问题11.在任何ΔABC中,证明以下内容:a cos A + b cos B + c cos C = 2b sin A sinC。
解决方案:
According to sine rule in ΔABC,
a/sin A = b/sin B = c/sin C = k (constant)
L.H.S. = a cos A + b cos B + c cos C
= k sin A cos A + k sin B cos B + k sin C cos C
= (k/2) [2 sin A cos A + 2 sin B cos B + 2 sin C cos C]
= (k/2) [sin 2A + sin 2B + sin 2C]
= (k/2) [sin 2A + sin 2B + sin 2C]
= (k/2) [sin(A+B) cos(A–B) + sin C cos C]
= (k/2) [sin(π–C) cos(A–B) + sin C cos(π–(A+B))]
= (k/2) [sin C cos(A–B) + sin C cos(A+B)]
= k sin C [2 sin A sin B]
= 2 (sin A) (k sin B) (sin C)
= 2b sin A sin C
= R.H.S.
Hence, proved.
问题12.证明a 2 =(b + c) 2 – 4bc cos 2 A / 2
解决方案:
According to Cosine rule,
=> cos A = (b2 + c2 – a2)/2bc
=> 2bc cos A = b2 + c2 – a2
=> a2 = b2 + c2 – 2bc cos A
=> a2 = b2 + c2 – 2bc (2cos2A/2 – 1)
=> a2 = b2 + c2 – 4bc cos2A/2 + 2bc
=> a2 = (b+c)2 – 4bc cos2A/2
Hence, proved.
问题13.证明4(bc cos 2 A / 2 + ac cos 2 B / 2 + ab cos 2 C / 2)=(a + b + c) 2
解决方案:
According to Cosine rule,
cos A = (b2 + c2 – a2)/2bc . . . . (1)
cos B = (a2 + c2 – b2)/2ac . . . . (2)
cos C = (a2 + b2 – c2)/2ab . . . . (3)
We have,
L.H.S. = 4(bc cos2A/2 + ac cos2B/2 + ab cos2C/2)
= 2(2bc cos2A/2 + 2ac cos2B/2 + 2ab cos2C/2)
= 2[bc(1–cos A) + ac(1–cos B) + ab(1–cos C)]
= 2bc – 2bc cos A + 2ac – 2ac cos B + 2ab – 2ab cos C
Using (1), (2) and (3), we get,
L.H.S. = 2bc – [b2 + c2 – a2] + 2ac – [a2 + c2 – b2] + 2ab – [a2 + b2 – c2]
= 2bc – b2 – c2 + a2 + 2ac – a2 – c2 + b2 + 2ab – a2 – b2 + c2
= a2 + b2 + c2 + 2ab + 2bc + 2ca
= (a + b + c)2
= R.H.S.
Hence, proved.
问题14:在ΔABC中,证明sin 3 A cos(B–C)+ sin 3 B cos(C–A)+ sin 3 C cos(A–B)= 3 sinA sinB sin C
解决方案:
We have,
L.H.S. = sin3A cos(B–C) + sin3B cos(C–A)+ sin3C cos(A–B)
= sin2A sin A cos(B–C) + sin2B sin B cos(C–A)+ sin2C sin C cos(A–B)
= sin2A sin(π–(B+C)) cos(B–C) + sin2B sin(π–(A+C)) cos(C–A)+ sin2C sin(π–(A+B)) cos(A–B)
= sin2A sin(B+C) cos(B–C) + sin2B sin(A+C) cos(C–A)+ sin2C sin(A+B) cos(A–B)
= sin2A [sin2B + sin2C] + sin2B [sin2A + sin2C]+ sin2C [sin2A + sin2B]
= sin2A [2sinB cosB + 2sinC cosC] + sin2B [2sinA cosA+ 2sinC cosC]+ sin2C [2sinA cosA + 2sinB cosB]
= 2sin2A sinB cosB + 2sin2A sinC cosC + 2sin2B sinA cosA + 2sin2B sinC cosC + 2sin2C sinA cosA + 2sin2C sinB cosB
According to sine rule in ΔABC,
sin A/a = sin B/b = sin C/c = k (constant)
So, L.H.S. becomes,
= 2a2k2 (bk) (cosB) + 2a2k2 (ck) (cosC) + 2b2k2 (ak) (cosA) + 2b2k2 (ck) (cosC) + 2c2k2 (ak) (cosA) + 2c2k2 (bk) cosB
= abk3 (a cosB + b cosA) + ack3 (a cosC + c cosA) + bck3 (c cosB + b cosC)
= abck3 + abck3 + abck3
= 3abck3
= 3 (ak) (bk) (ck)
= 3 sin A sin B sin C
= R.H.S.
