How to attach a potentiometer to a servo motor shaft

I don't see that working witha motor.
That looks more like acuator application.

raschemmel:
I don't see that working witha motor.
That looks more like acuator application.

that would make some things a lot easier. but the problem that i run into is that you can not move an actuator manually. I need to be able to run the mower by hand while recording the positions, then i know the positions and times that need to be sent back to the motor. to use an actuator i would have to build controls with joysticks and run the machine that way. which can be done, just isn't a great way of doing it.

15 lbs of force on the handle that appears to be at least 16 inches from the pivot point? 20 pound feet of torque? Oh my, looks like a big gearmotor with an electromagnetic release clutch for manual operation.

outsider:
15 lbs of force on the handle that appears to be at least 16 inches from the pivot point? 20 pound feet of torque? Oh my, looks like a big gearmotor with an electromagnetic release clutch for manual operation.

how do i work with the draw weight i measured? how do i convert it to something that is repeatable to motor specs?

That 20 foot-pound is your motor torque specification.

wvmarle:
That 20 foot-pound is your motor torque specification.

How do i calculate that. i apologize for asking. i just need to know how to do it so next time i do a project like this i won't have to ask.

20 foot-pound

birddseedd:
How do i calculate that.

It's the product of the force and the distance at which it acts from the pivot.

So 15lbs at 16" is 15 x 1.33' = 20

birddseedd:
I've also been dealing with an emergency c section.

Why was it important for the forum to know that?

Willpatel_Kendmirez:
It's the product of the force and the distance at which it acts from the pivot.

So 15lbs at 16" is 15 x 1.33' = 20

Im a bit confused by why the distance matters. The pivot in this case doess not effect the force needed. If i were to lengthen the handle bars to 100' and moved the damener and moter to the end if the 100', its still going to need the same 15, of force. But now the forumula would say 1500 ft lbs of force.

It's the distance between the centre of the axle of the motor (the pivot point), and the point at where the force is needed (the point where your motor's arm connects to the thing you want to move).

wvmarle:
It's the distance between the centre of the axle of the motor (the pivot point), and the point at where the force is needed (the point where your motor's arm connects to the thing you want to move).

Ok. That makes more sense.

Ive been talking about the arm of the mower. Not the motor. That's why it didn't make any sense to me.

The motor wouldnt be placed at the center of that pivot in the pic. Although, if i did it would solve some linear motion issues. So maybe ill take a look at it and see if i can.

You're mixing up things. To calculate the torque of your motor you need to measure the length of the arm the motor has to move from the centre of the motor's axle (that's your motor's pivot point) to where it's attached to whatever you want to apply the force to.

Have a look at these images. Should make it clear.

That part I believe I understand. Where I think I'm getting confused is that, correct me if I'm wrong, I'm not measuring "torque" I am measuring "pound Force".

...and from pound-force and radius (=length of the arm) you can calculate the torque.

Ok. The more im reading i think that im measuring in lbs mass not pounds force. So i have to cinvert the mass to force before i can convert to torque.

I'm going to take a break and eat some breakfast

The normal way of measuring weight (what is often called "mass" though they're not the same thing) with a scale is by measuring force: the force at which the earth's gravity pulls at the object.

So attaching a spring scale to your handle and pulling it is basically the same thing.

wvmarle:
The normal way of measuring weight (what is often called "mass" though they're not the same thing) with a scale is by measuring force: the force at which the earth's gravity pulls at the object.

So attaching a spring scale to your handle and pulling it is basically the same thing.

Ok. So i did measure pound force (lbf). I need to convert that to pound to pound torque (lbf.ft). And then adjust for the length of the lever from the pivot point.

I got a chance to go out and measure the control arm. It measures 12 inches.

If i attach the motor at the same point thst will illiminate issues converting it to linear motion. Although it means a bigger motor is needed.

15 lbf * 1' means 15 torque? That would mean just about 20 nm of torque?

If i mount the motor higger and just deal with the uneven motion i can cut that in half. Thats still a good size motor.

outsider:
15 lbs of force on the handle that appears to be at least 16 inches from the pivot point? 20 pound feet of torque? Oh my, looks like a big gearmotor with an electromagnetic release clutch for manual operation.

So really this is another situation where I'm asking the wrong question. I don't need a motor that I can turn off and still get a reading from it, I need a motor where I can release the clutch, and still get a reading from it