Artificial Light: Its Influence upon Civilization — Reading Notes

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In Category - Inventions Industry
Luckiesh, Matthew, 1883-1967 Project Gutenberg 2006 Not confirmed
Lighting -- History; Electric lighting Readers of public-domain and historical texts
Project Gutenberg digital edition en

Edition facts

Words 98,870
Reading time 430 min
Text sections 13

The catalog record for Artificial Light: Its Influence upon Civilization — Reading Notes provides practical reading context through 98,870 words, 7 hr 10 min estimated reading time, and 13 detected text sections.

The text analysis averages about 22.2 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 “Lighting -- History,” connecting these edition facts with the source record’s subject description.

Examines artificial light's evolution from primitive flames to electric arcs, focusing on efficiency gains and societal impact. The author, a lighting scientist, blends historical narrative with technical detail, emphasizing how light production shaped civilization.
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Editorial Edition Score 4.9/5

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  • Title & short description10 pts
  • Source metadata20 pts
  • Text length15 pts
  • Chapters / structure15 pts
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Read the Text

Matches were at first cumbersome, dangerous, and expensive, but these gradually evolved into the safety matches of the present time. Although they were primarily intended for lighting fires and various kinds of lamps, billions of them are now used yearly as convenient light-sources. Smoldering hemp or other material treated with niter and other substances was an early form of match used especially for discharging firearms. The modern wax-taper is an evolutionary form of this type of light-source.

Phosphorus has long played a dominant rôle in the preparation of matches. The first attempt at making them in their modern form appears to have occurred about 1680. Small pieces of phosphorus were used in connection with small splints of wood dipped in sulphur. This type of match did not come into general use until after the beginning of the nineteenth century, owing to its danger and expense. White or yellow phosphorus is a deadly poison; therefore the progress of the phosphorus match was inhibited until the discovery of the relatively harmless form known as red phosphorus. The first commercial application of this form was made in about 1850.

An early ingenious device consisted of a piece of phosphorus contained in a tube. A piston fitted snugly into the tube, by means of which the air could be compressed and the phosphorus ignited. Sulphur matches were ignited from the burning tinder, the latter being fired by flint and steel. In 1828 another form of match consisted of a glass tube containing sulphuric acid and surrounded by a mixture of chlorate of potash and sugar. A pair of nippers was supplied with each box of these "matches," by means of which the tip of the glass tube could be broken off. This liberated the acid, which upon mixing with the other ingredients set fire to them. To this contrivance a roll of paper was attached which was ignited by the burning chemicals.

The lucifer or friction matches appeared in about 1827, but successful phosphorus matches were first made in about 1833. The so-called safety match of the present time was invented in the year 1855. To-day, the total daily output of matches reaches millions and perhaps billions. Automatic machinery is employed in preparing the splints of wood and in dipping them into molten paraffin wax and finally into the igniting composition.

During recent years the principle of the tinder-box has been revived in a device in which sparks are produced by rubbing the mineral cerite (a hydrous silicate of cerium and allied metals) against steel. These sparks ignite a gas-jet or a wick soaked in a highly inflammable liquid such as gasolene or alcohol. This device is a tinder-box of the modern scientific age.

Naturally with the advent of electricity, electrical sparks came into use for lighting gas-jets and mantles and in isolated instances they have served as light-sources. Doubtless, every one is familiar with the parlor stunt of igniting a gas-jet from the discharge from the finger-tips of static electricity accumulated by shuffling the feet across the floor-rug.

Although many of these methods and devices have been used primarily for making fire, they have served as emergency or momentary light-sources. In the outskirts of civilization some of them are employed at the present time and various modern light-sources require a method of ignition.

