Patterson v. M'Causland
Opinion of the Court
This case standing
The evidence here relied on to contradict and discredit the testimony of the witnesses who have been produced tó prove the marking of this black oak as a boundary, is founded on a presumption, derived from what is alleged to be the regular course of nature in the growth of forest trees. 1 have met with no instance, in the books, in which proof of this kind had been received and respected in a court of justice.
A presumption is an inference as to the existence of a fact, not actually known, arising from its usual or necessary connection with others which are known,
The law respects the regular course of nature in every way; and, consequently, in all eases, in so far as the course of nature is known, all such facts, as well in regard to the revolution of the seasons, as to animals and vegetables ; as the mating of birds, and their co-operation in rearing their young, the blooming time of roses, and the like, are received as being in themselves, entirely trustworthy; or as facts from which inferences as to the truth of other facts may be safely drawn.
Little seems to be known as to the duration of the lives of trees of any kind; and yet, as a man may have an inheritance in fee simple, in lands as long as such tree shall grow;
By the common law of England, where the owner of a forest, in which others had a right of common for their cattle, felled the timber trees, he was allowed to inclose it so as to exclude such commonable cattle for three years thereafter, to prevent them from browzing and eating down the young spring before it had grown up beyond their reach; which term of inclosure was, by a statute passed in the year 1482, extended to seven years, for the more effectual preservation of the young growth;
I do not understand, however, that any of these historical accounts of the plantations of forest trees have, as yet, covered as much as the lapse of an hundred years. They make no mention of the expectation of life that may be attributed to any such trees ; nor do they speak of the average term of the existence of any of them. It has been said that in England the oak attains an age, in some instances, of more than a thousand years ; but that the beech, the ash, and the sycamore, (acer pseudo platanus,) most likely never live half so long. But all plants, as well as all animals, are alike subject to the inexorable law of mortality, as is sufficiently shewn by the bountiful provision made by nature for their reproduction. Hence, and from the well known fact, that all plants are subject to diseases, it necessarily follows, that all trees, like animals, have an average and ultimate term of existence beyond which their lives are rarely extended, or cannot be prolonged.
On considering the slow growth of most forest trees; and on observing in all ancient forests how few appearances there are of any changes or renewals, there is much reason to believe, that the most durable of forest trees have an almost indefinite length of life.
All forest trees have a range of climate within which they flourish best, and far beyond which they will not grow, or cannot be propagated; and even within the range of their appropriate climate, they are all more or less affected by the soil and situation in which they happen to be rooted. As the great Parent, nature, rolls round the seasons of the changeful year, all of them assume different external appearances in succession. That they do not put forth their foliage or bloom in winter is obvious; but how they are, in other respects and internally, affected by the revolutions of the seasons, seems to be a mystery. Yet an opinion has become very prevalent, that the structure of their wood, visible on dissection, affords evidence of the periodical progress of nature in effecting their enlargement.
‘Wood in vegetable anatomy, is that more or less hard and compact substance, rvhich makes up the bulk of the trunk and branches of a tree or shrub, and is concealed from view by the bark. When cut transversely, the wood is found to consist of numerous concentric layers, very distinct in the fir, and in trees of cold or temperate countries in general; less so in those appropriated to a tropical climate. The external part of each circular layer being much the most hard and compact, often with somewhat of a horny appearance, distinguishes the limits of each. Scarcely any two layers of the same tree are precisely alike, in the proportion which this compact part bears to the rest; nor does any one layer exhibit a precise uniformity of diameter in its whole circle.’
The Linnaean hypothesis was, that the pith added a layer every year to the wood internally. But on its being observed, that many trees grew vigorously, the pith or a part of which had rotted so as to leave them almost entirely hollow, that hypothesis was abandoned as totally erroneous. And on its being discovered, that the food of a tree, after having been taken in by the root, and, some how, carried up and digested into sap by the leaves, was assimilated and added to the bulk of its trunk and limbs in layers immediately under its bark, the opposite hypothesis was adopted, that trees were increased in size by those external additions alone.
