X-ray, violet ray, and other rays — Edition Insights

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In Category - Medicine
Shipley, Maynard, 1872-1934, Haldeman-Julius, E. (Emanuel), 1888-1951 [Editor] Project Gutenberg 2025 Not confirmed
X-rays; X-rays -- Therapeutic use; Ultraviolet radiation; Ultraviolet radiation -- Therapeutic use Readers of public-domain and historical texts
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Edition facts

Words 15,903
Reading time 70 min
Text sections 10

This digital edition of X-ray, violet ray, and other rays — Edition Insights is described by source-level measurements including 15,903 words, 1 hr 10 min estimated reading time, and 10 detected text sections.

The text analysis averages about 22.3 words per sentence, while the detected sections provide another way to judge how the source is divided.

Project Gutenberg metadata also associates the work with “X-rays,” connecting these edition facts with the source record’s subject description.

This 1926 Little Blue Book examines X-rays and ultraviolet radiation, detailing their discovery, medical uses, and industrial applications, while also addressing the occupational hazards faced by early radiologists.
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Chapter I. Everyday Uses of X-Rays 5

Chapter II. Curative Value of X-Rays—X-Rays Cure Whooping Cough—X-Rays for Malaria 18

Chapter III. Martyrs to Radiology 32

Chapter IV. Discovery and Nature of X-Rays 43

Chapter V. Ultra-Violet Light in Health and Disease—Sunlight and Infantile Paralysis 48

Highly important as are the phenomena of Radioactivity from the physical, chemical, medical, and philosophic points of view, they are hardly comparable in their relations to the affairs of our everyday life to the Roentgen or X-rays, and to the invisible violet or ultra-violet rays. The X-rays are utilized today in hundreds of practical ways, and are vastly important also in surgery, medicine, dentistry, and in biological investigations. It is perhaps not too much to say that the discovery of the so-called X-rays should be numbered among the two or three most important revelations of modern science. This will be clearly demonstrated in the course of the chapters to follow.

X-RAY, VIOLET RAY AND OTHER RAYS

EVERYDAY USES OF X-RAYS

To enumerate and describe all the practical uses of X-rays, apart from medicine and scientific research in general, would require a good many more pages than can be devoted to the subject here. To take a few cases at random, without describing the instruments and methods employed: radiography reveals flaws in the structure of iron and steel building and bridge materials, and in the cylinders of airplane engines, and so avoids accidents. In England a gasoline or petrol tank was shown to have rivet heads on the outside and none on the inside.

Serious defects in the steel axles of railway and automobile “under carriages” have been discovered by radiography. In one case, at least, the axles had been drilled in the wrong position and the holes had been simply filled with metal and covered over. An entire lot was rejected in consequence and probably serious accidents were forestalled.

“Cracks in castings, bad welds and weak places which do not show on the surface of metal are perfectly clear to the searching rays. How much would you give to _know_ that that welded part in your automobile is really solid and perfect, that it contains no flaw to break down some day when you are twenty miles from a machine shop? A well-known mechanical engineer said recently that in ten years a metallurgical X-ray machine will be as vital a part of the equipment in an automobile repair shop, a foundry, or machine shop as it is now in a dentist’s office.”

We are assured by _The Iron Trade_ (73:26) that “the practice of analyzing metals by means of X-rays is only in its infancy. There is every reason to believe that soon great advances will be made in determining the crystallization and therefore the properties of metals. Students of metallurgy are well aware that the properties of metals and other bodies depend on the nature of their crystallization. The microscope has rendered valuable service largely because it enables the form and arrangement of the crystalline grains to be studied. The X-ray carries the same form of inquiry into a region 10,000 times more minute, thereby furnishing new evidence as to crystalline structures, so that it is now possible to see the atoms and the molecules, and the way they form crystals. Every crystal has its characteristic X-ray spectrum and can be identified thereby even when the individual crystals are beyond the resolving power of the microscope and the substance is in danger of being called amorphous. If a specimen contains a mixture of crystalline substances, the spectrum shows the combined effect of all the substances, and provided each individual spectrum is known, the specimen can be analyzed.”

The X-rays are also used to determine the quality of the fabric in automobile tires, and even to detect irregularities in the centers of golf balls, and to reveal why some of them fly straighter and farther than others.

