ABCD AB × AD: hence, the area of a rectangle is equal to the product of its base and altitude; that is, the number of superficial units in the rectangle, is equal to the product of the number of linear units in its base by the number of linear units in its altitude. Scholium 2. The product of two lines is sometimes called the rectangle of the lines, because the product is equal to the area of a rectangle constructed with the lines as sides. PROPOSITION V. THEOREM. The area of a parallelogram is equal to the product of its base and altitude. . Let ABCD be a parallelogram, AB its base, and BE its altitude: then will the area of ABCD be equal to AB × BE. rectangle For, construct the ABEF, having the same base and altitude: then will the rectangle be equal to the parallelogram (P. I.); but the area of the rectangle is equal to AB × BE: F D E C hence, the area of the parallelogram is also equal to AB X BE; which was to be proved. Cor. Parallelograms are to each other as the products of their bases and altitudes. If their altitudes are equal, they are to each other as their bases. If their bases are equal, they are to each other as their altitudes., 247176 PROPOSITION VI. THEOREM. The area of a triangle is equal to half the product of its base and altitude. Let ABC be a triangle, BC its base, and AD its anitude: then will the area of the triangle be equal to BC × AD. E For, from C, draw CE paralle to BA, and from A, draw E parallel to CB. The area of the parallelogram BCEA is BC AD (P. V.); but the triangle ABC is half of the parallelogram BCEA: hence, its area is equal to BC × AD; which was to be proved. В D Cor. 1. Triangles are to each other, as the products of their bases and altitudes (B. II., P. VII.). If their altitudes are oral, they are to each other as their bases. If their bases are equal, they are to each other as their altitudes. Cor. 2. The area of a triangle is equal to half the product of its perimeter and the radius of the inscribed circle. For, let DEF be a circle inscribed in the triangle ABC. Draw OD, OE, and OF, to the points of contact, and OA, OB, and OC, to the verti B E D area of OAC will be equal to 10Fx AC; and the area of OAB will be equal to 10D × AB ; and since OD, OE, and OF, are equal, the area of the triangle ABC (A. 9), will be equal to OD (AB + BC + CA). The area of a trapezoid is equal to the product of its alti tude and half the sum of its parallel sides. Let ABCD be a trapezoid, DE its altitude, and AB and DC its parallel sides: then will its area be equal to DE × (AB + DC). For, draw the diagonal AC, forming the triangles ABC and ACD. The altitude of each of these triangles is equal to DE The area of ABC is equal to AB × DE (P. D B VI.); the area of ACD is equal to DC x DE: hence, the area of the trapezoid, which is the The square described on the sum of two lines is equal to the sum of the squares described on the lines, increased by twice the rectangle of the lines. be two lines, Let AB and BC and AC their sum: then will AC2 = AB2 + BC2 + 2AB × BC. On AC, construct the square ACDE; from B, draw BH par E H D I F G allel to AE; lay off AF equal to AB, and from F draw FG parallel to AC: then will IG and IH be each equal to BC; and IB and IF, to AB. The square ACDE is composed of four parts. The part ABIF is a square described on AB; the part IGDH is equal to a square described on BC; the part BCGI is equal to the rectangle of AB and BC; and the part FIHE is also equal to the rectangle of AB and BC and : E A B because the whole is equal to the sum of all its parts (A. 9), we have, AC2 = AB2 + BC2 + 2AB × BC ; which was to be proved. Cor. If the lines AB and BC are equal, the four parts of the square on AC square described on a line is described on half the line. will also be equal: hence, the equal to four times the square The square described on the difference of two lines is equal to the sum of the squares described on the lines, dimin ished by twice, the rectangle of the lines. Let AB and BC be two lines, and AC their difference then will On AB construct the square ABIF; from C draw CG parallel to BI; lay off CD equal to AC, and from D draw DK parallel and equal to BA; complete the square EFLK: then will EK be equal to BC, and EFLK will be equal to the square of BC. The whole figure ABILKE is L F G I equal to the sum of the squares described on AB and BC. The part CBIG is equal to the rectangle of AB and BC; the part DGLK is also equal to the rect angle of AB and BC. If from the whole figure ABILKE, the two parts CBIG and DGLK be taken, there will remain the part which is equal to the square of AC: hence, ACDE, The rectangle contained by the sum and difference of two lines, is equal to the difference of their squares. Let AB and BC be two lines, of which AB is the greater then will (AB + BC) (AB – BC) AB2 - BC2. On AB, construct the square ABIF; prolong AB, and make BK equal to BC; then will AK be equal to AB+ BC; from K, draw KL parallel to BI, and make it equal to AC; draw LE parallel to KA, and CG parallel to BI: then DG is equal to == F G I H E D A P BC, and the figure DHIG is equal to the square on BC, and EDGF is equal to BKLH. |