Hence it was, perhaps, that upon a more careful examination of the organs of vegetables, they were classed, in reference to the visible arrangement of those organs, into two great groups, the first called exogenous, because of their having the vascular tissue arranged in concentric cylinders around a common axis, the pith; and the second, endogenous, having this tissue disposed in bundles, and not in cylinders. In the first class, the tubes and woody fibre are arranged in concentric bands, having the cellular tissue, in part, packed in between them; and in part forming lines, called the medullary rays, cutting them at right angles, and radiating from the axis of the stem. Such stems increase by the regular addition of new layers on the outside of the old wood; and are thence termed exogenous stems, or growers outwardly, as the name imports. This is the structure of almost all the forest trees of our Union. In the second class, the tubes and woody fibre are disposed in bundles throughout the stem; the interstices being filled up with cellular tissue. The stems having this structure do not increase in diameter, after they are once fairly formed, but only in solidity. This they do by the addition of new bundles of tubes and woody fibre internally. Hence, they have received the name of endogenous or growers inwardly,
Then assuming that this was the only mode by which exogenous trees were enlarged, and because the sap flowed more freely and obviously in summer than in winter, it was affirmed, that the number of those concentric layers, counting from the surface to the centre, demonstrated the number of years the tree had been growing. But as has been seen, it is admitted, that in the wood of forest trees of the temperate zone, in which those concentric layers have been noticed, it has been observed, that each layer is composed of a great number of thinner and scarcely distinguishable ones, which in some cases assume a more or less conspicuous appearance than usual; in consequence of the fluctuations of the seasons, or accidental checks on the growth of the tree; as hard winters render the outside, or poms part of each circle, more decided ; while favourable summers make the circle itself altogether broader.
Hence it is evident, from what is thus stated by the advocates of this notion, of each layer’s being an evidence of a year’s growth, that it is founded upon the apparent effects of the revolution of the seasons in the temperate zone. But the roots of carrots, beets, &c., which are the growth of a single season; and indeed the roots of all perennial trees, as well those of the endogenous as of the exogenous class, are also formed of concentrical layers;
The conspicuous formation of successive layers of wood is, however, not only confined to trees of a particular class, but even among them the formation of such layers differs materially, according to their respective species, ages, and situation, when growing in their several appropriate climates. And yet a tree of one species engrafted upon the stock of another of the same species, will grow vigorously, producing fruit of a different kind, and wood of a very dissimilar appearance from that on which it grows. It is remarkable, that the branches of the resinous trees consist almost wholly of wood, of which the organization is even more perfect than in the body of the tree; the reverse is observed in trees with deciduous leaves.
There is, according to the law of England, not only a custom as to what may properly be regarded as timber;
But all trees, although standing within the general range of their appropriate climate, are very materially affected by the peculiar soil and situation in which they may happen to be rooted,
If it be true that trees are enlarged chiefly or only by the formation of successive concentrical layers, then it necessarily follows, that those layers, as the tree enlarges, must become wider as well as longer each year, so as to embrace the whole of its increased dimensions; and consequently the quantity of wood formed each year, supposing the several concentrical layers to be of the same
Yet it has been observed, that early in the spring, before any thing like a leaf has been put forth, the vine particularly, and some forest trees, the sugar maple, &c. on a transverse incision being made into their wood pour forth a quantity of sap, which is always seen to proceed from the wood, and not from any layer near the bark; which shews that the vascular tissue of the stem, by some supposed to be mere dead wood, contributes largely, if not altogether, to supplying the plant with that portion of its nutriment which it certainly does, and must in a very great degree derive from the earth. And it is not uncommon to see forest trees, which in the winter or summer had been belted by a chop made all round into the wood of the trunk, near the ground, put out their usual amount of foliage in the following spring and sustain themselves during the year; which proves that there is a flow of sap through the wood of the trunk which contributes largely to the support of the vitality of the plant. In corroboration of this, it has been also observed, that besides the ordinary longitudinal vessels, there is what is called the silver grain, or medullary rays, consisting of numerous thin plates radiating from the, pith to the circumference, intersecting the concentrical layers, and visible in almost all kinds of wood; in the oak every tube is touched by them at short distances, and slightly diverted from its course. These plates, it is supposed, perform some important functions in the circulation of the sap.
