Results 1 to 3 of 3

Thread: Basic pneumatic press compressive strength question

  1. #1

    Join Date
    Jun 2020
    Posts
    2

    Basic pneumatic press compressive strength question

    Hey guys,

    So I'm helping the lady expand her soap making hobby. She currently uses a 1.5" cylinder press at 150 psi. So that means her press exerts a force of ~ 240 lbs.

    Her press is attached to a 5 in^2 square block. So I believe that her square block exerts a compressive stress of.....

    P = F/A = (240 lbs) / (5 in^2) = 48 psi. Correct?

    Well, now I want to increase it from 1 soap, to say 40 soaps.......Well, with a multiple soap design I need space in-between the soap forms for wall thickness, etc. So say I need 8 in^2 for each soap. Okay, then for 40 soaps I need 8*40 = 320 in^2. Therefore, the force I need is F = P * A = (48 psi) * (320 in^2) = 15,360 lbs!!!!!

    This confuses me. 320 in^2 is just a 18" by 18" square. Not very big. 50 psi also is not a lot. But if I'm understanding correctly to put a relatively low pressure (50 psi) across a relatively small area (18" x 18") I need to create basically 8 tons of force???

    Am I following this correctly? Is 50 psi actually a pretty substantial compressive stress?

    Thank you in advance for any help and guidance. I would like to design this press, but I didn't imagine I'd be making a 10 ton press. lol.

  2. #2
    Technical Fellow Kelly_Bramble's Avatar
    Join Date
    Feb 2011
    Location
    Bold Springs, GA
    Posts
    2,611
    area of circle = pi * r^2 = 3.14157 * 0.75^2 = 1.77 in^2

    force = pressure lbs/in^2 * area = 150 * 1.77 = 265.5 lbs axial force.

    area of 5 in. square block = 5 * 5 = 25 in^2

    265.5 lbs / 25 in^2 = 10.62 psi
    Tell me and I forget. Teach me and I remember. Involve me and I learn.

  3. #3

    Join Date
    Jun 2020
    Posts
    2
    Hey. Thanks so much for the reply! Unfortunately, the square block that presses the soap mold has an area of ~5 in^2 (~2.25" x 2.25"). It is not a 5" square.

    I just couldn't belive that I really needed 8 tons of force to apply 50 psi over an area of 320 in^2. But I guess that's how the math works out.

Tags for this Thread

Posting Permissions

  • You may not post new threads
  • You may not post replies
  • You may not post attachments
  • You may not edit your posts
  •