Herman J. Flax, Ruth N. Miller, Steven M. Horvath · 1949
This 1949 study examined how shortwave diathermy (a medical heating device using radio frequencies) affected blood circulation in human legs. Researchers found conflicting results - some studies showed decreased blood flow despite tissue heating of 4 degrees Celsius, while others reported 69% increases in circulation. The controversy highlighted early concerns about RF energy's unpredictable effects on blood vessels.
Gersten JW, Wakim KG, Herrick JF, Krusen FH · 1949
This 1949 study examined how microwave radiation affects blood circulation and tissue temperature in humans. The research was conducted during the early development of microwave technology, when scientists were exploring therapeutic applications using magnetron oscillators that could generate focused microwave energy.
Gersten JW, Wakim KG, Herrick JF, Krusen FH · 1949
This 1949 study examined how microwave radiation affects blood circulation and tissue temperature in humans, marking early research into microwave therapeutic applications. The researchers explored microwaves in the 300 to 300,000 megacycle frequency range using newly developed magnetron technology originally created for military radar systems. This represents some of the first documented human exposure to controlled microwave radiation for medical purposes.
Lawrence L. Siems, A. J. Kosman, Stafford L. Osborne · 1948
This 1948 study compared how microwave versus shortwave diathermy (medical heating devices) affected blood flow in dog arteries. Researchers found that microwave heating increased blood flow while shortwave heating either had no effect or actually decreased it, challenging the assumption that all forms of heating improve circulation equally.
Horvath SM, Miller RN, Hutt BK · 1948
This 1948 study by Horvath examined how microwave radiation heats human tissues, investigating temperature gradients and thermal effects in the body. The research explored microwave diathermy applications and measured tissue temperature changes during exposure. This represents some of the earliest scientific investigation into how microwave energy interacts with human biology.
A. J. KOSMAN, S. L. OSBORNE, A. C. IVY · 1948
This 1948 research studied how different electrical current types and frequencies affect muscle function in dogs, specifically examining whether electrical stimulation could prevent muscle wasting after nerve damage. The study focused on understanding which electrical parameters work best for maintaining muscle health when natural nerve signals are disrupted.
Ralph E. Worden et al. · 1948
This 1948 study examined how microwave radiation heats living tissue under normal blood flow conditions versus when blood circulation is blocked (ischemia). Researchers found that microwaves produce significant tissue heating and investigated optimal exposure durations for therapeutic applications.
Charles S. Wise · 1948
This 1948 study measured blood flow changes in human forearms during radiofrequency diathermy treatment using plethysmographic recordings. The research challenged earlier findings that suggested RF heating decreased blood flow, instead confirming that tissue heating increases circulation as expected from basic physiology.
A. W. RICHARDSON, T. D. DUANE, H. M. HINES · 1948
This 1948 study explored whether microwave radiation could cause cataracts in eyes, using a new 12.25 cm wavelength microwave generator. The research built on earlier work showing that various forms of radiation could damage the lens of the eye. This was among the first investigations into microwave radiation's potential to cause eye damage.
E. van Someren, E. C. Rollason · 1948
This 1948 study measured radiation emissions from welding arcs and found they produce the same intensity of radiation at the welder's eye as direct sunlight. Researchers used specialized equipment including vacuum thermopiles and absorption cells made from bull's eye tissue to quantify the radiation exposure. The findings highlighted a significant occupational health concern for welders who face intense electromagnetic radiation during their work.
Rajewsky, V., Schwan, H. · 1948
This 1948 research by Bajevsky measured how human blood responds to ultra-high frequency electromagnetic radiation by studying its dielectric properties and electrical conductivity. The study examined how blood tissue interacts with radiofrequency fields, providing early data on how biological materials behave when exposed to EMF. This foundational work helped establish baseline measurements for understanding how electromagnetic energy interacts with human tissue.
KHALIL G. WAKIM et al. · 1948
This 1948 study examined how short wave diathermy (a medical heating treatment using radio frequency radiation) affects blood circulation in both dogs and humans. Researchers used plethysmographic measurements to determine whether this therapeutic RF exposure increases or decreases blood flow in the extremities.
