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Kay [80]
3 years ago
13

Please help!!! question b do as directed

Mathematics
1 answer:
Harrizon [31]3 years ago
6 0

Answer:

question b do as directed

Step-by-step explanation:

can you say again

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Solve for x: x/2+1=5
Kamila [148]

Answer:

8

Step-by-step explanation:

4 0
3 years ago
Read 2 more answers
Eli is following this recipe to bake bread rolls.
chubhunter [2.5K]

Answer:

flour 720 g

salt 10.8 g

yeast 14.4 g

oil 36 ml

water 600 ml

Step-by-step explanation:

600 ml - 500 ml = 100 ml = 20% more

Set up ratios to determine 20% of each ingredient and add to the original amount.

Example:

20%/100% = x ml/30 ml

20x30÷100=6

So, for oil, you need 30 ml + 6 ml = 36 ml

6 ml = 20% more

6 0
3 years ago
A ladybugs length measures 2 cm express this measurement in meters. explain your thinking. include an Equation with an exponent
Tcecarenko [31]

Answer:

Length of lady bug in meters is:

0.02

Step-by-step explanation:

A ladybugs length measures 2 cm.

We have to express this measurement in meters.

We know that 1 m=100 cm

1 cm= 1/100 m

      =0.01 m

2 cm=2×0.01 m

      =0.02 m

Hence, Length of lady bug in meters is:

0.02

5 0
4 years ago
Read 2 more answers
(4x+3y^2)dx+2xy*dy=0 by using integrating fector
Nataly_w [17]
\underbrace{(4x+3y^2)}_M\,\mathrm dx+\underbrace{2xy}_N\,\mathrm dy=0

The ODE is exact if \dfrac{\partial M}{\partial y}=\dfrac{\partial N}{\partial x}.

M_y=6y
N_x=2y

This is not the case, so look for an integrating factor \mu(x) such that

\dfrac\partial{\partial y}\mu M=\dfrac\partial{\partial x}\mu N

Since \mu is a function of x only, you have

\mu M_y=\mu'N+\mu N_x\implies\dfrac{\mu'}\mu=\dfrac{M_y-N_x}N\implies\mu=\exp\left(\displaystyle\int\frac{M_y-N_x}N\,\mathrm dx\right)

So, the integrating factor is

\mu=\exp\left(\displaystyle\int\frac{6y-2y}{2xy}\,\mathrm dx\right)=\exp\left(2\int\frac{\mathrm dx}x\right)=x^2

Now the ODE can be modified as

\underbrace{(4x^3+3x^2y^2)}_{M^*}\,\mathrm dx+\underbrace{2x^3y}_{N^*}\,\mathrm dy=0

Check for exactness:

{M^*}_y=6x^2y
{N^*}_x=6x^2y

so the modified ODE is indeed exact.

Now, you're looking for a solution of the form \Psi(x,y)=C, since differentiating via the chain rule yields

\dfrac{\mathrm d}{\mathrm dx}\Psi(x,y)=\Psi_x+\Psi_y\dfrac{\mathrm dy}{\mathrm dx}=0

Matching up components, you would have

\Psi_x=M^*=4x^3+3x^2y^2
\displaystyle\int\Psi_x\,\mathrm dx=\int(4x^3+3x^2y^2)\,\mathrm dx
\Psi=x^4+x^3y^2+f(y)

Differentiate this with respect to y to get

\Psi_y=2x^3y+f'(y)=2x^3y=N^*
f'(y)=0\implies f(y)=C_1

So the solution here is

\Psi(x,y)=x^4+x^3y^2+C_1=C\implies x^4+x^3y^2=C

Just for a final check, take the derivative to get back the original ODE:

\dfrac{\mathrm d}{\mathrm dx}[x^4+x^3y^2]=\dfrac{\mathrm d}{\mathrm dx}C
4x^3+3x^2y^2+2x^3y\dfrac{\mathrm dy}{\mathrm dx}=0
4x+3y^2+2xy\dfrac{\mathrm dy}{\mathrm dx}=0
(4x+3y^2)\,\mathrm dx+2xy\,\mathrm dy=0

so the solution is correct.
7 0
4 years ago
Can someone explain? I Dont Get It
Rama09 [41]
A

Because A dictates the actual equation correctly
6 0
3 years ago
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