date: Sat, 23 Jun 2007 14:21:24 -0700 x-mimeole: Produced By Microsoft MimeOLE V6.00.2900.3138 from: subject: Donald Baker, history doppler ultrasound content-type: multipart/related; type="text/html"; boundary="----=_NextPart_000_0000_01C7B5A1.C748D630" mime-version: 1.0 This is a multi-part message in MIME format. ------=_NextPart_000_0000_01C7B5A1.C748D630 content-type: text/html; charset="Windows-1252" content-transfer-encoding: quoted-printable content-location: http://www.ob-ultrasound.net/baker.html ATL Donald Baker Craig E Nelson.mht




=20 Donald W. Baker was born in Skagway, Alaska in 1932. From 1951,= he=20 served for 4 years in the United States Air Force in the Korean War. H= e=20 spent 2 years working at the Air Force Cambridge Research Center=20 investigating the detection of low-flying aircrafts and airborne bombe= rs=20 basing on returned radar signals. During his Service he was able to ac= quire=20 knowledge on various electronic applications and in particular those=20 concerning the different types of radar devices. Discharged from the A= ir=20 force in 1955, Baker entered the University of Washington, Seat= tle=20 and graduated BScE from the Electrical Engineering Department in=20 1960.=20

Since 1958 and as a student he has started working under Robert=20 Rushmer in a Cardiovascular Instrumentation development progra= m. He=20 was first introduced to Rushmer by his classmate Wayne Quinton,= who=20 subsequently became bio-medical engineer and "instrument creator" at t= he=20 University of Washington, and founder of the Quinton Instruments Compa= ny.=20

Rushmer=20 was a trained Paediatrician and physiologist who was determined= to=20 elucidate and document cardiovascular functions and parameters = in=20 animals. At that time experiments were all conducted on open-chest=20 anesthetised specimens. These were impractical and time-consuming. Rus= hmer=20 felt that new instruments and methodologies are needed to look into su= ch=20 functions in the intact un-anesthetised subjects. Having set his heart= to=20 pursuing this Rushmer established facilities, secured funding and recr= uited=20 staff to embark on an instrumentation development program to design th= e=20 necessary 'hardware' and methodologies. Their aim was to look at=20 cardiovascular dimensions, pressures and flow. Rushmer was able to rec= ruit=20 Dean Franklin, Dick Ellis and Baker, along with a= =20 number of other students and technicians. Franklin was the pion= eering=20 engineer who was behind the projects at the start. Ellis was=20 knowlegeable in sonar techniques which he had also acquired from the N= avy.=20

Franklin, Ellis and Baker started with the design of a multichan= nel=20 transit-time flowmeter (which measured the velocity of blood flow = in a=20 blood vessel by determining the time interval between two electric pul= ses=20 along the vessel). This was a device that was attached to the wall of = the=20 animal's blood vessel. What were available as electronic components at= that=20 time were basic analog components such as analog differentiators and=20 multipliers. Baker's next project was on an ultrasonic measuring devic= e for=20 sensing the diameter of the left ventricle in experimental animals. Th= e=20 group described "A pulsed ultrasonic flowmeter" in the IRE=20 Transections in Medical Electronics in 1959. These was an=20 invasive device being implanted and attached to the the blood vessel w= all of=20 an unanaesthetised animal. Rushmer published their early findings in t= he=20 book "Cardiovascular Dynamics" in 1961. Because of the=20 invention of new instruments and the advent of better barium-titanate= =20 transducers, the department at Washington attracted many new and buddi= ng=20 post-doctoral Fellows in their ultrasonic cardiovascular research prog= rams.=20

Franklin left the University of Washington in th= e early=20 1960s to work at the Scripps Institute at La Jolla, California and lat= er on=20 taking up a NASA grant project on implanted doppler radio control syst= ems in=20 animals. In 1964 Franklin, Watson and Van Citters= =20 published in "Nature" their telemeter system where the implanted doppl= er=20 device transmitted the flow signals to a receiver nearby. Baker= went=20 on to become the chief of the technical team. Continuous wave applicat= ions=20 were further refined and applied to humans and made to work=20 transcutaneously. At that time instruments were all based on va= ccum=20 tube designs, often cumbersome, operating at high voltages and with he= avy=20 electronic hum. Subsequent developments led to the use of the newly=20 available FairChild 2484 silicon transistor circuitory which allowed f= or=20 much greater portablility in the instruments and lower electronic nois= e=20 generated. The shift in focus also had gone from animal experiments to= =20 diagnostic human applications. Eugene=20 Strandness, a cardiovascular surgeon (became associate Profess= or in=20 1966), took on many of the clinical projects to look into the use of=20 transcutaneous doppler applications. Many of the earlier portable devi= ces=20 are now on exhibit at the Smithsonian Museum in Washington DC.=20

