Chapter IX: MISCELLANEOUS.--Spanish Fisheries.--Noticeable objects (2)
A deep trench saves labor, and places the refuse in the most immediately safe position, but a buried mass of refuse will take a long time to decay; it should not be disturbed, and will taint the adjacent soil for a long time. This is of less consequence in a merely temporary encampment, while it might entail serious evils in localities continuously inhabited. The following plan of trench has been adopted as a more permanent arrangement in Indian villages, with the object of checking the frightful evil of surface pollution of the whole country, from the people habitually fouling the fields, roads, streets, and watercourses. Long trenches are dug, at about one foot or less in depth, at a spot set apart, about 200 or 300 yards from dwellings. Matting screens are placed round for decency. Each day the trench, which has received the excreta of the preceding day, is filled up, the excreta being covered with fresh earth obtained by digging a new trench adjoining, which, when it has been used, is treated in the same manner. Thus the trenches are gradually extended, until sufficient ground has been utilized, when they are plowed up and the site used for cultivation. The Indian plow does not penetrate more than eight inches; consequently, if the trench is too deep, the lower stratum is left unmixed with earth, forming a permanent cesspool, and becomes a source of future trouble. It is to be observed, however, that in the wet season these trenches cannot be used, and in sandy soil they do not answer. This system, although it is preferable to what formerly prevailed--viz., the surface defilement of the ground all round villages and of the adjacent water courses--is fraught with danger unless subsequent cultivation of the site be strictly enforced, because it would otherwise retain large and increasing masses of putrefying matter in the soil, in a condition somewhat unfavorable to rapid absorption. These arrangements are applicable only to very rough life or very poor communities.
The question of the removal of kitchen refuse, manure, etc., from barracks next calls for notice. The great principle to be observed in removing the solid refuse from barracks is that every decomposable substance should be taken away at once. This principle applies especially in warm climates. Even the daily removal of refuse entails the necessity of places for the deposit of the refuse, and therefore this principle must be applied in various ways to suit local convenience. In open situations, exposed to cool winds, there is less danger of injury to health from decomposing matters than there would be in hot, moist, or close positions. In the country generally there is less risk of injury than in close parts of towns. These considerations show that the same stringency is not necessarily required everywhere. Position by itself affords a certain degree of protection from nuisance. The amount of decomposing matter usually produced is also another point to be considered. A small daily product is not, of course, so injurious as a large product. Even the manner of accumulating decomposing substances influences their effect on health. There is less risk from a dung heap to the leeward than to the windward of a barrack. The receptacles in which refuse is temporarily placed, such as ash pits and manure pits, should never be below the level of the ground. If a deep pit is dug in the ground, into which the refuse is thrown in the intervals between times of removal, rain and surface water will mix with the refuse and hasten its decomposition, and generally the lowest part of the filth will not be removed, but will be left to fester and produce malaria. In all places where the occupation is permanent the following conditions should be attended to:
1. That the places of deposit be sufficiently removed from inhabited buildings to prevent any smell being perceived by the occupants. 2. That the places of deposit be above the level of the ground--never dug out of the ground. The floor of the ash pit or dung pit should be at least six inches above the surface level. 3. That the floor be paved with square sets, or flagged and drained. 4. That ash pits be covered. 5. That a space should be paved in front, so as to provide that the traffic which takes place in depositing the refuse or in removing it shall not produce a polluted surface.
In towns those parts of the refuse which cannot be utilized for manure or otherwise are burned. But this is an operation which, if done unskillfully, without a properly constructed kiln, may give rise to nuisance. One of the best forms of kiln is one now in operation at Ealing, which could be easily visited from London.
_The removal of excreta from houses._--The chief object of a perfect system of house drainage is the immediate and complete removal from the house of all foul and effete matter directly it is produced. The first object--viz., removal of foul matter, can be attained either by the water closet system, when carried out in this integrity; but it could, of course, be attained without drains if there was labor enough always available; and the earth closet or the pail system are modifications of immediate removal which are safe. Cesspools in a house do not fulfill this condition of immediate removal. They serve for the retention of excremental and other matters. In a porous soil it endangers the purity of the wells. The Indian cities afford numerous examples of subsoil pollution. The Delhi ulcer was traced to the pollution of the wells from the contaminated subsoil; and the soil in many cities and villages is loaded with niter and salt, the chemical results of animal and vegetable refuse left to decay for many generations, from the presence of which the well water is impure. There are many factories of saltpeter in India whose supplies are derived from this source; and during the great French wars, when England blockaded all the seaports of Europe, the First Napoleon obtained saltpeter for gunpowder from the cesspits in Paris. Cesspools are inadmissible where complete removal can be effected. Cesspits may, however, be a necessity in some special cases, as, for instance, in detached houses or a small detached barrack. Where they cannot be avoided, the following conditions as to their use should be enforced:
1st. A cesspit should never be located under a dwelling. It should be placed outside, and as far removed from the immediate neighborhood of the dwelling as circumstances will allow. There should be a ventilated trap placed on the pipe leading from the watercloset to the cesspit. 2d. It should be formed of impervious material so as to permit of no leakage. 3d. It should be ventilated. 4th. No overflow should be permitted from it. 5th. When full it should be thoroughly emptied and cleaned out; for the matter left at the bottom of a cesspit is liable to be in a highly putrescible condition.
