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Gunpowder is a physical mixture of three components; saltpetre, charcoal and sulphur. As the technology matured the ratio of these became standardised at 75:15:10 with minor variations. Manuscript evidence for early formulations can differ significantly from this and there has been considerable speculation by modern authors about what effect this might have on its performance. This note considers the question from the viewpoint of the basic chemistry involved. The evolution of gunpowder has been considered in previous papers 2. It is well documented in early manuscripts that the critical component, saltpetre, was first obtained from the efflorescence found on stable and cellar walls. This is obviously a limited source of supply and early saltpetre would have been a scarce and expensive material. It is no surprise to find that early formulations contained low amounts which generally increased over the years as supply was increased in line with demand and improvements in ordnance. The evolution in the form of gunpowder from serpentine to corned to grained etc. significantly affect the burn rate 3 but not the basic chemical energy contained in any particular mix and will not be considered here. The reaction occurring when gunpowder burns is frequently depicted as 4 :-10 KNO 3 + 8 C+ 3 S → 2 K 2 CO 3 + 3 K 2 SO 4 + 6 CO 2 + 5 N 2 Approx. 75 : 15 : 10 by weight This is a naïve representation of a highly complex reaction now known to take place in eight to ten distinct steps. Nevertheless it is sufficient to demonstrate the oxygen balance necessary for complete combustion and agrees closely with the " ideal " composition of 75:15:10. Accepting that variations in the type of charcoal etc. have a measurable effect on the ignition and burn rate of a batch of gunpowder, the total potential chemical energy 5 is directly controlled by the amount of oxygen available in the mix i.e. the available saltpetre. Early formulations are recorded as containing significantly less saltpetre but the basic chemistry of the reaction is unchanged.
Journal of the Ordnance Society Vol 28
Sulphur: the trigger of gunpowder2021 •
Much has been written about the sources and properties of saltpetre and charcoal but the third component of gunpowder, sulphur, has received scant attention. Although the 'modern' spelling of saltpeter and sulfur 1 are becoming more widely used, saltpetre and sulphur are almost universal in contemporary literature. The sulphur spelling is still used by the city of Sulphur, Louisiana, US technical manuals, EU legislation, major producers and many place names. As this paper deals primarily with literature pre-twentyfirst century, the original spelling is used throughout. Although gunpowder can be made without sulphur, it has been considered an essential component from the earliest times. Of the theories propounded for the invention of gunpowder, none address the question of why the three ingredients were present in proportions that could result in a credible explosion. A previous paper 2 has posited the development of gunpowder as an evolutionary process following a logical progression involving no unique inventive step. This, incidentally, explains the difficulty in assigning a specific date to the invention of gunpowder. Briefly, the sequence of development could credibly have been ... Charcoal-A fire weapon (fire pot) Charcoal + Sulphur-A chemical weapon (stink pot) Charcoal + Sulphur + Saltpetre-An enhanced flame weapon (flame thrower) By increasing the saltpetre content as an obvious means of enhancing the flame effect, the explosive properties became evident and were exploited.
2021 •
Medieval gunpowder recipes of potassium nitrate (KNO 3), charcoal (C), and sulfur (S 8) were investigated by bomb calorimetry to determine their enthalpies of combustion and by differential scanning calorimetry (DSC) to determine their preignition and propagative ignition enthalpies. Various sample preparation methods and several additional ingredients were also tested to determine any effects on the thermodynamic values. Gunpowder recipes were prepared and used in a replica cannon that was manufactured and operated according to medieval records. Post-firing residues were collected from the bomb calorimeter and the cannon in efforts to further characterize recipe energetics using DSC. In general, during the period of 1338−1400, the %KNO 3 increased, and heats of combustion decreased, while between 1400 and 1460, the %KNO 3 decreased, and heats of combustion increased. However, since KNO 3 was usually found in the post-bomb calorimetry and post-cannon firing residues, it was not the limiting reactant. The highest pre-ignition and propagative ignition energies occurred when the KNO 3 :S 8 ratio was 3:1 as determined by DSC, and the highest enthalpies of combustion were measured for recipes where the KNO 3 :C ratio was 1:1 as determined by bomb calorimetry.
Arguably the most important Western source on the early history of gunpowder technology is the late thirteenth century manuscript, Das Fuerwerkbuch. When it was translated into English in 2000, it contained a commentary on the chemistry of many of the formulations given. These were largely dismissed as useless alchemical nonsense which could not work. Although some mysteries remain, much of the formulation can be understood either as contemporary 'best practice' or by comparison with modern pyrotechnic and explosive knowledge. This paper re-examines the underlying chemistry and demonstrates some surprising innovations anticipating much later claims. Note An extended and peer reviewed copy of this paper was published in ICON Vol 21, 2015 available at https://www.jstor.org/stable/24721698?seq=1#page_scan_tab_contents
Saltpetre is often referred to as the heart or soul of gunpowder and indeed the nitrate ion is the sole source of the gasses that give gunpowder its explosive properties. It can be substituted, albeit with varying success, by other oxidisers but the unique burning properties of gunpowder derive almost entirely from the ability of charcoal to release those gasses. Naïve equations for the gunpowder reaction commonly depict charcoal as C, the chemical element carbon. The errors that this introduces into subsequent arguments are examined. The development of the charring process from ‘domestic’ to a well controlled industrial process is examined with evidence of the early use of ‘cylinder charcoal’.
Much has been written on where and when gunpowder was first introduced. This paper offers a credible hypothesis to explain why and how the unique mixture may have come about.
In 2001 The Arms and Armour Society sponsored a translation of Das Feuerwerkbuch. (FWB) This manuscript contains the earliest (Western) references to gunpowder. The editorial comment of the translation contained the unsubstantiated assertion that, since certain processes were not specifically mentioned in the text, they were not carried out and that consequently the nitrate of medieval gunpowder was calcium based. This has been shown to be incorrect but the concept seems to have taken root among some historians unable to understand the clear technical evidence in the manuscript.ii Although the processes described in the FWB were evidently capable of delivering substantially pure potassium nitrate, there remains a possibility that some calcium (or magnesium) nitrate could remain as a minor impurity sufficient to affect the quality of the gunpowder. This present paper gives evidence that such contamination was sometimes (but not always) present but was neutralised during the manufacturing process.
Saltpetre in medieval gunpowder; Calcium or Potassium Nitrate? Until recently, it has been accepted that the formulation of gunpowder has always been based on variable mixtures of charcoal, sulphur and potassium nitrate. This has recently been challenged. It has been asserted that early gunpowder was based on lime saltpetre that is calcium nitrate. This paper examines that claim.
2005 •
A BURNING DESIRE Scholars have speculated that gunpowder a mixture of saltpetre, charcoal, and sulfur was discovered during attempts to prepare an elixir of immortality. -William H. Brock, 1992. When I was in Junior High School, I became very interested in how to make a big bang not the cosmic but the pyrotechnic type. I knew that black gunpowder was made of sulfur, saltpeter, and charcoal. However, I discovered very quickly that knowing the components was not sufficient to make black gunpowder. Real gunpowder had to be made to exacting proportions; so, I experimented with the three ingredients (really, this dignifies the trial and error process that I actually used). I found the most effective proportions, but still I was not satisfied with the performance of the mixture. I tried to grind the three constituents into a very fine powder in order to provide the most complete mixture. Then, it occurred to me that if I could dissolve the components together, I could get the most even mi...
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