PRIMITIVE LIGHT-SOURCES

Many are familiar with the light of the firefly or of its larvæ, the glow-worm, but few persons realize that a vast number of insects and lower organisms are endowed with the superhuman ability of producing light by physiological processes. Apparently the chief function of these lighting-plants within the living bodies is not to provide light in the sense that the human being uses it predominantly. That is, these wonderful light-sources seem to be utilized more for signaling, for luring prey, and for protection than for strictly illuminating-purposes. Much study has been given to the production of light by animals, because the secrets will be extremely valuable to mankind. As one floats over tide-water on a balmy evening after dark and watches the pulsating spots of phosphorescent light emitted by the lowly jellyfishes, his imaginative mood formulates the question, "Why are these lowly organisms endowed with such a wonderful ability?"

Matthew Luckiesh, a director of applied science at the Nela Research Laboratory, opens his 1920 study with a clear ambition: to discuss artificial light for the general reader while avoiding intricate details. Yet the text quickly reveals a dual voice—one that recounts historical developments in a straightforward manner and another that shifts into precise technical exposition, as seen in the searchlight discussion where foot-candles and luminous intensities are given with exact figures. This alternation between accessible history and specialized data defines the book's narrative rhythm.

From Primitive Flames to Scientific Efficiency

The early chapters trace artificial light from its crude beginnings—likely oil lamps and candles—through the eighteenth-century birth of light-production science. Luckiesh marks the mid-nineteenth century as a turning point: before it, only "mere light" was available; afterward, sources became "more powerful and efficient." The language here is measured, almost clinical, as he quantifies progress: efficiency increased fifty-fold in a single century, and cost diminished correspondingly. This section establishes a baseline of historical narrative, but the pace quickens when he introduces specific milestones, such as the transition from "mere light" to "more light" and finally to "adequate light" in the early twentieth century. The reader senses a deliberate structure—a chronological march that builds toward the technological leaps described later.

Searchlights and the Language of Measurement

In the later chapters, the prose becomes denser with numbers and technical terms. Describing a 15-kilowatt searchlight, Luckiesh reports that it produced 280 foot-candles at 930 feet, equivalent to a source of nearly 250,000,000 candles. He then explains that a searchlight's range varies as the fourth root of its intensity—a statement that assumes comfort with mathematical relationships. The voice here is that of an engineer reporting field data, not a historian narrating progress. This shift is abrupt: the reader moves from broad historical arcs to the specifics of Fresnel lenses, oxyacetylene flames, and portable beacons. The change in pace mirrors the subject itself—as light sources grew more powerful, the writing grows more specialized, demanding closer attention from the reader.

Warfare and the Quiet Utility of Self-Luminous Paint

A striking contrast appears in the discussion of wartime applications. Alongside powerful searchlights and beacons, Luckiesh describes self-luminous paint used for wooden buttons, arrows, and signs at the battle front. The tone here is subdued: the paint's light is "feeble," visible only at short distances, yet valuable for silent signaling and guiding troops at night. The prose slows, focusing on practical details—buttons two or three inches in diameter, stretcher-bearers bearing luminous marks. This passage stands apart from the numerical intensity of the searchlight section, offering a quieter, more human-scale view of artificial light. The shift in pace underscores the book's range, from the spectacular to the mundane, and reminds the reader that even faint light served critical purposes.

Readers should note that the excerpts represent only a fraction of the book's scope. The full text likely includes chapters on economic influences, the esthetics of lighting, and other byways of artificial light. Luckiesh's preface promises a discussion "fairly complete in scope," but the available passages show a work that oscillates between accessible history and technical report. Those interested in the social impact of technology will find the historical sections engaging; readers seeking engineering details will appreciate the later chapters. The book rewards selective reading based on one's tolerance for numerical data.

Rain came down hard that Tuesday, and Artificial Light sat open on my lap while the room grew dimmer, its talk of arc lamps and gas mantles somehow feeling like company. The way it lingered on efficiency—how every flame was a calculation—sent me looking for something plainer, and I found Maxims and Instructions for the Boiler Room Useful to Engineers, Firemen & Mechanics; Relating to Steam Generators, Pumps, Appliances, Steam Heating, Practical Plumbing — A Closer Reading on the shelf, its cover cracked, and the afternoon turned to pressure gauges and quiet fire. Just that—another kind of glowing warmth, tended by hand.

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