Where a cesspit is unavoidable, perhaps the best and least offensive system for emptying it is the pneumatic system. This is applicable to the water closet refuse alone. The pneumatic system acts as follows: A large air-tight cylinder on wheels, or, what answers equally, a series of air-tight barrels connected together by tubes about 3 in. diameter, placed on a cart, brought as near to the cesspit as is convenient; a tube of about the same diameter is led from them to the cesspit; the air is then exhausted in the barrels or cylinder either by means of an air pump or by means of steam injected into it, which, on condensation, forms a vacuum; and the contents of the cesspit are drawn through the tube by the atmospheric pressure into the cylinder or barrels. A plan which is practically an extension of this system has been introduced by Captain Liernur in Holland. He removes the fæcal matter from water closets and the sedimentary production of kitchen sinks by pneumatic agency. He places large air-tight tanks in a suitable part of the town, to which he leads pipes from all houses. He creates a vacuum in the tanks, and thus sucks into one center the fæcal matter from all the houses. Various substitutes have been tried for the cesspit, which retain the principle of the hand removal of excreta. The first was the combination of the privy with an ashpit above the surface of the ground, the ashes and excreta being mixed together, and both being removed periodically. The next improvement was the provision of a movable receptacle. Of this type the simplest arrangement is a box placed under the seat, which is taken out, the contents emptied into the scavenger's cart, and the box replaced. The difficulty of cleansing the angles of the boxes led to the adoption of oval or round pails. The pail is placed under the seat, and removed at stated intervals, or when full, and replaced by a clean pail. In Marseilles and Nice a somewhat similar system is in use. They employ cylindrical metal vessels furnished with a lid which closes hermetically, each capable of holding 11 gallons. The household is furnished with three or four of these vessels, and when one is full the lid is closed hermetically, the vessel thus remaining in a harmless condition in the house till taken away by the authorities and replaced by a clean one. The contents are converted into manure. In consequence of the offensiveness of the open pail, the next improvement was to throw in some form of deodorizing material daily. In the north of England the arrangement generally is that the ashes shall be passed through a shoot, on which they are sifted--the finer fall into the pail to deodorize it, the coarser pass into a box, whence they can be taken to be again burned--while a separate shoot is provided for kitchen refuse, which falls into another pail adjacent.
Probably the best known contrivance for deodorizing the excreta is the dry earth system as applied in the earth closet, in which advantage is taken of the deodorizing properties of earth. Dry earth is a good deodorizer; 1½ lb. of dry earth of good garden ground or clay will deodorize such excretion. A larger quantity is required of sand or gravel. If the earth after use is dried, it can be applied again, and it is stated that the deodorizing powers of earth are not destroyed until it has been used ten or twelve times. This system requires close attention, or the dry earth closet will get out of order; as compared with water closets, it is cheaper in first construction, and is not liable to injury by frost; and it has this advantage over any form of cesspit--that it necessitates the daily removal of refuse. The cost of the dry earth system per 1,000 persons may be assumed as follows: Cost of closet, say, £500; expense of ovens, carts, horses, etc., £250; total capital, £750, at 6 per cent. £37 10_s._ interest. Wages of two men and a boy per week, £1 12_s._; keep of horses, stables, etc., 18_s._; fuel for drying earth, 1_s._ 6_d._ per ton dried daily, £1 10_s._; cost of earth and repairs, etc., 14_s._; weekly expenses, £4 14_s._ Yearly expenses, £247 (equal to 4_s._ 11_d._ per ton per annum); interest, £37 10_s._--total, £284 10_s._, against which should be put the value of the manure. But the value of the manure is simply a question of carriage. If the manure is highly concentrated, like guano, it can stand a high carriage. If the manuring elements are diffused through a large bulk of passive substances, the cost of the carriage of the extra, or non-manuring, elements absorbs all profit. If a town, therefore, by adding deodorants to the contents of pails produces a large quantity of manure, containing much besides the actual manuring elements--such as is generally the case with dry earth--as soon as the districts immediately around have been fully supplied, a point is soon reached at which it is impossible to continue to find purchasers. The dry earth system is applicable to separate houses, or to institutions where much attention can be given to it, but it is inapplicable to large towns from the practical difficulties connected with procuring, carting, and storing the dry earth.