The eminent botanist who has given us the most full, accurate, and instructive account of all our forest trees, appears to have frequently adverted to this general opinion, that the concentrical layers in the wood of such trees afforded evidence as well of their progress in vegetation as of their age. In speaking of the white cedar, (cupressus thyoides,) he says, thatc the concentrical circles are always perfectly distinct, even in stocks of considerable size; but their number and compactness prove that the tree arrives at its full growth only after a long lapse of years. I have counted two hundred and seventy-seven annual layers in a trunk twenty-one inches in diameter, and five feet from the ground; and forty-seven in a plant only eight inches thick at the surface, which proved it
The inferences deducible from the apparent number of concentrical layers found in the trunk of a tree, upon an inspection of a transverse section of it, is, however, a kind of evidence which can only be obtained by a posthumous examination. Such examination of the bodies of animals are common, and have often been found very instructive in relation to the purposes for which they have been made; but it is believed such an examination never was made with a view to ascertain the age of the animal, or when it would attain such a maturity as would give the greatest value and utility to its body, or that of similar animals. Post mortem examinations of the bodies of animals, are often made with a view to ascertain points of comparative anatomy; to observe the organization of the body, so as thereby the better to understand how living creatures of the same species should be treated in health, or in disease; or to ascertain what may have been the immediate
But assuming it to be true, that the number of the concentrical rings observed in the trunk of a tree, do always exactly correspond with the number of years of its age, then at least one important step would seem to have been made by such post mortem examinations towards ascertaining the ages of trees in general; as for example, if by the felling of an oak of thirty-four inches in diameter, it should be found to have two hundred concentric layers ; and, consequently, to be two hundred years old; and so to have increased in diameter at the rate of one-twelfth part of an inch annually; and then, assuming it to be true, that all the immediately adjacent and similarly situated oaks had increased in diameter at the same average annual rate; it follows, that the' age of every living oak in a similar soil and exposure, might from the measurement of its circumference, be exactly ascertained by a post mortem examination of any one, and so of every other species of trees. Let us follow out this hypothesis, and see to what it will lead.
It has been found, that a larch tree, in England, will, under favourable circumstances, increase, until fifty years of age, at the rate of half an inch annually in diameter; and that some elms, planted in France in the year 1580, if what is said of their circumference be correct, had increased at the same rate in diameter until two hundred and forty years of age.
The witnesses testify, that this chop mark was shewn as having been made in the year 1791, now thirty-nine years ago, in accordance with which, if the hypothesis that each concentrical layer denotes the lapse of a year, be correct, there should have been found that number of concentrical layers; but there are no more than twelve; and, consequently, the testimony of the witnesses, or the evidence derived from this hypothesis must be rejected. There is nothing whatever, in addition to this hypothesis, to impeach the credibility of the witnesses.
Rejecting this hypothesis, the testimony of the witnesses stands in all respects unimpeached, and the line must be carried to the black oak, as called for and proved; and, consequently, no vacancy is left between Jolly’s First Attempt, and Long Fought and Dear Bought, over which a resurvey from Litten’s Fancy, can be so extended as to embrace any part of M’ Causland’s First Attempt.
Whereupon it is Ordered, that the caveat of Robert M’Causland be sustained; that the caveat of Patterson &f Ellicott be overruled; and that Patterson &f Ellicott pay the costs of both caveats, to be taxed by the Register.
1 Stark. Evid. 23.
Co. Litt. 40, 92, 197; 1 Stark. Evid. 472, note; 4 Stark. Evid. 1244; The case of Swans, 7 Co. 89.
