally increased depths beneath the target skin surface for said corresponding one or more vein images.

9. The method according to claim 1 further comprising: scanning said pattern of said single combined beam of light onto the target skin surface by scanning said single combined beam of light to strike a parabolic mirror configured for reflecting of each portion of said scanned light to be parallel and directed towards the target skin surface; and said receiving of said reflected first wavelength of light from the target skin surface by said photodetector comprising said photodetector receiving said reflected first wavelength of light from the target skin surface after being reflected thereto by said parabolic mirror.

10. A method of creating a layered vein image of subcutaneous veins beneath a target skin surface of a patient, and for projecting the image onto the surface, said method comprising:

(a) scanning a first wavelength of light in a pattern, and onto the target skin surface, using a scanner;

(b) receiving a contrasted vein image formed of said first wavelength of light, by a photodetector responsive to said first wavelength, after being differentially absorbed and reflected by veins and surrounding tissue beneath the target skin surface;

(c) converting said contrasted vein image into a digital image, using an analog-to-digital converter;

(d) storing said digital vein image in a memory;

(e) increasing an intensity of said first wavelength of light, by one or more increments, and repeating steps (a) through (d) for each said one or more incrementally increased light intensities, and storing, in said memory, a corresponding one or more digital vein images being at one or more incrementally increased depths beneath the target skin surface;

(f) creating a processed vein image by layering of each vein in said stored vein images, by depicting veins being at a greater depth as appearing beneath veins at a shallower depth;

(g) converting said processed vein image from a digital image into an analog image, using a digital-to-analog converter; and

(h) scanning said analog processed vein image onto the target skin surface with a second wavelength of light, using said scanner.

11. The method according to claim 10 further comprising combining a beam of said first wavelength of light with a beam of said second wavelength of light, for simultaneous scanning of said first and second wavelengths of light by said scanner.

12. The method according to claim 10 further comprising replacing each vein of said processed vein image with a unique pattern.

13. The method according to claim 10 further comprising replacing each vein of said processed vein image with a unique color of light.

14. The method according to claim 10 further comprising concurrently displaying said processed vein image on computer screen.

15. The method according to claim 10 further comprising incrementally increasing said intensity of said first wavelength of light for at least two of said incremental increases, and incrementally increasing said intensity in linear increments, with each said incremental increase being the same amount of increase in intensity.

16. The method according to claim 10 further comprising scanning of each of said first and second wavelengths of light in a raster pattern.

17. The method according to claim 10 wherein said scanning of said pattern of said single combined beam of light onto the target skin surface comprises scanning a field of view of said scan pattern to correspond with a top of the target skin surface of the patient.

18. The method according to claim 17 further comprising correcting a size of said veins in each of said stored vein images prior to said layering and scanning onto the target skin surface, by performing a trigonometric scaling process for each said layered vein image, according to a difference between a distance of said scanner to the target skin surface, and a respective distance of said scanner to each of said one or more incrementally increased depths beneath the target skin surface for said corresponding one or more vein images.

19. The method according to claim 10 wherein said scanning onto the target skin comprises scanning said light to strike a parabolic mirror configured for reflecting of each portion of said scanned light to be parallel and directed towards the target skin surface; and said receiving of said reflected first wavelength of light from the target skin surface by said photodetector comprising said photodetector receiving said reflected first wavelength of light from the target skin surface alter being reflected thereto by said parabolic mirror.

20. A method of creating a vein image of subcutaneous veins beneath a target skin surface of a patient's limb, and for projecting the image onto the surface to indicate relative depths of the veins therein, said method comprising;

(a) setting a count of an image counter to one;

(b) scanning a first wavelength of light in a pattern, and onto the target skin surface, using a scanner;

(c) receiving a contrasted vein pattern image formed of said first wavelength of light, by a photodetector responsive to said first wavelength, after being differentially absorbed and reflected by veins and surrounding tissue beneath the target skin surface;

(d) converting said contrasted image into a digital image, using an analog-to-digital converter;

(e) storing said digital vein image in a memory;

(f) increasing said count of said image counter by one, and increasing an intensity of said first wavelength of light, by an incremental amount, and repeating steps (b) through (d) for said incrementally increased light intensity;

(g) subtracting said vein pattern image for said unitarily increased image count from said stored vein image for said penultimate image count, and wherein when a different contrasted vein pattern is detected, storing said different contrasted image in said memory;

(h) repeating steps (f) through (g) until said count of said image counter reaches a desired count corresponding to a vein image penetrating to a desired depth of the limb beneath the target skin surface;

(i) creating a processed vein pattern image by layering of each said stored vein pattern images, by depicting veins being at a greater depth as appearing beneath veins at a shallower depth;

(j) converting said processed vein pattern image from a digital image to an analog image, using a digital-to-analog converter; and

(k) scanning said analog processed vein pattern image onto the target skin surface with a second wavelength of light, using said scanner.

21. The method according to claim 20 further comprising correcting a size of said veins in each of said stored vein images prior to said layering and scanning onto the target skin surface, by performing a trigonometric scaling process for each said layered vein image, according to a difference between a distance of said scanner to the target skin surface, and a respective distance of said scanner to each of said one or more incrementally increased depths beneath the target skin surface for said corresponding one or more vein images.

22. The method according to claim 21 wherein said scanning onto the target skin comprises scanning said light to strike a parabolic mirror configured for reflecting of each portion of said scanned light to be parallel and directed towards the target skin surface; and said receiving of said reflected first wavelength of light from the target skin surface by said photodetector comprising said photodetector receiving said reflected first wavelength of light from the target skin surface after being reflected thereto by said parabolic mirror.

Assignments (7)
SECURITY INTEREST Recorded Mar 23, 2022
From: ACCUVEIN INC.
To: COURAGE CREDIT OPPORTUNITIES FUND IV, L.P.
Reel/Frame 059483/0143 →
RELEASE OF SECURITY INTEREST Recorded Aug 31, 2021
From: PERCEPTIVE CREDIT HOLDINGS, LP
To: ACCUVEIN, INC.
Reel/Frame 057364/0785 →
PATENT SECURITY AGREEMENT Recorded Jan 31, 2018
From: ACCUVEIN INC.
To: PERCEPTIVE CREDIT HOLDINGS, LP
Reel/Frame 045210/0305 →
TERMINATION OF INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jan 31, 2018
From: ACCUV FUNDING, LLC
To: ACCUVEIN INC.
Reel/Frame 045210/0672 →
SECURITY INTEREST Recorded Jun 16, 2015
From: ACCUVEIN INC.
To: ACCUV FUNDING LLC
Reel/Frame 035921/0562 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2015
From: GOLDMAN, RON; WOOD, FRED; CONLON, STEPHEN P.; LUCIANO, VINCENT
To: ACCUVEIN, INC.
Reel/Frame 035829/0971 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 18, 2015
From: GOLDMAN, RON; WOOD, FRED; CONLON, STEPHEN P.; LUCIANO, VINCENT
To: ACOUVEIN, INC.
Reel/Frame 035813/0285 →
Continuity (7)
Continuation 14276139 · May 13, 2014
Continuation 13135591 · Jul 8, 2011
Continuation 11823862 · Jun 28, 2007
Continuation In Part 11478322 · Jun 29, 2006
Provisional Application 60817623 · Jun 29, 2006
Provisional Application 60757704 · Jan 10, 2006
Related Publication 20150351636A1 · Dec 10, 2015