A metal stand specifies a maximum load of 450 lb. Will it support an aquarium that weighs 59.5 lb and is filled with 37.9 L of seawater (d = 1.03 g/mL)?

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Below is the solution:

37.9*1000*1.03=39037 g=39.037 kg
39.037*2.21=86.28 lb
86.28+59.5=145.78 lb <450 lb

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Tringa0 Tringa0 · Answer 2 · 2019-11-05T07:34:12+01:00

Answer:

Yes, metal stand will easily support the aquarium filled with 37.9 liters of seawater.

Explanation:

Maximum load taken by the metal stand = 450 lb

Load exerted by the aquarium filled with sea water :

Mass of an empty aquarium = 59.5 lb

Mass of sea water = m

Volume of sea water ,v= 37.9 L = 37900 mL

Density of the sea water = d = 1.03 g/mL

[tex]Density=\frac{Mass}{Volume}[/tex]

[tex]Mass=density\times Volume[/tex]

[tex]m=1.03 g/mL\times 37900 L=39,037 g = 86.062 lb[/tex]

1 lb = 453.592 g

Total load exerted by filled aquarium = 86.062 lb + 59.5 lb = 145 .56 lb

450 lb > 145 .56 lb

Yes, metal stand will easily support the aquarium filled with 37.9 liters of seawater.