Co. Litt. 123, b. note; The King v. Luffe, 8 East. 193.
Doe v. Jesson, 6 East. 84; Doe v. Griffin, 15 East. 293; Doe v. Deakin, 6 Com. Law Rep. 476.
Richard Lifford’s case, 11 Co. 49; Ayres v. Falkland, 1 Ld. Raym. 326; Com. Dig. tit. Estates by grant, A. 6; 2 Blac. Com. 109.
2 Michaux Amer. Sylva, 57.
22 Ed. 4, c. 7; Sir Francis Barrington’s case, 8 Co. 271; 6 Jac. Law Dic. 450 v. Wood.
35 Hen. 8, c. 17; 13 Eliz. c. 12, F.N. B. 59; 2 Inst. 642; Bac. Abr. tit. Tythes, C.4; Richard Lifford’s case, 11 Co. 47; 2 Mich. Am. Sylva, 144.
Rees’ Cyclo. v. Plantation.
Rees’ Cyclo. v. Timber; Thompson’s Chem. b. 4, c. 2, s. 13, and c. 3, s. 6 ; Roget’s Animal and Vegetable Physiology, part 4.
Loudon, in his Arboretum Britannicum, states that the oldest oak in England is supposed to be the parliament oak, so called from the tradition of Edward I, holding a parliament under its branches in Clifton Park, belonging to the Duke of Portland, this park being the most ancient in the island. It was a park before the conquest, and seized as such by the conqueror. The tree is supposed to be fifteen hundred years old. The tallest oak in England was the property of the same nobleman ; it was called the duke's walking-stick, higher than Westminster Abbey, and stood till of late years. The largest oak in England is the Calthorpe oak, Yorkshire, measuring seventy-eight feet in circumference where the trunk meets the ground. The three shire oak, at Worksop, was so called from covering parts of Yorkshire, Nottingham, and Derby ; it had the greatest expanse of any recorded in this island, dropping over seven hundred and seventy-seven square, yards. The most productive, oak that of Gelond’s, in Monmouthshire, felled iri 1810. Its bark brought £200 And its timber £670, (about $4,000)
Roget Anim. and Veget. Physi. pt. 4, c. 3, note.
1 Virg. Stat. 126, 420, 520; 2 Burke’s His. Virg. 142.
2 Mich. Am. Sylva, 185.
2 Mich. Am. Sylva, 304.
2 Mich. Am. Sylva, 225.
2 Mich. Am. Svlva, 142.
Rees' Cyclo. v. Wood in Vegetable Anatomy.
Darwin’s Phytologia, 476.
‘The wood, which exists more or less abundantly, even in herbaceous stems, and which forms so large a portion of those of trees and shrubs, in the stem which we have selected for examination, consists of a single zone or layer, composed of tubes and woody fibre, disposed without any regular order, except that the latter is ■ the most abundant on the outside, next the bark. The second year of a plant’s growth, a new layer is formed outside of the first, and similar to it in every respect. The third year this process is repeated; and thus the stem increases in size, a new
‘Each layer, or to speak more accurately, each hollow cone of wood, is the result of a single year’s growth; it is evident, that the age of an exogen may be ascertained by counting the number of rings presented on a transverse section of the stem, made near its base. This may be done with great accuracy, in most trees of the temperate and cold climates, in which, in consequence of the periodical suspension of vegetation, the annual layers are distinctly marked; but in the case of trees of the torrid zone, where vegetation goes on throughout the year, this cannot be so readily done. In old trees, the rate of increase being very uniform, their age may be determined with considerable accuracy,by the inspection of a mere fragmento! the stem, the diameter of the whole stem from which it was taken being known. A rough estimate of the age of a tree, is sometimes made by dividing the semi-diameter of its base by the average increase of the species to which it belongs, that average being determined by previous observation. In these several ways, the ages of numerous very old trees have been determined. It should be remarked, however, that these determinations, except where they are based upon an actual counting of the rings presented by a transverse section of the trunk, cannot be regarded as any thing more than approximations to true age. A tree growing in peculiarly fertile ground, will enlarge much more rapidly than most other trees of the same species ; and of course, with a given diameter, will have a less number of zones than the average. In the case of a tree growing in peculiarly barren ground, just the opposite effect would ensue. An estimate of the age of the first, made by dividing its semi-diameter by the average thickness of the zones of that particular species, would give too great an age. An estimate of the age of the last, made by this same method, would give an age less than the true one.’