Hence, proved.
问题15.在任何ΔABC中,(b + c)/ 12 =(c + a)/ 13 =(a + b)/ 15,证明(cosA)/ 2 =(cosB)/ 7 =(cosC)/ 11。
解决方案:
We are given,
(b+c)/12 = (c+a)/13 = (a+b)/15 = k (say)
=> b + c = 12k . . . . (1)
=> c + a = 13k . . . . (2)
=> a + b = 15k . . . . (3)
Adding (1), (2) and (3), we get,
=> b + c + c + a + a + b = 12k + 13k + 15k
=> 2a + 2b + 2c = 40k
=> a + b + c = 20k . . . . (4)
From (1), (2), (3) and (4), we get,
=> a = 8k, b = 7k and c = 5k
According to Cosine formula,
cos A = (b2 + c2 – a2)/2bc
= (49k2 + 25k2 – 64k2)/70k2
= 10/70
= 1/7
cos B = (a2 + c2 – b2)/2ac
= (64k2 + 25k2 – 49k2)/80k2
= 40/80
= 1/2
cos C = (a2 + b2 – c2)/2ab
= (64k2 + 49k2 – 25k2)/112k2
= 88/112
= 11/14
Hence, cosA : cosB : cosC = (1/7) : (1/2) : (11/14) = 2 : 7 : 11
=> (cosA)/2 = (cosB)/7 = (cosC)/11
Hence, proved.
问题16.在ΔABC中,如果∠B= 60 o ,则证明(a + b + c)(a – b + c)= 3ca。
解决方案:
We have, ∠B = 60o
According to Cosine formula,
cosB = (a2 + c2 – b2)/2ac
=> cos 60o = (a2 + c2 – b2)/2ac
=> 1/2 = (a2 + c2 – b2)/2ac
=> a2 + c2 – b2 = ac . . . . (1)
Now L.H.S. = (a + b + c) (a – b + c)
= a2 – ab + ac + ab – b2 + bc + ca – bc + c2
= a2 + c2 – b2 + 2ac
= ac + 2ac
= 3ac
= R.H.S.
Hence, proved.
问题17.如果在ΔABC中,cos 2 A + cos 2 B + cos 2 C = 1,则证明三角形是直角的。
解决方案:
We are given,
=> cos2A + cos2B + cos2C = 1
=> cos2A + cos2B = 1 – cos2C
=> cos2A + cos2B = sin2C
=> cos2A = sin2C − cos2B
=> −cos(B+C) cos(B−C) = cos2A
=> −cos(π−A) cos(B−C) = cos2A
=> cos2A − cosA cos(B−C) = 0
=> cosA (cosA − cos(B−C)) = 0
=> cosA [cos(π−(B+C)) − cos(B−C)] = 0
=> cosA [−cos(B+C) − cos(B−C)] = 0
=> cosA [−2 cosB cosC] = 0
=> cosA cos B cos C = 0
=> cosA = 0 or cosB = 0 or cosC = 0
=> A = 90o or B = 90o or C = 90o
Therefore, the triangle is right-angled.
问题18:在ΔABC中,如果cosC = sinA / 2sinB,则证明三角形是等腰的。
解决方案:
Here, we are given
=> cosC = sinA/2sinB
=> 2 sinB cosC = sinA
=> 2 (kb) [(a2+b2−c2)/2ab] = ka
=> a2 + b2 − c2 = a2
=> b2 = c2
=> b = c
Therefore, the triangle is isosceles.
问题19:两艘船同时离开一个港口。一个人在N38 o E方向上以24 km / hr的速度行驶,其他人在S52 o E方向上以32 km / hr的速度行驶。在3小时结束时找出两艘船之间的距离。
解决方案:
Let A be the point from where ships leave. AB is the distance travelled by one and AC is the distance travelled by the second in 3 hours.
We have to find BC, the distance between the ships at the end of 3 hours. Here,
AB = 3(24) = 72 km and AC = 3(32) = 96 km.
Using Cosine formula in ΔABC, we get,
BC2 = AB2 + AC2 + 2 (AB) (AC) cos900
BC2 = 722 + 962
BC2 = 14400
BC = 120 km
Therefore, the distance between the ships at the end of 3 hours is 120 km.