With the idea that if the solid part of the excreta could be separated from the liquid and kept comparatively dry the offensiveness would be much diminished, and deodorization be unnecessary, a method for getting rid of the liquid portion by what is termed the Goux system has been in use at Halifax. This system consists in lining the pail with a composition formed from the ashes and all the dry refuse which can be conveniently collected, together with some clay to give it adhesion. The lining is adjusted and kept in position by a means of a core or mould, which is allowed to remain in the pails until just before they are about to be placed under the seat; the core is then withdrawn, and the pail is left ready for use. The liquid which passes into the pail soaks into this lining, which thus forms the deodorizing medium. The proportion of absorbents in a lining 3 in. thick to the central space in a tub of the above dimensions would be about two to one; but unless the absorbents are dry, this proportion would be insufficient to produce a dry mass in the tubs when used for a week, and experience has shown that after being in use for several days the absorbing power of the lining is already exceeded, and the whole contents have remained liquid. There would appear to be little gain by the use of the Goux lining as regards freedom from nuisance, and though it removes the risk of splashing and does away with much of the unsightliness of the contents, the absorbent, inasmuch as it adds extra weight which has to be carried to and from the houses, is rather a disadvantage than otherwise from the manurial point of view.
The simple pail system, which is in use in various ways in the northern towns of England, and in the permanent camps to some extent at least, and of which the French "tinette" is an improved form, is more economically convenient than the dry earth system or the Goux or other deodorizing system, where a large amount of removal of refuse has to be accomplished, because by the pail system the liquid and solid ejections may be collected with a very small, or even without any, admixture of foreign substances; and, according to theory, the manurial value of dejections per head per annum ought to be from 8_s._ to 10_s._ The great superiority, in a sanitary point of view, of all the pail or pan systems over the best forms over the old cesspits or even the middens is due to the fact that the interval of collection is reduced to a minimum, the changing or emptying of the receptacles being sometimes effected daily, and the period never exceeding a week. The excrementitious matter is removed without soaking in the ground or putrefying in the midst of a population.
These plans for the removal of excreta do not deal with the equally important refuse liquid--viz., the waste water from washing and stables, etc. As it is necessary to have drains for the purpose of removing the waste water, it is more economical to allow this waste water to carry away the excreta. In any case, you must have drains for removing the fouled water. Down these drains it is evident that much of the liquid excreta will be poured, and thus you must take precautions to prevent the gases of decomposition which the drains are liable to contain from passing into your houses.
There is a method which you might find useful on a small scale to which I will now draw your attention, as it is applicable to detached houses or small barracks--viz., the plan of applying the domestic water to land through underground drains, or what is called subsoil irrigation. This system affords peculiar facilities for disposing of sewage matter without nuisance. There are many cases where open irrigation in close contiguity to mansions or dwellings might be exceedingly objectionable, and in such cases subsoil irrigation supplies a means of dealing with a very difficult question. This system was applied some years ago by Mr. Waring in Newport, in the United States. It has recently been introduced into this country.
The system is briefly as follows: The water from the house is carried through a water-tight drain to the ground where the irrigation is to be applied. It is there passed through ordinary drain pipes, placed 1 ft. below the surface, with open joints, by means of which it percolates into the soil. Land drains, 4 ft. deep, should be laid intermediately between the subsoil drains to remove the water from the soil. The difficulty of subsoil irrigation is to prevent deposit, which chokes the drains; and if the foul domestic water is allowed to trickle through the drains as it passes away from the house it soon chokes the drains. It is, therefore, necessary to pass it in flushes through the drains, and this can be best managed by running the water from the house into one of Field's automatic flush tanks, which runs off in a body when full.
When you have water closet and drainage, the great object to be attained in house drainage is to prevent the sewer gas from passing from the main sewer into the house drain. It was the custom to place a flap at the junction of the house drain with the sewer; but this flap is useless for preventing sewer gas from passing up the house drain. The plan was therefore adopted of placing a water trap under the water closet basin or the sink, etc., in direct communication with the drain. The capacity of water to absorb sewer gas is very great, consequently the water in the trap would absorb this gas. When the water became warm from increase of temperature, it would give out the gas into the house; when it cooled down at night, it would again absorb more gas from the soil pipe, and frequent change of temperature would cause it to give out and reabsorb the gas continually.
These objections have led to the present recognized system--viz., 1st, to place a water trap on the drain to cut off the sewer gases from the foot of the soil pipe; and, next, to place an opening to the outer air on the soil pipe between the trap and the house to secure efficient disconnection between the sewer and the house. It is, moreover, necessary to produce a movement of air and ventilation in the house drain pipes to aerate the pipe and to oxidize any putrescible products which may be in it. To do this, we must insure that a current of air shall be continually passing through the drains; both an inlet and an outlet for fresh air must be provided in the portions of the house drain which are cut off from the main sewer, for without an inlet and outlet there can be no efficient ventilation. This outlet and inlet can be obtained in the following manner: In the first place, an outlet may be formed by prolonging the soil pipe at its full diameter, and with an open top to above the roof, in a position away from the windows, skylights, or chimneys. And, secondly, an inlet may be obtained by an opening into the house drain, on the dwelling side of and close to the trap, by means of the disconnecting manhole or branch-pipe before mentioned, or where necessary by carrying up the inlet by means of a ventilating pipe to above the roof. The inlet should be equal in area to the drain pipe, and not in any case less than 4 in. in diameter. If it were not for appearance and the difficulty of conveying the excreta without lodgments, an open gutter would be preferable to a closed pipe in the house. This arrangement is based on the principle that there should be no deposit in the house drains. Therefore the utmost care should be taken to lay the house drains in straight lines, both in plan and gradient, and to give the adequate inclination.
