Answer:
the volume of sea water is 85866.407 L, necessary to extract 8.0 E4 tons of Mg
Explanation:
⇒ 8.0 E4 ton Mg * ( 0.00110231 Kg / ton ) = 88.1848 Kg Mg
⇒ 0.13 % = ( 88.1848 Kg Mg / Kg seawater ) * 100
⇒ ( 0.13 / 100 ) = 88.1848 / Kg seawater
⇒ Kg seawater = 88.1848 / 1 E-3
⇒ Kg seawater = 88184.8 Kg
⇒ Vseawater = mass seawater / density seawater
∴ density seawater = 1027 Kg / m³...from literature
⇒ V seawater = 88184.8 Kg / 1027 Kg/m³
⇒ V seawater = 85.866 m³ * ( 1000L / m³ )
⇒ V seawater = 85866.407 L
Answer:
6.0 × 10¹⁰ L
Explanation:
We know that 1 ton = 10⁶ g. 8.0 × 10⁴ tons of Mg are:
8.0 × 10⁴ ton × (10⁶ g/ 1 ton) = 8.0 × 10¹⁰ g
There is about 1.3 g of Mg for every kilogram of seawater. The mass of seawater that contains 8.0 × 10¹⁰ grams of Mg is:
8.0 × 10¹⁰ g Mg × (1 kg seawater/ 1.3 g Mg) = 6.2 × 10¹⁰ kg seawater
The average density of seawater is 1.025 kg/L. The volume corresponding to 6.2 × 10¹⁰ kg is:
6.2 × 10¹⁰ kg × (1 L/ 1.025 kg) = 6.0 × 10¹⁰ L