“The professional detective, too,” says Mr. Wilfred S. Ogden (_Popular Science Monthly_, August, 1923), “will find X-rays useful in his business. Consider the detection of infernal machines, for example. Two or three X-ray plates will tell an investigator just what is in a suspicious-looking box. If it is a bomb the X-ray will show him how to get it apart and render it harmless. Immediate detection of false bottoms in trunks is child’s play with the X-ray. When the government provided its customs inspectors with X-ray machines the gems which smugglers try to hide in the linings of clothes or in hollow-handled hairbrushes might as well be worn openly.

Maynard Shipley's X-ray, violet ray, and other rays, published in 1926 as part of the Little Blue Book series, offers a concise survey of radiation technologies and their medical applications. The book opens by ranking the discovery of X-rays among "the two or three most important revelations of modern science," immediately establishing a tone of enthusiastic advocacy. Shipley moves quickly from this bold claim to concrete examples: radiography detecting flaws in steel axles, revealing rivet heads missing on the inside of a petrol tank, and exposing cracks invisible on metal surfaces. These industrial anecdotes ground the discussion in practical, everyday utility before the text turns to therapeutic uses.

Industrial Radiography and Everyday Safety

The first chapter emphasizes X-rays as a tool for quality control and accident prevention. Shipley describes how radiography uncovers "cracks in castings, bad welds and weak places which do not show on the surface of metal." He recounts a case where railway axles had been drilled in the wrong position and the holes filled with metal and covered over—a defect that X-rays exposed, leading to the rejection of an entire lot. The text also mentions a gasoline tank with rivet heads only on the outside, a flaw that could have caused a catastrophic failure. These examples are drawn from engineering and manufacturing, not medicine, illustrating the breadth of X-ray applications. Shipley quotes a mechanical engineer predicting that within ten years a "metallurgical X-ray machine" would become standard equipment, though the excerpt cuts off before the prediction is completed.

Medical Diagnosis and the Radiologist's Sacrifice

Shipley devotes considerable space to X-ray diagnosis, claiming that "the list of diseases, the presence and extent of which are betrayed or confirmed by the X-ray, would fill pages." He specifically mentions tuberculosis, occult abscesses, tumors, cancers, kidney stones, gastric ulcers, and heart diseases. A striking passage describes a portable X-ray outfit that could be carried in an ambulance to a patient's home, with a generator in the vehicle and a tube mounted on a stand adjustable by hand-wheels. The text notes that plates could be developed on the spot, enabling a diagnosis within minutes. This practical innovation is juxtaposed with a chapter titled "Martyrs to Radiology," which acknowledges the physical toll on early practitioners. Shipley states that "the martyrdom of radiologists has not been in vain," implying that their sacrifices advanced the field, though the excerpt does not detail specific cases.

Roentgen's Discovery and the Nature of X-Rays

The fourth chapter recounts the discovery of X-rays by Wilhelm Conrad Roentgen in 1895. Shipley describes Roentgen as "one of the most beautiful exemplars of the true scientific spirit," noting that he donated his entire Nobel Prize award of $40,000 to a research society despite suffering poverty after World War I. The narrative explains how Roentgen, while experimenting with a vacuum tube, noticed a paper screen coated with potassium platinocyanide becoming fluorescent. He determined that the radiation could pass through materials opaque to ordinary light, casting sharp shadows of metal objects and partial shadows of aluminum and wood. Shipley emphasizes that Roentgen hypothesized the rays were due to some unknown process, but the excerpt ends before the hypothesis is fully explained. The chapter positions Roentgen's work as foundational, linking it to the practical applications described earlier.

Readers should note that this Little Blue Book reflects the state of medical and industrial knowledge in the mid-1920s. Shipley's enthusiasm for X-rays and ultraviolet light is tempered by his acknowledgment of the dangers faced by early radiologists. The text is a historical document, not a contemporary guide, and its claims about cures for whooping cough or malaria should be understood in that context. The excerpts provide a window into how these technologies were presented to a popular audience nearly a century ago.

There’s something humbling about those early X-ray pages, the way the glow promised so much while quietly taking its toll. It makes me think of another kind of courage, the sort Simpson showed with chloroform, easing pain when no one knew the cost yet. Sir James Young Simpson and Chloroform (1811-1870) Masters of Medicine — Edition Insights sits beside it on my shelf now, two reckless, hopeful dawns.

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