‘There is almost always a marked difference in colour and density, between old and recent Wood. The outer and more recent portions of the stem, have been called, in allusion to their colour, alburnum; and in allusion to their office, sap wood; the inner and older portions are termed the heart wood. After a few years, the colour of a layer of wood is changed, its density is increased, and it takes thereafter little part in the transmission of the sap. During the winter, it is true, it generally contains sap, but then this sap is rather deposited in it, than circulating through it. The change in colour and density, by which sap wood is converted into heart wood, is caused by the deposition of a solid matter, peculiar to each species, in the tissues of that part. This matter is, in most cases, soluble in nitric acid, and hence it is, that if a piece of heart wood he immersed in that acid, the colour is discharged, and the piece again assumes the appearance of sap wood. Where the matter deposited is of a resinous character as in the pines, it adds very much to the durability, and consequently, to the value of the heart wood. On this account, as well as on account of its greater solidity and strength, the heart wood is universally preferred to the sap wood, for use in the arts. As the layers of wood, in the course of a few years after their formation, cease to take any active part in the circulation of the sap, and, in time, become to all intents and purposes dead matter, it would naturally
‘Endogenous stems differ very much from exogenous ones in their structure. The characteristic differences are the arrangement of the tissues, and the manner of their growth. Besides this, endogens differ from exogens, in having neither pith, medullary rays, bark, or wood, properly so called, but consisting of a confused mass of woody bundles, imbeded in cellular tissue. In the stalk of the corn, (Zea mays,).which affords a good specimen of a stem constructed on the endogenous plan, we find an external conical integument, without liber, and bundles of woody matter, so arranged throughout the cellular tissue, as to be much more numerous and compact at the circumference, than towards the centre. In the stem of the garden asparagus, (asparagus officinalis,) the woody bundles are distributed Uniformly, throughout the stem, and so soft as scarcely to be recognized as woody matter. The same arrangement of the woody bundles, exists in the green brier, (smilax roiundifolia,) the only endogenous shrub common in Virginia. In the stems of grasses, which have been said to be the least endogenous of all endogenous stems, the structure is so modified as not to be at once evident. The peculiarity of these stems is, that they are hollow, except at the nodes, or joints, which are very compact discs, closing the stem entirely. They are, however, in every instance, at first solid, and become hollow in the course of their growth. In other respects, the stems of grass present no variation from the typical structure of endogens.’
‘The life of endogens, as well as their diameter, is limited by the nature of their rind. When the lateral growth of the stem has propeeded to a certain extent, the rind hardens, and the stem being, in this way, prevented from increasing in diameter, can only grow in length; and as the consequence, stems of this character are generally slender. The continual deposition of new matter, within the unyielding rind, finally produces a total solidification of the stem, and death follows as a necessary consequence. Thus the life of an endogenous stem is limited; for, unless destroyed by some external agency, it must die of old age. The individual, however, is seldom destroyed ; for, whilst the trunk is thus slowly perishing, the great accumulation of sap in the roots, causes the development of new shoots from the base of the stem, and these continue the life of the individual when the original trunk dies down to the ground. In this view, the life of endogenous trees is unlimited.’
