问题1.为以下每个方程式写两个解决方案:
(i)3x + 4y = 7
(ii)x = 6年
(iii)x + πy = 4
(iv)2/3 x-y = 4
解决方案:
(i) 3x + 4y = 7
Substituting x =1
We get,
3×1 + 4y = 7
4y = 7 − 3
4y = 4
y = 1
Therefore, if x = 1, then y =1, is the solution of 3x + 4y = 7
Substituting x = 2
We get,
3×2 + 4y = 7
6 + 4y = 7
4y = 7 − 6
y = 1
4
Therefore, if x = 2, then y = 1 , is the solution of 3x + 4y = 7
4
(ii) x = 6y
Substituting x =0
We get,
6y = 0
y = 0
Therefore, if x = 0, then y =0, is the solution of x = 6y
Substituting x = 6
We get,
6 = 6y
y = 6
6
y = 1
Therefore, if x = 6, then y =1, is the solution of x = 6y
(iii) x + πy = 4
Substituting x = 0
We get,
πy = 4
y = 4
π
Therefore, if x = 0, then y = 4 is the solution of x + πy = 4
π
Substituting y =0
We get,
x + 0 = 4
x = 4
Therefore, if y = 0, then x = 4 is the solution of x + πy = 4
(iv) 2 x − y = 4
3
Substituting x = 0
We get,
0 − y = 4
y = −4
Therefore, if x = 0, then y = −4 is the solution of 2 x − y = 4
3
Substituting x =3
We get,
2 ×3 − y = 4
3
2 − y = 4
y = 4 − 2
y = −2
Therefore, if x = 3, then y = −2 is the solution of 2 x − y = 4
3
问题2。针对以下每个方程式,写出x = 0,y = a和x = b,y = 0形式的两个解:
(i)5x-2y = 10
(ii)−4x + 3y = 12
(iii)2x + 3y = 24
解决方案:
(i) 5x − 2y = 10
Substituting x =0
We get,
5×0 − 2y = 10
−2y = 10
−y = 10
2
y = −5
Therefore, if x = 0, then y = −5 is the solution of 5x − 2y = 10
Substituting y = 0
We get,
5x − 2×0 = 10
5x = 10
x = 10
5
x = 2
Therefore, if y = 0, then x = 2 is the solution of 5x − 2y = 10
(ii) −4x + 3y = 12
Substituting x = 0
We get,
−4×0 + 3y = 12
3y = 12
y = 12
3
y = 4
Therefore, if x = 0, then y = 4 is the solution of −4x + 3y = 12
Substituting y = 0
−4x + 3 x 0 = 12
– 4x = 12
x = −3
Therefore, if y = 0 then x = −3 is a solution of −4x + 3y = 12
(iii) 2x + 3y = 24
Substituting x = 0
2×0 + 3y = 24
3y =24
y = 8
Therefore, if x = 0 then y = 8 is a solution of 2x+ 3y = 24
Substituting y = 0
2x + 3×0 = 24
2x = 24
x =12
Therefore, if y = 0 then x = 12 is a solution of 2x + 3y = 24
问题3.检查以下哪项是方程2x – y = 6的解,而哪些不是:
(i)(3,0)
(ii)(0、6)
(iii)(2,-2)
(iv)(√3,0)
(v)( 1 ,-5)
2个
解决方案:
(i) (3, 0)
Substitute x = 3 and y = 0 in 2x – y = 6
2×3 – 0 = 6
6 = 6 {L.H.S. = R.H.S.}
Therefore, (3,0) is a solution of 2x – y = 6.
(ii) (0, 6)
Substitute
x = 0 and y = 6 in 2x – y = 6
2×0 – 6 = 6
–6 = 6 {L.H.S. ≠ R.H.S.}
Therefore, (0, 6) is not a solution of 2x – y = 6.
(iii) (2, -2)
Substitute x = 0 and y = 6 in 2x – y = 6
2×2 – (–2) = 6
4 + 2 = 6
6 = 6 {L.H.S. = R.H.S.}
Therefore, (2,-2) is a solution of 2x – y = 6.
(iv) (√3, 0)
Substitute x = √3 and y = 0 in 2x – y = 6
2×√3 – 0 = 6
2 √3 = 6 {L.H.S. ≠ R.H.S.}
Therefore, (√3, 0) is not a solution of 2x – y = 6.
(v) (1/2, -5)
Substitute x = 1 and y = -5 in 2x – y = 6
2
2 × 1 – (– 5) = 6
2
1 + 5 = 6
6 = 6 {L.H.S. = R.H.S.}
Therefore, ( 1 , –5) is a solution of 2x – y = 6.
2
问题4.如果x = -1,y = 2是方程3x + 4y = k的解,则求出k的值。
解决方案:
Given,
3 x + 4 y = k
(–1, 2) is the solution of 3x + 4y = k.
Substituting x = –1 and y = 2 in 3x + 4y = k,
We get,
3×(– 1 ) + 4×2 = k
–3 + 8 = k
k = 5
Therefore, k is 5.
问题5.如果x = –λ且y = 5是方程x + 4y – 7 = 0的解,则求λ的值
2个
解决方案:
Given,
(-λ, 5 ) is a solution of equation 3x + 4y = k
2
Substituting x = – λ and y = 5 in x + 4y – 7 = 0.
2
We get,
–λ + 4 × 5 – 7 = 0
2
–λ + 10 – 7 = 0
–λ = –3
λ = 3
问题6.如果x = 2α + 1且y = α– 1是方程2x – 3y + 5 = 0的解,则求出α的值。
解决方案:
Given,
(2 α + 1, α – 1 ) is the solution of equation 2x – 3y + 5 = 0.
Substituting x = 2 α + 1 and y = α – 1 in 2x – 3y + 5 = 0.
We get,
2×(2 α + 1) – 3 × (α – 1 ) + 5 = 0
4α + 2 – 3α + 3 + 5 = 0
α + 10 = 0
α = –10
Therefore, the value of α is –10.
问题7.如果x = 1且y = 6是方程8x – ay + a 2 = 0的解,请找到a的值。
解决方案:
Given,
(1 , 6) is a solution of equation 8x – ay + a2 = 0
Substituting x = 1 and y = 6 in 8x – ay + a2 = 0.
We get,
8 × 1 – a × 6 + a2 = 0
a2 – 6a + 8 = 0 (quadratic equation)
Using quadratic factorization
a2 – 4a – 2a + 8 = 0
a × (a – 4) – 2 × (a – 4) = 0
(a – 2) (a – 4)= 0
a = 2, 4
Therefore, the values of a are 2 and 4.