The following are desirable conditions to observe in house drains: 1. As to material of pipes. House drains should be made either of glazed stoneware pipes or fireclay pipes with cement joints, or preferably of cast iron pipes jointed with carefully-made lead joints, or with turned joints and bored sockets. I say preferably of cast iron. In New York the iron soilpipe, with joints made with lead, is now required by the municipal regulations. It is a stronger pipe than a rainwater pipe. The latter will often be found to have holes. A lead joint cannot be made properly in a weak pipe, therefore the lead joint is to some extent a guarantee of soundness. Lead pipes will be eaten away by water containing free oxygen without carbonic acid, therefore pure rainwater injures lead pipes. An excess of carbonic acid in water will also eat away lead. You will find that in many cases pinholes appear in a soilpipe, and when inside a house that allows sewer gas to pass into the house. Moreover, lead is a soft material; it is subject to indentations, to injury from nails, to sagging. A cast-iron pipe, when coated with sewage matter, does not appear to be subject to decay; and if of sufficient substance it is not liable to injury. When once well fixed, it has no tendency to move. I would, therefore, advocate cast iron in lieu of lead soilpipes. In fixing the soilpipe which is to receive a water-closet, the trap should form part of the fixed pipe; so that if there is any sinking the down pipe will not sink away from the trap. It is, however, not sufficient to provide good material. There is nothing which is more important in a sanitary point of view than good workmanship in house drainage. In this matter, it is on details that all depends. Just consider; the drain pipes under the best conditions of aeration contain elements of danger, and those pipes are composed of a number of parts, at the point of junction of any one of which the poison may escape into the house. You thus perceive how necessary it is first to reduce the poison to a minimum by cutting off the sewer gas which might otherwise pass from the street sewer to the house drain, and in the next place being most careful in the workmanship of every part of your house drains and soilpipes. Reduce your danger where you can by putting your pipes outside. But you cannot always do that--for instance, at New York and in Canada they would freeze.
All drain pipes should be proved to be watertight by plugging up the lower end of the drain pipe and filling it with water. In no case should a soilpipe be built inside a wall. It should be so placed as to be always accessible. 2. The pipes should be generally 4 in. diameter. In no instance need a drain pipe inside a house exceed 6 in. in diameter. 3. Every drain of a house or building should be laid with true gradients, in no case less than 1/100, but much steeper would be preferable. When from circumstances the drain is laid at a smaller inclination, a flush tank should be provided. They should be laid in straight lines from point to point. At every change of direction there should be reserved a means of access to the drain. 4. No drain should be constructed so as to pass under a dwelling house, except in particular cases when absolutely necessary. In such cases the pipe should be of cast iron, and the length of drain laid under the house should be laid perfectly straight--a means of access should be provided at each end; it should have a free air current passing through it from end to end, and a flush tank should be placed at the upper end. 5. Every house drain should be arranged so as to be flushed, and kept at all times free from deposit. 6. Every house drain should be ventilated by at least two suitable openings, one at each end, so as to afford a current of air through the drain, and no pipe or opening should be used for ventilation unless the same be carried upward without angles or horizontal lengths, and with tight joints. The size of such pipes or openings should be fully equal to that of the drain pipe ventilated. 7. The upper extremities of ventilating pipes should be at a distance from any windows or openings, so that there will be no danger of the escape of the foul air into the interior of the house from such pipes. The soilpipe should terminate at its lower end in a properly ventilating disconnecting trap, so that a current of air would be constantly maintained through the pipe. 8. No rainwater pipe and no overflow or waste pipe from any cistern or rainwater tank, or from any sink (other than a slop sink for urine), or from any bath or lavatory, should pass directly to the soilpipe; but every such pipe should be disconnected therefrom by passing through the wall to the outside of the house, and discharging with an end open to the air. I may mention here that the drainage arrangements of this Parkes Museum in which we are assembled were very defective when the building was first taken. Mr. Rogers Field, one of the committee, was requested to drain it properly, and it has been very successfully accomplished.
I would now draw your attention to some points of detail in the fittings for carrying away waste water.
