Matemática, perguntado por mariarosinha321, 6 meses atrás

Olá boa noite vcs pode me ajuda com esse exercicio
Determine as raizes da funçaõ quadratica ,
a ) f ( x ) = x ² +2 x - 3

b) f ( x ) = x ²+ x - 12


chicksallschatz: 1) a= 1 b= 2 c= -3
chicksallschatz: B^2-4ac ----> 2^2 -4*-3 ----> 4+12= 16 -----> raiz de 16 = 4 ------> -b±4/2*a ------> -2±4/2 -----> 2/2= 1 e -6/2 = -3
mariarosinha321: obg
chicksallschatz: a= 1 b=1 c= -12. B^2-4ac. 1 -4*-12. 1+48= 49. Raiz de 49= 7. -b±7/2. -1±7/2 = 3 e -4

Soluções para a tarefa

Respondido por osextordq
0

a ) f ( x ) = x ² +2 x - 3

\frac{d}{dx}\left(x^2+2x-3\right)\\\\=\frac{d}{dx}\left(x^2\right)+\frac{d}{dx}\left(2x\right)-\frac{d}{dx}\left(3\right)\\\\simplifico \\\\=2x+2-0\\\\=2x+2

b) f ( x ) = x ²+ x - 12

\frac{d}{dx}\left(x^2+x-12\right)\\\\=\frac{d}{dx}\left(x^2\right)+\frac{d}{dx}\left(x\right)-\frac{d}{dx}\left(12\right)\\\\simplifico\\\\=2x+1-0\\\\=2x+1

Respondido por Gabiamaroh
0

a ) f ( x ) = x ² +2 x - 3

+2x-3=0

a=1

b=2

c=-3

formula do delta = b²-4.a.c

substituindo..

= 2²-4.1.(-3)

= 4 + 12

= 16

Agora usando Bhaskara x= -b ± /2.a

substituindo...

x= -2 ± 16/2.1

x= -2 ± 4/2

x'= -2 + 4/2 x"= -2 - 4/2

x'= 2/2 x"= -6/2

x'= 1 x"= -3

S={ 1,-3 }

b) f ( x ) = x ²+ x - 12

x²+x-12=0

a=1

b=1

c=-12

formula do delta ∆= b²-4.a.c

formula do delta ∆= b²-4.a.csubstituindo..

formula do delta ∆= b²-4.a.csubstituindo.. ∆= 1²-4.1.(-12)

)∆= 1 + 48

∆= 49

Agora usando Bhaskara x= -b ± √∆/2.a

Agora usando Bhaskara x= -b ± √∆/2.asubstituindo...

Agora usando Bhaskara x= -b ± √∆/2.asubstituindo...x= -1 ± √49/2.1

2.1x= -1 ± 7/2

/2x'= -1 + 7/2 x"= -1 - 7/2

/2x'= 6/2 x"= -8/2

2x'= 3 x"= -4

S={ 3,-4 }

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