By about 1963, Baker and his colleagues had developed sp= ectral=20 analysis from the continuous wave doppler basing on the time-= interval=20 histogram method. Working with HF Stegall, Baker published "a=20 sonic transcutaneous flow-meter" in 1964. Apart from=20 cardiovascular applications, other clinicians such as Wayne Johnson= =20 worked with Rushmer and reported on the detection of fetal cardiac= =20 pulsations with continuous wave doppler in 1964. The techno= logy=20 was transferred to Smith Kline Instruments=AE and the first = fetal=20 pulse detector, the Doptone = was=20 marketed in 1965. With the instrument it was generally possible to det= ect=20 cardiac pulsations in the audio format in 100% of live fetuses after 1= 2=20 weeks of gestation. In 1967, Rushmer, baker, Johnson and Strand= ness=20 published in the JAMA: "Clini= cal=20 applications of a Transcutaneous Ultrasonic Flow Detector", wh= ich=20 described the detection of fetal life, blood flow through the uterine= =20 vasculature, fetal movements and placental location using continuous w= ave=20 doppler in an Obstetric situation.=20

The continuous wave doppler method however did not provide explicit= =20 information about the distance between the ultrasonic transducer and t= he=20 moving target. Baker saw an article on the study of the motion of snow= and=20 raindrops in the clouds using a pulsed-dop= pler=20 radar which inspired him to start working on pulsed-doppler=20 instrumentations. The initial device was of a phased-coherent=20 pulsed-doppler design with a reference frequency transmitting a sample= of=20 the doppler signal into the target tissue and comparing the relative p= hase=20 to give a phased-modulated signal at a particular depth of the vessel = that=20 can be range-gated to obtain flow and positional information at= that=20 particular sample volume. Baker published the landmark articles: "A= phase=20 coherent pulse Doppler system for cardiovascular measurement" in=20 1967 followed by "Pulsed Ultrasonic Blood Flow Sensing" = in=20 1969.=20


The group recruited John (Jack)=20 Reid (one of the very earliest pioneers who worked with John J Wild)=20 from the University of Pennsylvania who brought along with him= =20 technology for grayscale 2D and M-mode imaging. They wen= t on=20 to implement "flow maping". The first 2D and M-mode cardiac= =20 echographic machine were developed in 1970. By 1972,= they=20 were able to publish 2D doppler images of femoral and carotid arteries= . The=20 probe was moved manually by hand over the area of the underlying blood= =20 vessel. Only where doppler signals are detected does the instrument ca= use=20 registrations to appear on the display. Their doppler shift informatio= n was=20 displyed as white dots overlaid on the B-mode image - the display meth= od=20 used by modern color doppler instruments. This early instrument had th= e=20 disadvantage that it required many cardiac cycles to acquire an image = and=20 was therefore difficult to operate.=20

Re= id=20 and George Tome (an MSc student from Beirut) helped to develop = their=20 first "rotor-mechanical" duplex scanner where 2D imaging and=20 pulsed-doppler interrogation can be performed together although not=20 simultaneously. <= B>Frank=20 Barber, another graduate student doing his Ph.D., developed wi= th the=20 team a new rotor-transducer duplex device which commanded bette= r=20 resolution of tissue and spectral flow although it was still incapable= of=20 displaying both at the same time. The moving parts of the mechanical (= rotor)=20 scanner cannot be stopped and started instantaneously and so only a st= ored=20 image can be available during doppler signal acquisition. Only through= the=20 advent of the phased and linear arrays that finally allowed simultaneo= us=20 duplex operation.=20

Fra= nk=20 Barber described the refined version of the Duplex scanner<= /B> in=20 1974. A good digital scan-convertor was also a prerequis= ite to=20 dispense with the oscilloscope displays and strip chart recorders, and= to=20 have a good overlay of the flow image over 2D images. The technology w= as=20 acquired through Fritz Thurstone at Duke University whos= e=20 group was heavily researching on linear and phased= array=20 focusing electronics and scan convertors. David=20 Philips was recruited from the Thurstone group. In 1975, velocity= =20 waveform and flow images were encoded in color and superimposed on M-m= ode=20 and gray scale 2-D anatomical images. Marco Brandestini from Zu= rich=20 who designed new and efficient Multi-gate circuitory made the p= roject=20 come together. The team also included physician Geoffrey Stevenson<= /B>=20 and engineer Mark Eyer. They had demonstrated quite clearly the= value=20 of color flow imaging in the diagnosis of various cardiac=20 defects. Color doppler systems in the late 1970s and early 80s wer= e=20 however limited by the processing power of the equipment, the lack of = good=20 duplex arrays (as contrasted to the mechanical rotor systems) and the= =20 agorithm and technique with which doppler frequency estimation was=20 performed.=20

