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RUDIKE [14]
3 years ago
14

What are the main properties of a mixture

Chemistry
1 answer:
goldfiish [28.3K]3 years ago
8 0
Low melting and boiling points- this is because the weak intermolecular forces break down easily.

Non- conductive- they don’t have any free elections or an overall electric.
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What is the freezing point of a solution of 0.500 mol of sucros in 500.0 mL of water?
andrew11 [14]

The freezing point would be 3.72 *C  

8 0
3 years ago
If i have 4 moles of a gas ata pressure of 5.2 atm and a volume of 15 liters, what is the temperature?
kompoz [17]

Answer:

237.5 K.

Explanation:

  • We can use the general law of ideal gas: <em>PV = nRT. </em>

where, P is the pressure of the gas in atm (P = 5.2 atm).  

V is the volume of the gas in L (V = 15.0 L).  

n is the no. of moles of the gas in mol (n = 4.0 mol).

R is the general gas constant (R = 0.0821 L.atm/mol.K),  

T is the temperature of the gas in K (T = ??? K).

∴ T = PV/nR = (5.2 atm)(15.0 L)/(4.0 mol)(0.0821 L.atm/mol.K) = 237.5 K.

5 0
3 years ago
Salt is the product formed by a reaction in which _______ atoms of an acid are replaced by the atoms of a metal
Dafna1 [17]
<span>The question says,'salt is the product formed by a reaction in which .............atoms of an acid are replaced by the atoms of a metal. The correct answer is hydrogen atoms. Salts are formed as a result of the hydrogen ions in the acid been replaced by metal ions or other positive ions in the base.</span>
3 0
4 years ago
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Which is the BEST example of something that has kinetic energy?
drek231 [11]

Answer:

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4 0
3 years ago
Read 2 more answers
Somebody please answer
Zepler [3.9K]

Answer:

177 mmHg

Explanation:

Given that:

The sample of  a gas is with Pressure (1) P_1 = 500 mmHg

The initial temperature T_1 = 773 K

The final temperature T_2 = 273 K

Using ideal gas equation:

\dfrac{P_1}{T_1} = \dfrac{P_2}{T_2} \\ \\  \dfrac{500}{773} = \dfrac{P_2}{273} \\ \\  (136500) = 773 \times P_2 \\ \\ P_2 = \dfrac{136500}{773} \\ \\  P_2 = 176.58 \ mmHg \\ \\  \simeq 177 mmHg

7 0
3 years ago
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