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Cell A has a surface area of 50\, \mu\text{m}^250μm 2 50, mu, start text, m, end text, squared and a volume of 10\, \mu\text{m}^310μm 3 10, mu, start text, m, end text, cubed. Cell B has a surface area of 14\, \mu\text{m}^214μm 2 14, mu, start text, m, end text, squared and a volume of 7\, \mu\text{m}^37μm 3 7, mu, start text, m, end text, cubed. Using the information above, determine the surface-area-to-volume ratio of each cell. What is the SA:V ratio of the cell that will exchange materials with its environment at the fastest rate of diffusion?

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Answer:

  • Cell A:

       [tex]SA:V=5\mu m^2/\mu m^3[/tex]

  • Cell B:

     [tex]SA:V=2\mu m^2/\mu m^3[/tex]

  • The SA:V ratio of the cell that will exchange materials with its environment at the fastest rate is 5μm²/μm³

Explanation:

1. Show the data properly:

Cell A:

Surface area:

      [tex]SA=50\mu m^2[/tex]

Volume:

       [tex]V=10\mu m^3[/tex]

Cell B:

Surface area:

     [tex]SA=14\mu m^2[/tex]

Volume:

      [tex]V=7\mu m^3[/tex]

2. Find the surface-to-volume ratio of each cell.

Cell A:

SA: V

        [tex]50\mu m^2/10\mu m^3=5\mu m^2/\mu m^3[/tex]

Cell B:

SA:V

        [tex]14\mu m^2/7\mu m^3=2\mu m^2/\mu m^3[/tex]

3. Compare

The cell that will exchange materials with its environment at the fastest rate of diffusion is that with the greater SA:V ratio. That is cell A.

The reason is that a greater surface  in relation to the volume the cell contain means that it has a bigger area to permit the exchange of the materials.

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