Fields
Biomedical Engineering
Also Known As Bioengineering
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Biomedical engineering applies the principles and tools of engineering to biology and medicine, designing devices, diagnostics and materials that interact directly with the human body. Its output ranges from the cardiac pacemaker and the artificial heart valve to medical imaging systems such as magnetic resonance imaging and computed tomography. The field crystallized as a distinct discipline in the decades after the Second World War, as growing collaboration between engineers and physicians turned ad hoc medical devices into a formal engineering specialty with its own societies, journals and university departments.
Facts
Disputed
Origin Year1968
Dated here to the founding of the Biomedical Engineering Society in 1968, a commonly cited marker; the collaboration between engineers and physicians that produced the field's early devices, such as the cardiac pacemaker in the 1950s, predates any one founding date by more than a decade. Core ConcernApplying engineering design and analysis to biological systems, medical devices and healthcare technology. 1 Core PrincipleEngineer to the constraints of a living body rather than a workshop: biocompatibility, sterilizability and long term reliability inside a warm, wet, chemically active system the designer does not fully control. 1 Learn More
When Engineering Learned to Work Inside the Body
This article records tradition as it has been passed down and reported. Its sources are not yet part of the atlas's verified catalogue.
Biomedical engineering exists because certain problems in medicine are, underneath the biology, engineering problems: a heart that beats irregularly needs a reliable, miniaturized electrical timer; a failing valve needs a mechanical replacement that will open and close without fatigue for decades inside a hostile, moving, salt-water environment; a diagnosis that would otherwise require cutting a patient open needs a way to see inside the body without doing so. The cardiac pacemaker and the artificial heart valve solved the first two problems by putting a device permanently inside the body, engineered to survive there. Magnetic resonance imaging and computed tomography solved the third by building instruments that could see inside a living body from the outside, converting physics most patients will never need to understand into pictures a physician can read directly. None of these were built by physicians alone or by engineers alone; each required the two disciplines to solve the same problem from opposite ends, which is the entire reason biomedical engineering had to become its own field rather than staying a set of favors engineers occasionally did for doctors.
How a Postwar Collaboration Became a Discipline
This article records tradition as it has been passed down and reported. Its sources are not yet part of the atlas's verified catalogue.
Biomedical engineering crystallized as its own discipline only in the decades after the Second World War, as engineers and physicians who had been solving medical problems ad hoc, one device at a time, built the shared societies, journals and university departments that turn a set of individual collaborations into a formal field. That formalization mattered because a device meant to live inside a human body for years cannot be engineered the way an ordinary machine part is: it has to survive an environment that is warm, wet, chemically active and constantly moving, without provoking the body's own immune defenses into rejecting it. Titanium became one of the field's standard answers to that problem, chosen for surgical implants because a tenacious natural oxide film makes it resist corrosion in the body and because it does not trigger the immune reactions many other structurally strong metals do, the same biocompatibility that makes it valuable in aerospace airframes for an unrelated reason: strength that does not carry unnecessary weight. A discipline that began by borrowing whatever material happened to work ended up needing materials science, and metallurgy in particular, as one of its permanent neighbors rather than an occasional favor.
Cross-Tradition Connections
Associated With
Titanium, Materials Titanium's biocompatibility and corrosion resistance make it a standard material for surgical implants and prosthetics.
Includes
Kolff's artificial kidney work is a founding case in the biomedical engineering field.
Regarded as a founding figure of biomedical engineering; built the first working dialysis machine in 1943 and later led the University of Utah's Institute for Biomedical Engineering.
Sources
1. Encyclopaedia Britannica
Encyclopaedia Britannica editors, Encyclopaedia Britannica, Inc.
Biomedical Engineering (Wikipedia)
Wikipedia contributors, Wikimedia FoundationLead section, opening definition of biomedical engineeringQuote, Lead section, opening definition of biomedical engineering
Biomedical engineering (BME) or medical engineering is the application of engineering principles and design concepts to medicine and biology for healthcare applications (e.g., diagnostic or therapeutic purposes).
View the Source Technology: A World History
Daniel R. Headrick, Oxford University Press, 2009Associated With: Titanium
Kolff, Willem J. (Case Western Reserve Encyclopedia of Cleveland History)
Case Western Reserve UniversityIncludes: The Dialysis Machine, main biographical entryQuote, Includes: The Dialysis Machine, main biographical entry
In 1943, Kolff created the 'rotating drum kidney (RDK),' which is regarded as the first working artificial kidney.
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