Peaucellier–Lipkin linkage

The PeaucellierLipkin linkage (or PeaucellierLipkin cell, or PeaucellierLipkin inversor), invented in 1864, was the first true planar straight line mechanism – the first planar linkage capable of transforming rotary motion into perfect straight-line motion, and vice versa. It is named after Charles-Nicolas Peaucellier (18321913), a French army officer, and Yom Tov Lipman Lipkin (18461876), a Lithuanian Jew and son of the famed Rabbi Israel Salanter.[1][2]

Until this invention, no planar method existed of producing exact straight-line motion without reference guideways, making the linkage especially important as a machine component and for manufacturing. In particular, a piston head needs to keep a good seal with the shaft in order to retain the driving (or driven) medium. The Peaucellier linkage was important in the development of the steam engine.

The mathematics of the PeaucellierLipkin linkage is directly related to the inversion of a circle.

Earlier Sarrus linkage

There is an earlier straight-line mechanism, whose history is not well known, called the Sarrus linkage. This linkage predates the PeaucellierLipkin linkage by 11 years and consists of a series of hinged rectangular plates, two of which remain parallel but can be moved normally to each other. Sarrus' linkage is of a three-dimensional class sometimes known as a space crank, unlike the PeaucellierLipkin linkage which is a planar mechanism.

Geometry

Geometric diagram of a Peaucellier linkage

In the geometric diagram of the apparatus, six bars of fixed length can be seen: OA, OC, AB, BC, CD, DA. The length of OA is equal to the length of OC, and the lengths of AB, BC, CD, and DA are all equal forming a rhombus. Also, point O is fixed. Then, if point B is constrained to move along a circle (shown in red) which passes through O, then point D will necessarily have to move along a straight line (shown in blue). On the other hand, if point B were constrained to move along a line (not passing through O), then point D would necessarily have to move along a circle (passing through O).

Mathematical proof of concept

Collinearity

First, it must be proven that points O, B, D are collinear. This may be easily seen by observing that the linkage is mirror-symmetric about line OD, so point B must fall on that line.

More formally, triangles BAD and BCD are congruent because side BD is congruent to itself, side BA is congruent to side BC, and side AD is congruent to side CD. Therefore angles ABD and CBD are equal.

Next, triangles OBA and OBC are congruent, since sides OA and OC are congruent, side OB is congruent to itself, and sides BA and BC are congruent. Therefore angles OBA and OBC are equal.

Finally, because they form a complete circle, we have

∠OBA + ∠ABD + ∠DBC + ∠CBO = 360°

but, due to the congruences, angle OBA = angle OBC and angle DBA = angle DBC, thus

2 × ∠OBA + 2 × ∠DBA = 360°
∠OBA + ∠DBA = 180°

therefore points O, B, and D are collinear.

Inverse points

Let point P be the intersection of lines AC and BD. Then, since ABCD is a rhombus, P is the midpoint of both line segments BD and AC. Therefore length BP = length PD.

Triangle BPA is congruent to triangle DPA, because side BP is congruent to side DP, side AP is congruent to itself, and side AB is congruent to side AD. Therefore angle BPA = angle DPA. But since angle BPA + angle DPA = 180°, then 2 × angle BPA = 180°, angle BPA = 90°, and angle DPA = 90°.

Let:

 x = \ell_{BP} = \ell_{PD}
 y = \ell_{OB}
 h = \ell_{AP}

Then:

\ell_{OB}\cdot \ell_{OD}=y(y+2x)=y^2+2xy
{\ell_{OA}}^2 = (y + x)^2 + h^2 (due to the Pythagorean theorem)
{\ell_{AD}}^2 = x^2 + h^2 (Pythagorean theorem)
{\ell_{OA}}^2 - {\ell_{AD}}^2 = y^2 + 2xy = \ell_{OB} \cdot \ell_{OD}

Since OA and AD are both fixed lengths, then the product of OB and OD is a constant:

\ell_{OB}\cdot \ell_{OD} = k^2

and since points O, B, D are collinear, then D is the inverse of B with respect to the circle (O,k) with center O and radius k.

Inversive geometry

Thus, by the properties of inversive geometry, since the figure traced by point D is the inverse of the figure traced by point B, if B traces a circle passing through the center of inversion O, then D is constrained to trace a straight line. But if B traces a straight line not passing through O, then D must trace an arc of a circle passing through O. Q.E.D.

A typical driver

Slider-rocker four-bar
acts as the driver of the Peaucellier–Lipkin linkage

Peaucellier–Lipkin linkages (PLLs) may have several inversions. A typical example is shown in the opposite figure, in which a rocker-slider four-bar serves as the input driver. To be precise, the slider acts as the input, which in turn drives the right grounded link of the PLL, thus driving the entire PLL.

Historical notes

Sylvester (Collected Works, Vol. 3 Paper 2 ) writes that when he showed a model to Kelvin, he 'nursed it as if it had been his own child, and when a motion was made to relieve him of it, replied "No! I have not had nearly enough of it—it is the most beautiful thing I have ever seen in my life"'.

See also

References

  1. "Mathematical tutorial of the Peaucellier–Lipkin linkage". Kmoddl.library.cornell.edu. Retrieved 2011-12-06.
  2. Taimina, Daina. "How to draw a straight line by Daina Taimina". Kmoddl.library.cornell.edu. Retrieved 2011-12-06.

Bibliography

External links

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