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Weight of Anchors supplied to Boats.—42 ft. Launch, 120 ℔; 32 ft. Pinnace, 56 ℔; 30 ft. Cutter, 40 ℔; Jollyboats or Gigs, 30 ℔.
The stock is made of iron in anchors of 60 cwt. and under, and of wood for anchors above that weight. A wooden stock (fig. 8) is made of English oak in two pieces; they are scored over the square so as to leave a space of about 2 in. clear between them at the shank and to touch at the extremities. It is made parallel for about 16th of its length at the centre, tapering from thence to the extremities, the side next the shackle being kept straight and the remaining three sides tapered. The section at any part is square, the dimensions being 110th of the length at the centre and half of this at the ends. The two pieces are fastened together by four iron bolts near the shank, six or eight treenails, au11 six iron hoops at the ends. The hoops are driven on tightly while hot, so that the contraction of the iron in cooling may draw the parts closely together. A projection, termed a nut, shown by the dotted lines at a,a, in fig. 8, is left on the square to prevent any lateral motion of the stock. An iron stock is made in one forging, so as to pass through a hole a, punched in the square. The stock has a shoulder b, which fits against the side of the shank when it is in the position for action as in fig. 1, and it is secured by a key driven tightly on the other side of the shank. The advantage of this is, that the stock can be unshipped and laid along the shank for convenience of stowing, as shown in fig. 4. The weight of the stock, whether of wood or iron, is about 16th that of the anchor.
Fig. 4.—Iron stock unshipped for stowing.
The shank and each arm are forged under the steam-hammer in three pieces, and are then welded together at m and n, fig. 8. The welding is done by the "Hercules," which is a heavy iron ram placed over an anvil, so that it can be raised by steam power to a height of some 9 or 10 feet, and then let fall, being guided in its descent by three men, who hold rods attached to it. It is needless to say that the welding must be carefully done, as the whole strength of the anchor depends upon it.
To ensure safety, every anchor should be tested at a public testing house to 13d of its breaking strain. The anchor is held by a chain attached to the shackle, and the strain is applied to each arm separately at 13d of its length from the point. The proof of the anchor is that it must show no sign of fracture, and that if any deflection is caused by the strain, it must return very nearly to its original shape. A good anchor, after being deflected half an inch, will return to its former shape, leaving no permanent set.
The size of anchors for various ships has been determined by practice, but is based upon the theory that as the anchor is required to withstand the force brought upon the ship by the wind and tide, which would otherwise cause her to drift, its strength must be nearly proportional to her resistance. A result which will accord with sound practice may be obtained by calculating the resistance of a given ship at a speed or twelve knots, and taking this tor the working load of the anchor. The working load should be half the testing strain, and consequently 16th of the breaking strength.