First, with regard to lavatories. As already mentioned, every waste pipe from the sink should deliver in the open air, but it should have an opening at its upper end as well as at its lower end, to permit a current of air to pass through it; and it should be trapped close to the sink, so as to prevent the air being drawn through it into the house; otherwise you will have an offensive smell from it. I will give you an instance: At the University College Hospital there are some fire tanks on the several landings. The water flows in every day, and some flows away through the waste pipes; these pipes, which carry away nothing but fresh London water to empty in the yard, got most offensive simply from the decomposition of the sediment left in them by the London water passing through them day after day. A small waste pipe from a bath or a basin is a great inconvenience. It should be of a size to empty rapidly--for a bath 2 inches, a basin 1½, inches. There are other points connected with fittings to which I would call your attention. The great inventive powers which have been applied to the w.c. pan are an evidence of how unsatisfactory they all are. Many kinds of water-closet apparatus and of so-called "traps" have a tendency to retain foul matter in the house, and therefore, in reality, partake more or less of the nature of small cesspools, and nuisances are frequently attributed to the ingress of "sewer gas" which have nothing whatever to do with the sewers, but arise from foul air generated in the house drains and internal fittings. The old form was always made with what is called a D-trap. Avoid the D-trap. It is simply a small cesspool which cannot be cleaned out. Any trap in which refuse remains is an objectionable cesspool. It is a receptacle for putrescrible matter. In a lead pipe your trap should always be smooth and without corners. The depth of dip of a trap should depend on the frequency of use of the trap. It varies from ½ inch to 3½ inches. When a trap is rarely used, the dip should be deeper than when frequently used, to allow of evaporation. In the section of a w.c. pan, the object to be attained is to take that form in which all the parts of the trap can be easily examined and cleaned, in which both the pan and the trap will be washed clean by the water at each discharge, and in which the lever movement of the handle will not allow of the passage of sewer gas.
And now just a few personal remarks in conclusion. I have had much pleasure in giving to my old brother officers in these lectures the result of my experience in sanitary science. In doing so, I desired especially to impress on you who are just entering your profession the importance of giving effect to those principles of sanitary science which were left very much in abeyance until after the Crimean war. I have not desired to fetter you with dogmatic rules, but I have sought, by general illustrations, to show you the principles on which sanitary science rests. That science is embodied in the words, pure earth, pure air, pure water. In nature that purity is insured by increasing movement. Neither ought we to stagnate. In the application of these principles your goal of to-day should be your starting-post for to-morrow. If I have fulfilled my object, I shall have interested you sufficiently to induce some of you at least to seize and carry forward to a more advanced position the torch of sanitary science.
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PASTEUR'S NEW METHOD OF ATTENUATION.
The view that vaccinia is attenuated variola is well known, and has been extensively adopted by English physicians. If the opinion means anything, it signifies that the two diseases are in essence one and the same, differing only in degree. M. Pasteur has recently found that by passing the bacillus of "rouget" of pigs through rabbits, he can effect a considerable attenuation of the "rouget" virus. He has shown that rabbits inoculated with the bacillus of rouget become very ill and die, but if the inoculations be carried through a series of rabbits, a notable modification results in the bacillus. As regards the rabbits themselves, no favorable change occurs--they are all made very ill, or die. But if inoculation be made on pigs from those rabbits, at the end of the series it is found that the pigs have the disease in a mild form, and, moreover, that they enjoy immunity from further attacks of "rouget." This simply means that the rabbits have effected, or the bacillus has undergone while in them, an attenuation of virulence. So the pigs may be "vaccinated" with the modified virus, have the disease in a mild form, and thereafter be protected from the disease. The analogy between this process and the accepted view of vaccinia is very close. The variolous virus is believed to pass through the cow, and there to become attenuated, so that inoculations from the cow-pox no longer produce variola in the human subject, but cow-pox (vaccinia). As an allied process, though of very different result, mention may be made of some collateral experiments of Pasteur, also performed recently. Briefly, it has been discovered that the bacillus of the "rouget" of pigs undergoes an increase of virulence by being cultivated through a series of pigeons. Inoculations from the last of the series of pigeons give rise to a most intense form of the disease. It will be remembered that the discovery of the bacillus of "rouget" of pigs was due to the late Dr. Thuillier.--_Lancet._
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Very few persons realize the necessity of cultivating an equable temper and of avoiding passion. Many persons have met with sudden death, the result of a weak heart and passionate nature.
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CONVENIENT VAULTS.
This is a subject which will bear line upon line and precept upon precept. Many persons have availed themselves of the cheap and easy means which we have formerly recommended in the shape of the daily use of absorbents, but a larger number strangely neglect these means, and foul air and impure drainage are followed by disease and death. Sifted coal ashes and road dust are the remedy, kept in barrels till needed for use. A neat cask, filled with these absorbents, with a long-handled dipper, is placed in the closet, and a conspicuous placard directs every occupant to throw down a dipper full before leaving. The vaults, made to open on the outside, are then as easily cleaned twice a year as sand is shoveled from a pit. No drainage by secret, underground seams in the soil can then poison the water of wells; and no effluvia can arise to taint the air and create fevers. On this account, this arrangement is safer and better than water-closets. It is far cheaper and simpler, and need never get out of order. There being no odor whatever, if properly attended to, it may be contiguous to the dwelling. An illustration of the way in which the latter is accomplished is shown by Fig. 1, which represents a neat addition to a kitchen wing, with hip-roof, the entrance being either from the kichen through an entry, or from the outside as shown by the steps. Fig. 2 is a plan, showing the double walls with interposed solid earth, to exclude any possible impurity from the cellar in case of neglect. The vaults may be reached from the outside opening, for removing the contents. In the whole arrangement there is not a vestige of impure air, and it is as neat as a parlor; and the man who cleans out the vaults say it is no more unpleasant than to shovel sand from a pit.