‘ In the structure of exogenous stems, on the other hand, there is nothing to limit either their increase or duration ; they never die purely of old age, but when destroyed, are destroyed by some external agency. The central wood of exogens, it is true, dies in the course of time, but the death of the stem does not follow as a consequénce of this; for nothing is more common than to see a tree hollow, destroyed at its centre, whilst it is growing vigorously at its circumference. The sycamore, (platanus occidentalis,) furnishes a remarkable and well known illustration of this. The oldest trunks are generally all destroyed, excepting a few of the outer and recently formed layers, which prolong the existence of the individual/ — An Essay
i) Eaton’s Botanical Grammar, 18.
Roget Anim. and Veget. Physi. pt. 1, c. 1, s. 3.
Rees’ Cyclo. v. Monocotyledon, Palmae, and Wood; Roget Anim. and Veget. Physi. pt. 1, c. 1, s. 2.
2 Mich. Am. Sylva, 274.
2 Mich. Am. Sylva, 254, 268.
1 Mich. Am. Sylva, 92.
1 Mich. Am. Sylva, 104
1 Mich. Am. Sylva, 318.
2 Mich. Am, Sylva, 166.
1 Mich. Am. Sylva, 227.
Rees’ Cyclo. v. Timber.
Co. Litt. 53; Chandos v. Talbot, 2 P. Will. 606.
Aston v. Aston, 1 Ves. 264; Chamberlyne v. Dummer, 1 Bro. C. C. 166, S. C.; 3 Bro. C. C. 549, S. C.; 2 Dick. 600; Oxenden v. Compton, 2 Ves. jun., 70, 73: Hampton v. Hodges, 8 Ves. 105; Ex parte Phillips, 19 Ves. 119; Gower v. Eyer, Coop. Rep. 156; Bridges v. Stephens, 2 Swan, 159, note; Smythe v. Smythe, 2 Swan, 251.
2 Inst. 642; F. N. B. 59; Chamberlyne v. Dummer, 3 Bro. C. C. 549; Bac. Abr. tit. Waste, C. 2.
Essay on Vegetable Phyisology, by Armstrong, Prof. See. Washington College, Virg. chap. 7 and 19; The Farmers’ Register, by Ruffin, 7 vol. No. 4 and 8.
) 2 Mich. Am. Sylva, 130,226.
2 Mich. Am. Sylva, 293.
1 Mich. Am. Sylva, 302; 2 Mich. Am. Sylva, 295.
Roget Anim. and Veget. Physi. pt. 1, c. l, s. 3.
‘That the upward growth of the stem takes place altogether in the green shoot of each year, whilst the older portions of the stem undergo no change in dimensions, is proved by the following fact, known, X presume to all. When a name is cut upon the bark of the beech tree, (fagv,s sylvatica,) the tree may continue to grow until it has doubled its original height, hut the name will never he raised further from the ground than the point at which it was originally cut. This process is the same, both in exogens and endogens.’
‘Concerning the growth of the fibro-vascuiar system, i. e. the vascular tissue and woody fibre, there has been a great diversity of opinion among botanists. By far the greater part of the observations which have been made for the purpose of examining into this matter, have been made on exogenous plants ; to these, therefore, our attention must be principally directed. But yet it should be remarked, we can admit no explanation which does not apply to endogens, as well as to exogens. The origin of the fibro-vascuiar system is presumed to he the same in both cases; and so also its development, except in the single particular of its arrangement.’
‘There are certain facts respecting the production of the wood, which have been established by careful and oft repeated experiments. To these we will first attend. The first of these is, that the wood, or at least the material of which the wood is formed, is elaborated in the upper part of the plant, and sent downward; and not in the root, and sent upward. This has been established by such experiments as the following; early in the spring a light ligature was tied around a young branch, and in this condition the branch was suifered to remain for the season. On examining it, towards autumn, the part above the ligature, was found to have increased in size, whilst that below had remained unaltered. A ring of bark was removed from a growing stem of a young tree, when the wound commenced healing, the new woody matter was formed on the upper lip of the wound, and not on the lower. Second, the new wood is produced, either from the bark, or between the bark, and the wood of the last year, and not by that wood. This was proved by Du Hamel, in the following manner: having carefully introduced plates of tin foil, between the hark and wood of a growing tree, he suifered it to remain undisturbed for several years. On cutting across the stem, at the end of this time, he found, that the new layers of wood had been deposited on the outside of the tin foil, without in tho least
Ruffin on Calcarious Manures, chap. 12 and 13; Rees’ Cyclo. v. Circulation of Sap and Silver Grain; Thompson’s Chem. b. 4, c. 3, s. 3; Roget Anim. and Veget. Physi. pt. 1, c. 1, s. 3.