OSBORNE, SL, FREDERICK, MS · 1948
This 1948 study investigated how 12-centimeter wavelength microwave radiation heats human and animal tissues, likely for medical diathermy applications. The research examined tissue heating effects from high-frequency electromagnetic fields, providing early scientific documentation of how microwave energy interacts with biological tissues. This work represents foundational research into microwave heating mechanisms that would later inform both medical applications and safety standards.
C. J. Imig, J. D. Thomson, H. M. Hines · 1948
This 1948 study by CJ Imig examined how microwave radiation affects testicular tissue in laboratory rodents, documenting degenerative changes in reproductive organs. The research represents one of the earliest investigations into microwave radiation's biological effects on male fertility. This foundational work established that electromagnetic fields could cause measurable tissue damage in reproductive systems.
Steven M. Horvath, Ruth V. Miller, Bruce K. Hutt · 1948
This 1948 study by Horvath examined how microwave radiation heats human tissue, exploring temperature gradients and thermal effects. The research investigated microwave radiation's potential for therapeutic heating applications, particularly in diathermy treatments. This represents some of the earliest scientific documentation of how microwaves interact with human tissue.
H. Schwan · 1948
This 1948 research by Schwan examined how temperature affects the dielectric properties of human blood when exposed to low-frequency electromagnetic fields. The study investigated how blood's electrical characteristics change with temperature variations, providing foundational data for understanding how EMF interacts with biological tissues. This early work helped establish the scientific basis for measuring electromagnetic effects in living systems.
Donald L. Rose, Sedgwick Mead · 1948
This 1948 study examined how electrical currents used in medical therapy affect human sensation and pain levels. Researchers measured the tactile sensations and pain responses when electric current passed through the body, aiming to find ways to maximize therapeutic muscle contractions while minimizing patient discomfort.
Arthur C. Giese · 1947
This 1947 review examined how radiation across the electromagnetic spectrum affects cell division, covering both ionizing and non-ionizing radiation sources. The research analyzed biological effects of electromagnetic radiation on cellular reproduction processes. This early work helped establish foundational understanding of how electromagnetic fields interact with living cells during critical division phases.
H. Schaefer, H. Schwan · 1947
This 1947 research investigated whether ultrashort radio frequency waves could selectively heat individual cells in biological tissue, focusing on bacteria and microorganisms. The study explored how electromagnetic fields might target single cells rather than heating tissue uniformly, examining the role of different dielectric properties between cell types.
Lion KS · 1947
This 1947 research investigated how metals present in biological tissues affect heating patterns during diathermy treatment, which uses radiofrequency electromagnetic fields for therapeutic heating. The study examined whether metal implants or naturally occurring metals in tissues could concentrate electromagnetic fields and create dangerous hot spots. This early work helped establish safety protocols for electromagnetic medical treatments.
H. Schaefer, H. Schwan · 1947
This 1947 research investigated how ultrashort radiofrequency waves could selectively heat individual cells within biological tissues. The study examined the potential for targeted heating effects at the cellular level using RF energy. This early work explored fundamental questions about how electromagnetic fields interact with living tissue.
URSULA M. LEDEN et al. · 1947
This 1947 study investigated how microwave radiation from radar systems affects human heating and blood circulation patterns. The research examined the biological effects of early radar technology, particularly focusing on how microwaves generate heat in human tissue and alter circulatory function. This represents some of the earliest scientific documentation of microwave biological effects in humans.
JAMES D. HARDY, HAROLD G. WOLFF, HELEN GOODELL · 1947
This 1947 research by Hardy developed methods for measuring human pain sensitivity and discrimination, establishing foundational principles for quantifying subjective pain experiences. The study focused on how people distinguish between different intensities of painful stimuli and created measurement scales for pain research. This work laid important groundwork for understanding how humans perceive and respond to potentially harmful stimuli.
R. COOPER · 1946
This 1946 study measured the electrical properties of salt water solutions at radio frequencies from 1-4000 MHz to understand how saltwater conducts electromagnetic energy. The research provided foundational data for predicting how seawater behaves at high frequencies, which became crucial for understanding EMF propagation through biological systems since the human body is roughly 60% saltwater.
Willis Jackson · 1946
This 1946 technical study by Jackson established methods for measuring how materials interact with microwave radiation at centimeter wavelengths. The research focused on developing standardized techniques and terminology for characterizing dielectric properties, which describe how substances respond to electromagnetic fields. This foundational work helped establish the scientific framework still used today to understand how microwaves interact with biological tissues.