Those who prefer may place the closet at a short distance from the house, provided the walk is flanked on both sides with evergreen trees; for no person should be compelled to encounter drifting snows to reach it--an exposure often resulting in colds and sickness. A few dollars are the whole cost, and civilization and humanity demand as much.--_Country Gentleman_.
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POISONOUS SERPENTS AND THEIR VENOM.
By Dr. G. ARCHIE STOCKWELL.
Chemistry has made astounding strides since the days of the sixteenth century, when Italian malice and intrigue swayed all Europe, and poisons and poisoners stalked forth unblushingly from cottage and palace; when crowned and mitered heads, prelates, noblemen, beneficed clergymen, courtiers, and burghers became Borgias and De Medicis in hideous infamy in their greed for power and affluence; and when the civilized world feared to retire to rest, partake of the daily repast, inhale the odors of flower or perfume, light a wax taper, or even approach the waters of the holy font. These horrors have been laid bare, their cause and effect explained, and tests discovered whereby they may be detected, providing the law with a shield that protects even the humblest individual. Great as the science is, however, it is yet far removed from perfection; and there are substances so mysterious, subtle, and dangerous as to set the most delicate tests and powerful lenses at naught, while carrying death most horrible in their train; and chief of these are the products of Nature's laboratory, that provides some sixty species of serpents with their deadly venom, enabling them in spite of sluggish forms and retiring habits to secure abundant prey and resent mischievous molestation. The hideous _trigonocephalus_ has forced the introduction and acclimation of the mongoose to the cane fields of the Western tropics; the tiger snake (_Heplocephalus curtus_) is the terror of Australian plains; the fer de lance (_Craspedocephalus lanceolatus_) renders the paradise of Martinique almost uninhabitable; the tic paloonga (_Daboii russelli_) is the scourge of Cinghalese coffee estates; the giant ehlouhlo of Natal (unclassified) by its presence secures a forbidding waste for miles about; the far famed cobra de capello (_Naja tripudians_) ravages British India in a death ratio of one-seventh of one per cent. of the dense population, annually, and is the more dangerous in that an assumed sacred character secures it largely from molestation and retributive justice; and in Europe and America we have vipers, rattlesnakes, copperheads, and moccasins (_viperinæ_ and _crotalidæ_), that if a less degree fatal, are still a source of dread and annoyance. All these forms exhibit in general like ways and like habits, and if the venom of all be not generically identical, the physiological and toxicological phenomena arising therefrom render them practically and specifically so. Indeed, their attributes appear to be mere modifications arising from difference in age, size, development, climate, latitude, seasons, and enforced habits, aided perhaps by idiosyncrasies and the incidents and accidents of life.
In delicacy of organism and perfection in mechanism and precision, the inoculatory apparatus of the venomous reptile excels the most exquisite appliances devised by the surgical implement maker's art, and it is doubtful whether it can ever be rivaled by the hand of man. The mouth of the serpent is an object for the closest study, presenting as it does a series of independent actions, whereby the bones composing the upper jaw and palate are loosely articulated, or rather attached, to one another by elastic and expansive ligaments, whereby the aperture is made conformatory, or enlarged at will--any one part being untrammeled and unimpeded in its action by its fellows. The recurved, hook-like teeth are thus isolated in application, and each venom fang independent of its rival when so desired, and it becomes possible to reach points and recesses seemingly inaccessible.
The fangs proper, those formidable weapons whose threatening presence quails the boldest opponent, inspires the fear of man, and puts to flight the entire animal kingdom--lions, tigers, and leopards, all but the restless and plucky mongoose--and whose slightest scratch is attended with such dire results, are two in number, one in each upper jaw, and placed anteriorly to all other teeth, which they exceed by five or six times in point of size. Situated just within the lips, recurved, slender, and exceeding in keenness even the finest of cambric needles, they are penetrated in their longitudinal diameter by a delicate, hair-like canal opening into a groove at the apex, terminating on the anterior surface in an elongated fissure. As the canal is straight, and the tooth falciform, a like groove or longitudinal fissure is formed at the base, where it is inclosed by the aperture of the duct that communicates with the poison apparatus.
At the base of each fang, and extending from a point just beneath the nostril, backward two-thirds the distance to the commissure of the mouth, is the poison gland, analogous to the salivary glands of man, that secretes a pure, mucous saliva, and also a pale straw-colored, half-oleaginous fluid, the venom proper. Within the gland, venom and saliva are mingled in varying proportions coincidently with circumstances; but the former slowly distills away and finds lodgment in the central portion of the excretory duct, that along its middle is dilated to form a bulb-like receptacle, and where only it may be obtained in perfect purity.