Between 1973 and 1974 Baker effected a=20 technology transfer of the doppler instruments to a newly-found= ed=20 (1969) Seattle company ATL (Advanced Technology Laboratories, Belle= vue,=20 WA). Howard Suskin, founder of the United Control Corporation w= as the=20 entrepreneur behind the business venture, the technology being introdu= ced to=20 him and his engineer partner Ralph Astengo by Baker and = his=20 wife Joan, who was a sonographer. "Technology=20 transfer", rather then simple transfer or licensing of 'patents'=20 included a range of formal and informal co-operations between the tech= nology=20 developer and commercial enterprise. In addition, technology transfer= =20 involved the transfer of knowledge and technical know-how as well as=20 physical devices and equipment. By agreement, the University of=20 Washington also received from ATL=AE a sum of money each ye= ar for a=20 number of years, basing on sales revenue.=20

ATL=AE started with 3 engineers and the first ATL = pulsed=20 doppler scanner appeared in the fall of 1974. The Mark I= was=20 soon commercially available in 1975. The 400B pulsed-dop= pler=20 unit (pictured above) developed slightly later became part of the well= -known=20 ATL Mark V duplex scanner which debuted in 1978. Dupl= ex=20 doppler was in fact way ahead of its time and most physicians did = not=20 know what to do with it. A lot of ground data would need to be built. = Baker=20 realized that in order to sell the duplex doppler to the cardiovascula= r=20 physicians they would need a better M-mode in their instruments= . This=20 was done after bringing in new engineers in applied physics and ATL= =20 soon boasted in their machines some of the best M-mode functions and t= races=20 (incorporating grayscale) that was available at that time. By 1978, th= e=20 University of Washington Department of Surgery Carotid Laboratory was = filled=20 with many talented research scientists and technologists. In 1980, the= =20 Bioengineering Ultrasound Group came to an end of their project and=20 engineers and technologists including Larry Augustine, Marco Bradensti= ni,=20 Ron Daigle, Fred Forster, Jim Hossack, Arin Howard, George Keilman, Go= rdon=20 Kirkendahl, George Mahler, Craig Nelson, Bob Olson, Jeff Powers, and V= ern=20 Simmons went over to work for ATL. David Phillips joined the Departmen= t of=20 Surgery to further develop duplex scanning and color flow imaging.=20

Baker travelled extensively around the world in 1980 to hold= =20 seminars and to promote the duplex devices. ATL produced the Mk= 300=20 and 500 in '80 and '81 respectively (followed by the MK 600 in '82 and= the=20 MK 100 in '83). The Mk 500 and 600 had probably the best real time = duplex=20 doppler at that time.=20

" ....... The program was instrument and hardware orientate= d,=20 because in those days, medical research was carried out in little the = same=20 way as wars are fought. Wars are fought according to the weapons you h= ave,=20 and the rules of the game will be according to the weapons you have. I= think=20 a lot of researches are in the same way. If you have the tools that no= body=20 else has you can create a new game that nobody else can play........ P= eople=20 saw this as an opportunity. ...... They saw an opportunity to get ahea= d of=20 their colleagues and publish ....... ."  --- Baker speaking on hi= s=20 early work in doppler instrumentations and his efforts in popularising= them=20 at ATL.=20

In 1970, Donald Baker was married to Joan=20 Baker, who was founder & first president of the Society of= =20 Diagnostic Medical Sonographers ( SDMS) in the same year and first chair of the= =20 American Registry of Diagnostic Medical Sonographers (ARDMS).=20 Donald Baker retired from the University of Washington in 19= 79=20 and subsequently was out of the Ultrasound field in 1984. Prior= to=20 that, he was a full-time consultant to Squibb Medical Systems=AE, the= =20 International division of ATL and had taught in numerus seminars on th= e=20 application of doppler ultrasound. Among other accolaides he was given= the=20 Pioneer award from the AIUM in 1987 and the Pi= oneer=20 Award from the Society of Vascular Technology in 2000.=20 Baker holds a number of important patents and has authored over 30 art= icles=20 and book chapters on Ultrasonic Instrumentations. A few of his origina= l=20 continuous wave doppler and the pulsed-doppler devices are now exhibit= ed in=20 the Smithsonian Museum of American Medical History.=20

