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GuidePublished 4 Aug 20266 min readBy Kevin JoginBiomedical EngineeringMedical DevicesRisk ManagementReliability

Knowledge LibraryEngineeringElectrical EngineeringKL-ENG-HIST-1631

Machines That Sustain Life: Dialysis, the Heart-Lung Machine and the Pacemaker

The load cannot be negotiated, the working fluid is damaged by handling, and there is no safe state to shut down into. Three organ-replacement devices, and every one of them was built largely outside institutional support.

Part 12 of 13 Period 1943-1958 Milestones 3 Reading 6 min Updated 2026-08-04

01Executive summary

Three devices that take over the function of an organ. Each one moved engineering inside the body’s control loops, and each one was built substantially by people working outside established institutional support.

Willem Kolff built a working artificial kidney in occupied Holland in 1943 from cellophane sausage casing, a wooden drum and parts from a car. John Gibbon achieved open-heart surgery supported by a heart–lung machine in 1953, after more than twenty years of development. Rune Elmqvist and Ake Senning implanted a pacemaker in 1958; the first unit failed within hours and was replaced the next day. The engineering interest lies in the constraints, which are unlike anything else in this series.

~5 L/minOrder of adult cardiac output a bypass circuit must replace
DiffusionThe transport mechanism in both dialysis and oxygenation
μJOrder of energy per pacing pulse — efficiency sets device life
0Acceptable count of uncontained failures in an implanted device

02Why medical devices are a distinct engineering problem

The load cannot be reduced
In most engineering, an overloaded system can be derated. A patient’s metabolic requirement is fixed by physiology and cannot be negotiated downward to suit the equipment.
The working fluid is damaged by handling
Blood is not an inert fluid. Shear damages red cells, foreign surfaces activate clotting, and air introduced anywhere becomes an embolism. Pumps and circuits must be designed around the fragility of what they move.
Failure is immediate and unrecoverable
There is no safe shutdown state. A circuit that stops during bypass, or a pacemaker that stops pacing a dependent patient, has consequences within seconds.
The environment is hostile and inaccessible
An implanted device sits in warm saline for decades, cannot be serviced, and must not provoke the immune system. Battery replacement means surgery.

03Dialysis: a membrane and a gradient

The kidney removes metabolic waste, excess water and excess electrolytes, while retaining proteins and cells. Kolff’s insight was that the selective part — discriminating waste from protein by molecular size — could be done by a semipermeable membrane, with concentration gradients doing the work.

  1. Vascular accessBlood is drawn from the circulation at a controlled rate. Reliable repeated access was the limiting practical problem for years after the machine worked.
  2. AnticoagulationContact with a foreign surface activates clotting, so the circuit requires anticoagulation — balanced against bleeding risk.
  3. Diffusive exchangeBlood and dialysate flow either side of a membrane, usually counter-current to hold the concentration gradient along its length.
  4. UltrafiltrationA pressure difference across the membrane removes excess water, controlled independently of the solute clearance.
  5. Return and monitoringTreated blood returns with air detection, pressure monitoring and temperature control as mandatory protective functions.
Counter-current flow

Running the two streams in opposite directions maintains a concentration difference along the entire membrane length. In co-current flow the two streams approach equilibrium and the driving gradient collapses part way along, wasting most of the surface area. The same arrangement gives counter-flow heat exchangers their advantage, and it is one of the most portable ideas in engineering — visible in dialysis, oxygenators, heat recovery and mass transfer columns alike.

Kolff’s early patients mostly died, and the machine was regarded with scepticism. He persisted, and afterwards distributed machines to other centres without charge. That decision — treating the design as something to be spread rather than owned — is a substantial part of why the technology became available quickly.

04The heart–lung machine: two functions, both hard

Operating inside the heart requires it to be still and empty of blood, while the rest of the body continues to be perfused and oxygenated. The machine must therefore replace two organs at once: pumping and gas exchange.

Sub-problem

Pumping without destroying blood

Impellers and valves that would be unremarkable in any other fluid shear red cells. Roller pumps compress tubing externally so no mechanism contacts blood; centrifugal pumps use smooth accelerating flow. Both are chosen for gentleness rather than efficiency.

Sub-problem

Oxygenating without foaming

Early oxygenators bubbled gas directly through blood, which works but damages proteins and risks embolism. Membrane oxygenators separate gas and blood by a permeable membrane, mimicking the alveolus and greatly reducing trauma.

Sub-problem

Managing the whole physiology

Temperature, anticoagulation, electrolytes, haemodilution and perfusion pressure all shift during bypass and interact. The machine is one element in a controlled physiological state, not a standalone device.

Sub-problem

Air, always

Any air entering the arterial line becomes an embolism. Bubble detectors, filters, circuit geometry that traps air and rigorous priming procedure are all mandatory, and none is optional.

Gibbon worked on the problem from the early 1930s, motivated by a patient he had watched die from a pulmonary embolism. The first successful clinical use came in 1953. Two decades of development for a single successful operation is a realistic picture of how long a genuinely new capability takes, and it is consistent with the float glass and ammonia examples elsewhere in this series.

05The pacemaker: engineering inside a control loop

The heart has its own electrical conduction system. When it fails, the mechanical pump is sound but uncoordinated or too slow. An external stimulus can restore rhythm, and external pacemakers existed by the early 1950s — but they were mains-powered and tethered the patient to a machine.

Elmqvist and Senning implanted a self-contained device in 1958. It failed after a few hours; a second was implanted the following day and lasted longer. The patient outlived both the surgeon and the engineer, receiving many devices over his life. The honest description is that the first implant was a partial failure that established feasibility, and the technology matured through iteration.

Design constraints on an implanted active device
ConstraintEngineering response
No serviceable accessHermetic sealing, high-reliability components, design life measured in years, replacement by surgery
Finite stored energyExtreme circuit efficiency, output tuned to just above capture threshold, demand pacing that fires only when needed
BiocompatibilityTitanium enclosures, inert lead insulation, materials qualified against long-term tissue response
Electromagnetic interferenceFiltering, shielding, and defined behaviour on interference detection rather than unpredictable response
Lead mechanical fatigueThe lead flexes with every heartbeat for the device life; coiled conductors and strain relief address a genuinely enormous cycle count
Safe failure behaviourReversion to a defined asynchronous mode rather than ceasing output, so a fault does not remove pacing
Demand pacing: sensing before acting

Early devices paced at a fixed rate regardless of the heart’s own activity, which wastes energy and can compete with intrinsic beats. Demand pacing senses the intrinsic rhythm and withholds a pulse when the heart has beaten on its own. Adding a sensing function transformed both device life and clinical safety, and it is a general principle worth stating plainly: a controller that observes before acting outperforms one that acts unconditionally, in every domain where both have been tried.

06Takeaways for current practice

  • Design around the fragility of what you are handling. Blood forced the pump selection; the same reasoning applies to any shear-sensitive or contamination-sensitive process.
  • Counter-current arrangement preserves the driving gradient. It is close to free and is left on the table constantly.
  • Define the failure state explicitly. Where there is no safe shutdown, the device must fail into a defined useful mode.
  • Sense before acting. Demand pacing extended device life and improved safety simultaneously by adding an observation step.
  • Expect a long interval between feasibility and dependability. Two decades of development for one successful operation is normal, not exceptional.

Relevant references include IEC 60601 for medical electrical equipment safety, ISO 14971 for risk management of medical devices, ISO 10993 for biological evaluation, and ISO 13485 for quality management systems, with the Therapeutic Goods Administration regulating supply in Australia. Cited by number for orientation only — verify currency.

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