‘To illustrate the theory, that vegetables extract their matter chiefly from the atmosphere, and are of course a powerful vehicle for fixing and bestowing atmospherical manure on the earth, the following fact is circumstantially related, on account of its complete application and to expose it to investigation. Some years ago, a locust tree at Colonel Larkin Smith’s in the county of King and Queen, and state of Virginia, received an injury which made it necessary to cut away entirely the bark around its body for eight or ten inches, so that its bark above and below was wholly separated, without a cortical vein between. The wound was entirely covered with a close bandage of some other bark, which lapped beyond the edges of the wounded bark, above and below. And the tree was left to its fate. The plaster bark never grew to the tree, but the edges of the wounded bark, gradually approached each other under its shelter, and after several years met and united. By the time the wound was healed, the body of the tree above had became one-third larger than its
1 Mich. Am. Sylva, 59; 2 Mich. Am. Sylva, 359.
1 Mich. Am. Sylva, 330; 2 Mich. Am. Sylva, 289.
2 Mich. Am. Sylva, 11.
2 Mich. Am. Sylva, 341.
2 Mich. Am. Sylva, 318. ‘In a field of arid sandy loam, long under the usual cultivation, a piece of five or six acres was covered by a second growth of pines thirty-nine years old, as supposed from that number of rings being counted on some of the stumps. The largest trees were eighteen or twenty inches through.’ — Ruffin on Calcarious Manures, chap. 13.
2 Mich. Am. Sylva, 225. ‘ Several elm trees, said to have been planted in the public green at New Haven, in Connecticut, in the year 1688, were standing in the year 1838, and then measured about fourteen feet in circumference; which gives an increase of diameter at the rate of about the half of an inch annually.’ — The Globe newspaper, published, at Washington, 21st September, 1838.
1 Mich. Am. Sylva, 324.
1 Mich. Am. Sylva, 325.
1 Mich. Am. Sylva, 325.
‘Some instances of great size and extreme longevity in exogenous trees, where the statement can be relied upon, may not be uninteresting. The pirns lamberticma, a species of pine indigenous to northern California, probably attains a greater size than any other known tree. One specimen measured by Mr. Douglas, an English botanist, was two hundred and fifteen feet in height, fifty-seven feet nine inches in circumference, at a distance of three feet from the ground, and seventeen feet five inches at one hundred and thirty-four feet; thus giving as the solid contents of the trunk alone, about twelve hundred cubic feet. This was probably the largest single mass of timber ever measured by man. A sycamore growing near Marietta, Ohio, measures fifteen feet six inches in diameter; or, supposing it cylindrical, more than forty-five feet in circumference. There is said to be an oriental sycamore, growing near Constantinople, one hundred and fifty feet in circumference, with an internal cavity of eighty feet. The largest oak, known in England, was called Damony’s oak, in Dorsetshire, and was sixty-eight feet in circumference. With respect to the age of trees, it may be remarked, that an elm has been known to reach the age of three hundred and thirty-five years; an ivy four hundred and fifty; an orange six hundred and thirty; an olive about seven hundred; a cedar of Lebanon eight hundred; a white oak one thousand and eighty; and a yew between thirteen and fourteen hundred. De Candolle estimates the age of a Mexican cypress at six thousand years; but then his estimate was formed by dividing the semi-diameter of the trunk, by the average thickness of the layers of that species of' tree, and for reasons before mentioned, cannot be relied upon. If it were indeed so old, its young shoot must have been watered by the waves of the deluge. The
It would seem that the pirns lambertiana, here spoken of, attains as great a size in the valley of the Columbia river as in California, for Mr. Nuttall, in describing a bird called Audubon’s wood warbler, says: ‘ We may notice in this species as a habit, that, unlike many other birds of its tribe, it occasionally frequents trees, particularly the water oaks, and the lower branches of those gigantic firs, which attain not uncommonly a height of two hundred and forty feet.’ — The Birds of America, by Audubon, 2 vol. 27.
