Concern a disk with a sector size of 512 bytes, 2000 tracks per surface, 50…

2020

Concern a disk with a sector size of 512 bytes, 2000 tracks per surface, 50 sectors per track, five double-sided platters, and average seek time of 10 milliseconds.

What is the capacity of the disk, in bytes?

  1. A.

    25,000𝐾

  2. B.

    500,000𝐾

  3. C.

    250,000𝐾

  4. D.

    50,000𝐾

Attempted by 182 students.

Show answer & explanation

Correct answer: B

Answer: 500,000K (which equals 512,000,000 bytes)

  • Step 1: Compute number of surfaces: 5 platters × 2 sides = 10 surfaces.

  • Step 2: Total sectors = 50 sectors/track × 2000 tracks/surface × 10 surfaces = 1,000,000 sectors.

  • Step 3: Total capacity in bytes = 1,000,000 sectors × 512 bytes/sector = 512,000,000 bytes.

  • Step 4: Convert to kilobytes using K = 1024 bytes: 512,000,000 ÷ 1024 = 500,000 K.

Therefore the disk capacity shown as 500,000K is correct. Note: 'K' here is being used as 1024 bytes (KiB).

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