If W is defined as a function then you have to use it that way, not as a variable.

You can't just evaluate the Find, because the return units for m and mu are different. You have to assign the results to two variables, and evaluate them.

If you have two unknowns then you cannot have more than two equations. That would be an over-determined system, and in general will have no solution. In this case the values of m and mu that satisfy the first two equations are not the same as the values that satisfy the second two equations.

Lukasz Nadolny wrote: Thank you for your time. I will really appreciate if you will explain me some things about those calculation you made. First of all and the most important is that the answer is still not correct so I don't understand what calculate Mathcad. The result that meet those two requirements are: m=36,46kg and mu= 0,256

Sorry, I haven't looked through the entire thread but just looked at Richard's worksheet.   Are you sure those values you give are correct?  Given the equilibrium conditions in the worksheet, I don't think there is a pair of m and μ values that give equilibrium for both 100 N and 350 N.

Stuart

1) Because I wanted to see how far away the equations were from the desired value of zero.

2) If you type Find= then Mathcad would display the results as a vector of two values. However, Mathcad does not allow quantities in a vector to have different units, so you get an error. So Instead I put a vector of variable names on the LHS of the equation. The first value is assigned to the first variable, and the second to the second variable.

3) To show you that the values from the solve block satisfy the first two equations (the ones that were in the solve block), because they evaluate to numbers very close to zero, but those values do not satisfy the other two equations.

4) To show you that there are also values of m and mu that satisfy the second two equations, but they do not satisfy the first two equations.

The result that meet those two requirements are: m=36,46kg and mu= 0,256

Those values satisfy none of the equations

Lukasz Nadolny wrote: Thank you I will fallow your calculation and then i will have some question if you wouldn't mind. But you are right there is one mistake in equailbrium you should have those 4 : (diffrence in minus and plus sign) and then yes i'm sure because I calculated by hand.

I've probably mistyped something, because I still don't get the values you do.  I've replaced the = 0 equilibrium values in a solve block with the = values you give above to see if the expressions can find the corresponding m and μ values - it seems to, giving confidence the solve block is correctly set up.

Stuart

then yes i'm sure because I calculated by hand.

You calculated by hand wrong. Or you have different equations. There are no values of m and mu that satisfy all four equations (and if there were, you would still only need two of the equations to find those values)

Lukasz Nadolny wrote: Okay I fallow your calculation. Some questions: 1. What is this : Because the mass have units in kg, and you have in bracket m over kg so what that mean?.

As Richard explained, although Find will return an expression with mixed unit, Mathacad 15 can't assign mixed unit values to a single array; arrays must all be of the same quantity.    Richard provided one way round this by assigning the output from the Solve function to independent variables.   Another way round it, which I've used, is to make all the results of the same quantity (usually dimensionless) and you do this by dividing each quantity by the appropriate unit

Dividing m by kg makes it dimensionless, which means that I can now assign the Find result to a variable or function.  In this case, I've assigned it to a function, h, which takes a single argument a that gets passed into the solve block.

2. Could you explain this : I don't understant this and what it mean in Mathcad.

Function h returns a dimensionless 2-element vector.  I simply do the same thing Richard did and assign each element to m and μ respectively. You should have noticed that I multipy m by kg to restore its unit.

The advantage of using a function with a solve block is that you don't have to write a new solve block every time you want to add a new value of a parameter.

3. How the result from the first equation is transfer to compare this with second condition and get the proper answer?

Unfortunately, I don't know what your question means.   Could you explain it in a bit more detail? 

If you mean how does the second solve block know what values of m and μ to use, then as Mathcad works from left-to-right and then top-to-bottom, it simply picks up the current values of m and μ, which happen to be the last ones used.  It doesn't matter too much what the values were for this purpose - they just had to produce different values for F, G and H so that I could demonstrate that the solve block found values that produced eq1, eq2, eq3 and eq4 (ie, that the solve block works!).

Stuart

Nco it's called Normal Force. And yes it's not 1 Newton. I just add this Co to have distinquish between Newtons and Normal Force, because I still struggle with notation in Mathcad. I do mistake that Nco is diffrent in second couple of equations i wasn't see it on paper becasue it was eleminated anyway during the solving.

Thank you guys for helping me understanding Mathcad solving task. I gain a lot of knowledge. Thanks to you all.

After some time I decided to do it more gently let say. And working on function you can see below :

I even do testing of the function working in Mathcad and looks like I defined everything correct (small function on the right side). Any idea what is wrong here?

It's the same problem Alan pointed out in the other thread. You are trying to solve for mu, but mu does not appear in the solve block. If I write

mu=1

Friction(Nforce):=Nforce*mu

then Nforce is a parameter that is passed to the function, and therefore can be changed at any point later in the worksheet when the function is called. However, mu is a fixed value, in this case 1. Since the solve block can't change mu it has only three variables it can change, but four unknowns. It therefore can't find a solution. You need to also make mu a parameter that can be passed to the function.

Also change your guess values for the normal forces to 300N. Your current guesses are too far off, and it's finding a mathematically correct, but non-physical solution. Your coefficient of friction is still negative though, so there's an error somewhere in your equations.

Richard I get you clues. And I understood.

Anyway if I will change as you want the mu to be the parameter. I get the wrong answer. You probably see your previos equations from Sep 24, 2015 3:37 PM there are the same but now just describe by function. Where is the mistake then?

And for example the same story is here :

Without :

With functions: