Estimate Jaw Crusher Capacity

Formula to Estimate Jaw Crusher Capacity
jaw crusher production capacity

Example capacity calculation of a 10″ x 20″ (250 mm x 500 mm):

  • Pp = 2800 (2.8 SG)
  • e = 0.2 (halfway between dolomite and sandstone)
  • A = 250/1000 x 500/1000
  • Wj = 0.5
  • Nj = 225

= 2800 x 0.25 x 0.5 x 0.5 x 225 x (1-0.2)/60 = 525 kg/hr = 13 TPD vs 300 to 420 TPD —> I can’t make this work!

My friend Alex the SAG Mill Expert, says this equation you picked up doesn’t look right. The numerator is calculating the volume of one swing of a jaw, times the density of material in the chamber, times the number of cycles per minute. This should give you the mass of material crushed per minute.

The denominator looks wrong; to convert to mass per hour should be multiplying by 60, not dividing by 60. Dividing by 60 should give mass
per second, which isn’t what you want.

The example you’ve given is missing information needed to calculate the “A” term – it doesn’t tell you the height of the crushing chamber. The
two measurements you’ve got are the top opening width and top opening length; “A” should be the jaw throw (not given) times the crushing
chamber height (also not given).

Will’s Textbook (8th ed) gives a better equation (here on the right):jaw_crusher_capacity

Q = W*S*s*cot(a)*k*N*60

  • The Q is vol throughput, m³/h
  • W is inner width of crusher, m
  • S is open side setting, m
  • s is jaw throw, m
  • a is the nip angle
  • k is a material factor, 1.5 to 2.0 (includes your epsilon param)
  • N is RPM

This form works out volume of one motion of the jaw, multiplies by RPM then multiplies again by 60 to give volume/hour. This looks better, but it still doesn’t work.

Example, Metso C80 jaw crusher, 2″ CSS:

Q = 0.8*(0.05+0.025)*0.025*cot(10°)*1.75*350*60 = 111 m³/h

(I have to guess the throw, the catalogue doesn’t say)

Q × 1.6 t/m³ = 240 t/h (versus catalogue value of 75-100 t/h)

Still out by >100%, but at least the right order of magnitude.

Blake Jaw Crusher Capacity Table Estimator
crusher production capacity

Ref

Porosity is the percentage of void space in a rock.

Porosity

Tables herein contain information that is typical of output from crushers discussed above. The capacities are based on the crusher receiving full, continuous feed of clean, dry, friable stone weighing 100 lb/cu ft.

These capacity tables show several significant differences between the two common types of primary crushers. A jaw crusher has a wider range of settings—generally, a maximum of two to three times the smallest setting. The tables also show that for a comparable maximum size of feed and setting, a gyratory crusher has a much greater capacity than a jaw crusher. The gyratory crusher obtains this advantage only at the cost of greater power to drive the crusher.

Capacities and Horsepower of Jaw Crusher (tons/hr)

Crusher Size (in.)

Power Required (hp)

Closed side setting (in.)

2

345678910
2036754570100125150

2042

756085120150180

2436

1005580110145175

2448

100115155195230

260

315

3048150180220260315

365

4260200285350420480540

600

 Single-toggle jaw crusher specs

The selection of an appropriate primary crusher for a given use has to be based on a consideration of several factors. These are not limited to the design features of the crusher. If the feed is blasted rock from a quarry, the size and method of handling the feed influence crusher selection. For instance, a power shovel is limited by the dimensions of the dipper in the maximum size of rock it can handle well. It may be that the bucket of a 1½- yd shovel would be too small to load the maximum size rock allowed in a jaw crusher with a 42-in. opening.

Capacities of a Gyratory Crushers (tons/hr)

Crusher

Size

Power max° hpOpen Side Settings of Discharge (in.)

2

2.533.54.555.5

8

Primary Crushers

30-55

300420510570730810

900

42-65

4008801000

1120

48-74

50017001850

2700

60-896002500 tph at 6 in., 3600 at 9 in. max.

3260

Secondary Crushers

13-36

125200250300

16-50

150350400430480
24-60300480540600

730

30-7040070081093012201350

1500

From Allis-Chalmers’ Superior Primary and Secondary Crushers.
° Actual required depends on stone hardness, reduction ratio, and so on.

If a 60-in. gyratory crusher is to process material from a quarry where a shovel loads the raw material, the shovel would probably have to have a dipper capacity of at least 5 cu yd to be compatible. It may be more economical to change the blasting pattern to produce larger rock that can be handled by a larger loader-hauler combination and still fit in the primary crusher. Generally, a large reduction ratio will be required of the primary crusher.

Typical Capacities of Twin-Roll Crushers (tons/hr)

Crusher Size (in.)

Power Required (hp)Space between Rolls (max. size of feed) (in.)
1/8 (3/8)¼ (3/4)½ (below)1 (below)

1 ½ (below)

24 x 16

30122448 (1 ¼ )96 (1 ¾ )

30 x 18

40132652 (1 3/8 )103 (1 7/8)156 (2 3/8 )

30 x 26

100193775 (1 3/8 )149 (1 7/8)

223 (2 3/8 )

40 x 2260153162 (1 ½ )125 (2 1/8 )

187 (2 5/8 )

40 x 30200/250214285 (1 ¼ )170 (2 1/8 )

255 (2 5/8 )

Telsmith Handbook

If gravel has relatively small maximum particle sizes, a large feed opening is not needed. It may be more economical to feed all of the pit-run material into the primary crusher rather than to remove the part that is already smaller than the crusher setting. That calls for a crusher with a higher capacity. There are many feasible solutions to the crusher selection problem, so the aggregate producer must select crushers with total operations and economics in mind. The selection of reduction crushers is also a complex problem.

The economic selection of any particular crusher depends on the ability of the crusher to handle the maximum size of feed, reducing this at the highest possible reduction ratio and least cost for the original installation, maintenance, and power. For any particular aggregate production plant, it is advisable to make preliminary determinations of the types of crushers needed. If most of the feed is coarse and stage crushing is required, primary crushers that meet the requirements of reduction and economy and have straight crushing surfaces may be most economical.

Typical Capacities of Cone Crushers

Crusher Size (in.)

Power Required (hp)Capacity at Closed Side Setting, tons/hr (in.)
1/81/41/23/411 ½2

2 ½

Open Circuit Operation (with coarse bowl liner)

28

40-502232445788

36

60-755681107160220
51125-150115155195275

360

66200-250235315435565

710

Closed Circuit Open (with fine bowl liner)

28

40-508163144

36

60-75356085
51125-15060110165200
66200-250185265325

Specs from Kue-Ken cone crushers

Where only a very small percentage of the feed approaches the size of the feed opening of the crusher, nonchoking crushing surfaces in a high capacity crusher may be advisable for the sake of economy. If the plant requires several stages, and several different types of crushers could be used for each stage, the costs of each feasible combination must be analyzed to find the crusher plant with the least total cost.

Typical Capacities of Hammermills

Feed

Opening

(in.)

Max.

Feed

(in.)

Power

Required

(hp)

Approximate Capacity, tons/hr (in.)

1/8

1/41/211.5

2.5

9 x 12.25

325-605-88-1010-1215-1822-2627-35

11 x 21

450-12512-1610-2018-2532-3944-5055-75

12 x 33.5

6125-25025-3430-4042-5485-100105 +

125 +

17.5 x 43.2510175-35041-5450-7065-85140 +160 +

185 +

17.5 x 6410250-60060-8085-100110-140210 +260 +

290 +

Telsmith Handbook

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