RAID capacity·RAID 60 · 24disks
RAID 60 · 24disks
20disks
Capacity efficiency 83.3%

RAID 60 with 24 disks — 20 usable

24 disks in RAID 60 give you 20 disks’ worth, with 4 spent on parity or mirroring. That is 83.3% efficiency, and it always survives 2 failures.

Disks
24
Usable disks
20
Spent on parity or mirror
4
Capacity efficiency
83.3%
Failures always survived
2
Best case
4
Groups
2
Disks per group
12

RAID 60

Several RAID 6 groups striped together. Each group spends two disks on parity.

TB on the label, TiB on the screen

  • 1 TB × 2420 TB · 18.19 TiB
  • 2 TB × 2440 TB · 36.38 TiB
  • 4 TB × 2480 TB · 72.76 TiB
  • 6 TB × 24120 TB · 109.14 TiB
  • 8 TB × 24160 TB · 145.52 TiB
  • 10 TB × 24200 TB · 181.9 TiB
  • 12 TB × 24240 TB · 218.28 TiB
  • 14 TB × 24280 TB · 254.66 TiB
  • 16 TB × 24320 TB · 291.04 TiB
  • 18 TB × 24360 TB · 327.42 TiB
  • 20 TB × 24400 TB · 363.8 TiB
  • 22 TB × 24440 TB · 400.18 TiB
  • 24 TB × 24480 TB · 436.56 TiB

One TB on the box is 10¹² bytes, while the operating system counts in units of 2⁴⁰ bytes. The names look alike but the units differ, so the same disk reads about 9% smaller. Nothing went missing — the ruler changed.

How the groups are split

  • Groups 2 · Disks per group 1220disks · 4
  • Groups 3 · Disks per group 818disks · 6
  • Groups 4 · Disks per group 616disks · 8
  • Groups 6 · Disks per group 412disks · 12

For RAID 50 and 60, how many groups you use is the real decision. Fewer groups spend less on parity and leave more capacity; more groups leave one (or two) spare disks per group, so more failures are survivable when they land well. The guaranteed figure does not change either way — two failures inside one group end it regardless.

Same disk count, other levels

Same level, other disk counts

The rebuild is the dangerous part

When a single-parity array loses a disk, you put a new one in and every remaining disk is read end to end to rebuild it. That is precisely when the survivors work hardest and longest. The bigger and more numerous the disks, the longer the rebuild — days, sometimes — and a second failure during it ends the array. This is why RAID 6 or 10 is preferred over RAID 5 on large arrays.

How to read it

  • Usable = total − parity × groups. Every level is that one line.
  • RAID 5 spends one parity disk in a single group, so n−1; RAID 6 spends two, so n−2.
  • RAID 50 and 60 run several such groups striped together, so the parity is multiplied by the group count.
  • RAID 1 holds one copy on every disk, so one disk’s worth; RAID 10 mirrors in pairs, so half.
  • Groups must be equal in size, so the group count can only be a divisor of the disk count.
  • TB on the box and TiB on the screen are different units — about 9% apart.

RAID is not a backup

RAID protects against exactly one thing: a disk dying. A file deleted by mistake, a file overwritten, ransomware, a failed controller, fire or theft all propagate to every disk at once — a mirror deletes just as faithfully as it writes. A backup is a separate copy on separate hardware, and RAID is not doing that job.

Common questions

Q. How much do 24 disks give in RAID 60?

20 disks’ worth. 4 go to parity or mirroring, for 83.3% efficiency.

Q. How many failures does it survive?

2 always, and up to 4 if they land in the right places.

Q. How many TB with 4 TB disks?

80 TB, which the operating system shows as 72.76 TiB — different units, same bytes.

Q. What is this level?

Several RAID 6 groups striped together. Each group spends two disks on parity.