When the reptile is passive, the fangs are arranged to lie backward along the jaw, concealed by the membrane of the mouth, and thus offer no impediment to deglutition. Close inspection, however, at once reveals not only their presence, but also several rudimentary ones to supply their place in case of injury or accident. The bulb of the duct, too, is surrounded by a double aponeurotic capsule, of which the outermost and strongest layer is in connection with a muscle by whose action both duct and gland are compressed at will, conveying the secretion into the basal aperture of the fang, at the same time refilling the bulb.
When enraged and assuming the offensive and defensive, the reptile draws the posterior portion of its body into a coil or spiral, whereby the act of straightening, in which it hurls itself forward to nearly its full length, lends force to the blow, and at the same instant the fangs are erected, drawn forward in a reverse plane, permitting the points to look outward beyond the lips. The action of the compressor muscles is contemporaneous with the blow inflicted, the venom being injected with considerable violence through the apical outlets of the fangs, and into the bottom of the wound. If the object is not attained, the venom may be thrown to considerable distances, falling in drops; and Sir Arthur Cunynghame in a recent work on South Africa relates that he was cautioned not to approach a huge cobra of six feet or more in length in its death agony, lest it should hurl venom in his eyes and create blindness; he afterward found that an officer of Her Majesty's XV. Regiment had been thus injured at a distance of _forty-five feet_, and did not recover his eyesight for more than a week.[1]
[Footnote 1: Presumably the Natal ombozi, or spitting cobra, _Naja
hæmachites_, who is fully equal to the feat described.]
With the infliction of the stroke and expression of its venom, the creature usually attempts to reverse its fangs in the wound, thereby dragging through and lacerating the flesh; an ingenious bit of devilishness hardly to be expected from so low a form of organism; but its frequent neglect proves it by no means mechanical, and it frequently occurs that the animal bitten drags the reptile after it a short distance, or causes it to leave its fangs in the wound. Some serpents also, as the fer de lance, black mamba, and water moccasin, are apparently actuated by most vindictive motives, and coil themselves about the part bitten, clinging with leech-like tenacity and resisting all attempts at removal. Two gentlemen of San Antonio, Texas,[2] who were bitten by rattlesnakes, subsequently asserted that after having inflicted all possible injury, the reptiles scampered away with unmistakable manifestations of pleasure. "Snakes," remarked one of the victims, "usually glide smoothly away with the entire body prone to the ground; but the fellow I encountered traveled off with an up and down wave-like motion, as if thrilled with delight, and then, getting under a large rock where he was safe from pursuit, he turned, and raising his head aloft waved it to and fro, as if saying. 'Don't you feel good now?' It would require but a brief stretch of the imagination to constitute that serpent a veritable descendant of the old Devil himself."
[Footnote 2: On the authority of N.A. Taylor and H.F. McDaniels.]
As the first blow commonly exhausts the receptacle of the duct, a second (the venom being more or less mingled and diluted by the salivary secretion) is comparatively less fatal in results; and each successive repetition correspondingly inoffensive until finally nothing but pure mucus is ejected. Nevertheless, when thoroughly aroused, the reptile is enabled to constantly hurl a secretion, since both rage and hunger swell the glands to enormous size, and stimulate to extraordinary activity--a fortuitous circumstance to which many an unfortunate is doubtless indebted for his life. The removal of a fang, however, affects its gland to a degree that it becomes almost inoperative, until such a time as a new tooth is grown, and again calls it into action, which is commonly but a few weeks at most; and a person purchasing a poisonous serpent under the supposition that it has been rendered innocuous, will do well to keep watch of its mouth lest he be some time taken unaware. It may be rendered permanently harmless, however, by first removing the fang, and then cauterizing the duct by means of a needle or wire, heated to redness; when for experimental purposes the gland may be stimulated, and the virus drawn off by means of a fine-pointed syringe.
In what the venom consists more than has already been described, we are not permitted to know. It dries under exposure to air in small scales, is soluble in water but not in alcohol, slightly reddens litmus paper, and long retains its noxious properties. It has no acrid or burning taste, and but little if any odor; the tongue pronounces it inoffensive, and the mucous surface of the alimentary track is proof against it, and it has been swallowed in considerable quantities without deleterious result--all the poison that could be extracted from a half dozen of the largest and most virile reptiles was powerless in any way to affect an unfledged bird when poured into its open beak. Chemistry is not only powerless to solve the enigma of its action, and the microscope to detect its presence, but pathology is at fault to explain the reason of its deadly effect; and all that we know is that when introduced even in most minute quantities into an open wound, the blood is dissolved, so to speak, and the stream of life paralyzed with an almost incredible rapidity. Without test or antidote, terror has led to blind, fanatical empiricism, necessarily attended with no little injury in the search for specifics, and it may be reasonably asserted that no substance can be named so inert and worthless as not to have been recommended, or so disgusting as not to have been employed; nor is any practice too absurd to find favor and adherents even among the most enlightened of the medical profession, who have rung all the changes of the therapeutical gamut from serpentaria[3] and boneset to guaco, cimicifugia, and _Aristolochia India_ to curare, alum, chalk, and mercury to arsenic; and in the way of surgical dressings and appliances everything from poultices of human fæces,[4] burying the part bitten in fresh earth,[5] or thrusting the member or entire person into the entrails of living animals, to cupping, ligatures, escharotics, and the moxa.
