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-Dominant- [34]
3 years ago
7

If one of these stars happens to be blue, which star is most likely to be that color?

Chemistry
2 answers:
Anestetic [448]3 years ago
5 0

Answer:

(D) 15,000

Explanation:

I took the test trust me.

Montano1993 [528]3 years ago
5 0

Answer:

D

Blue stars are the hottest ones, so the hottest of these stars should be a blue one.

<em>Hope that helps! :)</em>

<em></em>

<em>-Aphrodite</em>

Explanation:

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Enter the correct 4 digit code (no spaces) *
Tamiku [17]

Explanation:

a=5

b=9

c=3

d=4

that's the correct brainliest answer

3+2=5

+ + +

1 +3 =4

= = =

4+5=9

4 0
3 years ago
Please help me with this work
Dominik [7]
I don’t know how , what class is it for?
3 0
3 years ago
When carbohydrates are metabolized as cellular fuel, the C-H and C-C bonds of the carbohydrate are oxidized to C=O bonds of carb
SashulF [63]

Answer:

This is a oxidation process.

Explanation:

8 0
3 years ago
2Fe(s) +3H2SO4(aq) →Fe2(SO4)3(aq) +3H2(g)When 10.3 g of iron are reacted with 14.8 moles of sulfuric acid, what is the percent y
Elden [556K]

Answer:

1040%

Explanation:

To solve this question we must convert the mass of Iron to moles in order to find limiting reactant. With limiting reactant we can find the theoretical moles of hydrogen and theoretical mass:

Percent yield = Actual yield (5.40g) / Theoretical yield * 100

<em>Moles Fe -Molar mass: 55.845g/mol-:</em>

10.3g * (1mol / 55.845g) = 0.184 moles of Fe will react.

For a complete reaction of these moles there are necessaries:

0.184 moles Fe* ( 3 mol H2SO4 / 2 mol Fe) = 0.277 moles H2SO4.

As there are 14.8 moles of the acid, <em>Fe is limiting reasctant.</em>

The moles of H2 produced are:

0.184 moles Fe* ( 3 mol H2 / 2 mol Fe) = 0.277 moles H2

The mass is:

0.277 moles H2 * (2.016g/mol) = 0.558g H2

Percent yield is:

5.40g / 0.558g * 100 = 1040%

It is possible the experiment wasn't performed correctly

7 0
3 years ago
Energy from the sun provides fuel for entire ecosystems true or false​
Gekata [30.6K]

Answer: True

Explanation:

7 0
3 years ago
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