The University of Washington Center for Bioengineering, of=20 which Robert Rushmer was the founding director in 1967, became = a=20 department in 1997 and was jointly administered by the schools of Medi= cine=20 and Engineering. Rushmer became Professor Emeritus of Bioengineering. = Since=20 1989 a Robert F. Rushmer lecture was given annually at the univ= ersity=20 in honor of him. Dr. Rushmer passed away in July 2001at the age of 86.= =20 Donald Baker is retired. In 2002 he received the Alumnus Summa = Laude=20 Dignatus award from the University of Washington for "an outstanding=20 alumnus, distinguished for service and achievement over a period of ye= ars=20 since graduation". Eugene Strandness retired from the Head of=20 Vascular Surgery in 1995. He passed away in January 2002 at the age of= 73.=20 John Reid is Emeritus and Research Professor at Drexel Universi= ty,=20 and Affiliate Professor of Bioengineering at the University of Washing= ton.=20 Other engineers who took part in the early development of doppler ultr= asound=20 at the University in the 1970s such as Barber, Eyer,=20 Brandestini and others, also had very promising careers in vari= ous=20 fields of advanced engineering and inventive technology.=20





Some of the Landmark = articles:

D. L. Franklin, D. W. Baker and R. W. Ellis, "A pulsed ultra= sonic=20 flowmeter." IRE Trans Med Electron, 6, 204, 1959
D. L. Franklin= , W.=20 A. Schlegal, and R. F. Rushmer, "Blood flow measured by Doppler=20 frequency shift of backscattered ultrasound," Science, vol. 132, pp.=20 564-565, 1961
Franklin DL, Watson NW, Van Citters RL (1964)= Blood=20 velocity telemetered from unanaesthetised animals. Nature 203:528-530.= =20
D. L. Franklin, D. W. Baker, and R. F. Rushmer, "Pulsed=20 ultrasonic transit time flowmeter," IRE Transactions on Biomed. Electr= onics,=20 vol. 9, pp. 44-49, 1962
D. E. Strandness, J. W. Kennedy. et al<= /U>,=20 "Transcutaneous directional flow detection: A preliminary report". Am = Heart=20 J. 78: 65-74, 1969.
D. W. Baker and Watkins, " A phase cohe= rent=20 pulse Doppler system for cardiovascular measurement",in Proc. 20th Ann= .=20 Conf. on Eng. in Med. and Biol., 1967
D. W. Baker, "Pulsed= =20 Ultrasonic Blood Flow Sensing", IEEE Trans Sonics Ultrasonics, vol. 17= , pp.=20 170, 1969
J. M. Reid and M. P. Spencer, "Ultrasonic Doppler= =20 technique for imaging blood vessels," Science, vol. 176, pp. 1235, 197= 2=20
Barber FE, Baker DW, Nation AWC, Strandness DE Jr., Reid JM= .=20 Ultrasonic duplex echo-Doppler scanner. IEEE Trans. Bio-Medical Engine= ering,=20 March 1974; BME-21, 2:109-113.
Barber FE, Baker DW, Strandness = DE Jr,=20 Ofstad JM, Mahler GD. Duplex Scanner II: for simultaneous imaging = of=20 artery tissues and flow. 1974 Ultrasonics Symposium Proceedings, IEEE = Press,=20 1974; 744-748.
F. L. Thurstone and O. T. v. Ramm, "A new=20 ultrasound imaging technique employing two- dimensional electronic=20 beamsteering", in Acoustic Holography, P.S. Green, Editor. 1974, Plenu= m=20 Press: New York. pp. 149




=


Read also "D. Eugene Strandness, Jr, MD, and the Revolution = in=20 Noninvasive Vascular Diagnosis" = Part=20 1, = Part=20 2 and = Part=20 3, by Kirk W. Beach, PhD, MD, Department of Surgery, Universit= y of=20 Washington, Seattle, Washington USA, published in the Journal of Ultra= sound=20 in Medicine, 2005. Copyrighted the American Institute of Ultrasound in= =20 Medicine.=20


And: = A brief=20 history of the pioneering work in Doppler applications in Japan for=20 important developments in doppler ultrasound preceeding those in the U= nited=20 States.=20


Baker, Rushmer and Strandness' pictures courtesy of the Univers= ity of=20 Washington, Seattle. Baker's picture in the middle courtesy of Dr. Eric Blackwell
.=20




Back to History of Ultraso= und in=20 Obstetrics and Gynecology.



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