[Footnote 3: Serpentaria derives its name from its supposed
antidotal properties, and guaco and _Aristolochia India_ enjoyed
widely heralded but rapidly fleeting popularity in the two Indias
for a season. Tanjore pill (black pepper and arsenic) is still
extensively lauded in districts whose serpents possess little
vitality, but is every way inferior to iodine.]
[Footnote 4: A Chinese remedy--as might be imagined.]
[Footnote 5: Still extensively practiced, the first in Michigan,
the latter in Missouri and Arkansas, and inasmuch as one is
cooling and soothing, and the other slightly provocative of
perspiration in the part, are not altogether devoid of
plausibility.]
Although the wounds of venomous serpents are frequently attended with fatal results, such are not necessarily invariable. There are times and seasons when all reptiles are sluggish and inactive, and when they inflict comparatively trifling injuries; and the poison is much less virulent at certain periods than others--during chilling weather for instance, or when exhausted by repeated bites in securing sustenance. Young and small serpents, too, are less virile than large and more aged specimens, and it has likewise been observed that death is more apt to follow when the poison is received at the beginning or during the continuance of the heated term.
The action of the venom is commonly so swift that its effects are manifested almost immediately after inoculation, being at once conveyed by the circulatory system to the great nervous centers of the body, resulting in rapid paralysis of such organs as are supplied with motive power from these sources; its physiological and toxicological realizations being more or less speedy accordingly as it is applied near or remote from these centers, or infused into the capillary or the venous circulation. Usually, too, an unfortunate experiences, perhaps instantaneously, an intense burning pain in the member lacerated, which is succeeded by vertigo, nausea, retching, fainting, coldness, and collapse; the part bitten swells, becomes discolored, or spotted over its surface with livid blotches, that may, ultimately, extend to the greater portion of the body, while the poison appears to effect a greater or less disorganization of the blood, not by coagulating its fibrine as Fontana surmised, but in dissolving, attenuating, and altering the form of its corpuscles, whose integrity is so essential to life, causing them to adhere to one another, and to the walls of the vessels by which they are conveyed; being no longer able to traverse the capillaries, oedema is produced, followed by the peculiar livid blush. Shakespeare would appear to have had intuitive perception of the nature of such subtle poison, when he caused the ghost to describe to Hamlet
"The leprous distillment whose effect
Bears such an enmity to the blood of man
That swift as quicksilver, it courses through
The natural gates and alleys of the body
And with sudden vigor it doth posset
And curd like eager droppings into milk,
The thin and wholesome blood: so did it mine
And a most instant tetter marked about
Most lazar like, with vile and loathsome crust
All my smooth body."
It is not to be supposed, however, that all or even a major portion of the blood disks require to be changed or destroyed to produce a fatal result, since death may supervene long before such a consummation can be realized. It is the capillary circulation that suffers chiefly, since the very size and caliber of the heart cavities and trunk vessels afford them comparative immunity. But of the greatly dissolved and disorganized condition of the blood that may occur secondarily, we have evidences in the passive hæmorrhages that attack those that have recovered from the immediate effects of serpent poisoning, following or coincident with subsidence of swelling and induration; and, as with scurvy, bleeding may occur from the mouth, throat, lungs, nose, and bowels, or from ulcerated surfaces and superficial wounds, or all together, defying all styptics and hæmastatics. In a case occurring under the care of Dr. David Brainerd in the Illinois General Hospital,[6] blood flowed from the gums in great profusion, and on examination was found destitute, even under the microscope, of the faintest indications of fibrine--the principle upon which coagulation depends. The breath, moreover, gave most sickening exhalations, indicative of decomposition, producing serious illness in those exposed for any length of time to its influence. We may add, among other sequelæ, aside from death produced through primary and secondary effects, paralysis, loss of nerve power, impotence, hæmorrhage, even mortification or gangrene.
[Footnote 6: _Medical Independent_, 1855.]
The failure in myotic power of the heart and in the muscles of respiration through reflex influence of par vagum and great sympathetic nerves, whereby pulmonary circulation is impeded, are among the earliest of phenomena. Breathing becoming retarded and laborious, the necessary supply of oxygen is no longer received, and blood still venous, in that it is not relieved of its carbon, is returned through the arteries, whereby the capillaries of the brain are gorged with a doubly poisoned circulation, poisoned by both venom and carbon. In this we have ample cause for the attending train of symptoms that, beginning with drowsiness, rapidly passes into stupor followed by profound coma and ultimate dissolution--marked evidence of the fact that a chemical agent or poison may produce a mechanical disease; and autopsical research reveals absolutely nothing save the general disorganization of blood corpuscles, as already noted.
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Scientific American Supplement, No. 421, January 26, 1884Chapter IX: MISCELLANEOUS.--Spanish Fisheries.--Noticeable objects (2)
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