McCulloh’s Researches concerning the Aboriginal History of America, Appendix 2.
‘ The possession of the Wyoming Valley has not been an object of the white man’s ambition or cupidity alone. It has been the subject of controversy, and the fierce battle ground of various Indian tribes, within the white man’s time, but for his possession ; and from the remains of fortifications discovered there, so ancient, that the largest oaks and pines have struck root upon the ramparts, and in the entrenchments, it must once have been the seat of power; and perhaps of a splendid court, thronged by chivalry, and taste, and beauty — of a race of men far different from the Indians, known to us since the discovery of Columbus.’ — 1 Stone’s Life of Brant, 319.
Extract of a letter from John Locke, dated Cincinnati, 10th of September, 1838, describing a place called Fort Hill, the remains of an ancient fortification in Adams county, in the state of Ohio.
‘In the midst of the enclosed table is a pond, which, although it had recently
‘ There have,’ says Goldsmith, ‘ been two methods devised for determining the age of fishes, which are more ingenious than certain; the one is the circles of the scales, the other by the transverse section of the backbone. The first method is this. When the fish’s scale is examined, through a microscope, it will be found to consist of a number of circles, one circle within another, in some measure resembling those which appear upon the transverse section of a tree, and supposed to offer the same information. For, as in trees we can tell their age by the number of their circles, so in fishes we can tell theirs by the number of circles in every scale, reckoning one ring for every year of the animal’s existence. By this method, M. Buffon found a carp, whose scales he examined, to be not less than a hundred years old; a thing almost incredible, had we not several accounts in other authors which tend to confirm the discovery. Gesner brings us an instance of one of the same age ; and Albertus of one more than double that period. The age of the skate and ray, that want scales, may be known by the other method ; which is by separating the joints of the backbone, and then minutely observing the number of rings which the surface where it was joined exhibits. By this the fish’s age is said to be known; and perhaps with as much certainty as in the former instance. But how unsatisfactory soever these marks may be, we have no reason to doubt the great age of some fishes. Those that have ponds often know the oldest by their superior size.’ Goldsmith's Animated Nature, Hist. Fishes, chap. X.
Thompson’s Chem. b. 4, c. 3; 11 Westm. Revw. art. 8, p. 97 ; Vegetable Physiology and Arboriculture; Roget Auim. and Veget. Physi. pt. 1, c. 1, s. 2 and 3, pt. 2, c. 1.
‘We know the substances received by plants, and those which they reject; we determine by analysis the nature and the composition of the products which they form; but this is the utmost extent of our knowledge. All that passes within the plant is still a mystery, and belongs to the laws of vitality, which modify by their action those physical laws that are known to us.’ — Chapial’s Chemistry applied to Agriculture, c. 5, art. 6.
‘ Plants may be considered as a set of machines 'by which the common elements of nature are worked up into such a form as to be fit for the sustenance of animal life. We have already examined the structure of this machine; we will now direct our attention to the way in which it operates. In this department of the science, the difficulties which the philosopher has to overcome are of a very different character from those which may have embarrassed him in merely determining the organization of the plant. In the latter case, good microscopes, manual dexterity in preparing the parts for examination, and sufficient patience for his task, are sure to bring the observer to conclusions, the general truth of which is often susceptible of exact demonstration; but when we come to consider the causes of vital phenomena, and the manner in which they are brought about, we have obstacles of quite another kind to overcome. There is not a function of vegetable life
Case-law data current through December 31, 2025. Source: CourtListener bulk data.