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Scotch yoke

Mechanism to convert between rotational and reciprocating motion

Scotch yoke

Mechanism to convert between rotational and reciprocating motion

Scotch yoke animation

The Scotch yoke (also known as slotted link mechanism) is a reciprocating motion mechanism converting the linear motion of a slider into rotational motion or vice versa. The piston or other reciprocating part is directly coupled to a sliding yoke with a slot that engages a pin on the rotating part. Given a constant rotational speed, the location of the piston versus time is simple harmonic motion, i.e., a sine wave having constant amplitude and constant frequency.

Applications

Animation

This setup is most commonly used in control valve actuators in high-pressure oil and gas pipelines.

Although not a common metalworking machine nowadays, crude shapers can use Scotch yokes. Almost all those use a Whitworth linkage, which gives a slow speed forward cutting stroke and a faster return.

It has been used in various internal combustion engines, such as the Bourke engine, SyTech engine, and many hot air engines and steam engines.

The term Scotch yoke continues to be used when the slot in the yoke is shorter than the diameter of the circle made by the crank pin. For example, the side rods of a locomotive may have Scotch yokes to permit vertical motion of intermediate driving axles.

What is essentially a Scotch yoke is used in the Tide-Predicting Machine No. 2 to generate a sinusoidal motion (sine functions).

Internal combustion engine uses

Under ideal engineering conditions, force is applied directly in the line of travel of the assembly. The sinusoidal motion, cosinusoidal velocity, and sinusoidal acceleration (assuming constant angular velocity) result in smoother operation. The higher percentage of time spent at top dead centre (dwell) improves theoretical engine efficiency of constant volume combustion cycles. It allows the elimination of joints typically served by a wrist pin, and near elimination of piston skirts and cylinder scuffing, as side loading of piston due to sine of connecting rod angle is mitigated. The longer the distance between the piston and the yoke, the less wear that occurs, but greater the inertia, making such increases in the piston rod length realistically only suitable for lower RPM (but higher torque) applications.

The Scotch yoke is not used in most internal combustion engines because of the rapid wear of the slot in the yoke caused by sliding friction and high contact pressures. This is mitigated by a sliding block between the crank and the slot in the piston rod. Also, increased heat loss during combustion due to extended dwell at top dead centre offsets any constant volume combustion improvements in real engines.

Modifications

An improved Scotch yoke, with a means of absorbing sideways thrust, was patented in 1978 by William L. Carlson, Jr., .

References

References

  1. "ME 700 Mechanisms | EdLabQuip".
  2. General Construction, Baldwin Gasoline Industrial Locomotives [https://books.google.com/books?id=jHwiAQAAMAAJ&pg=PA57 Baldwin Locomotive Works Record], No. 74, 1913; pages 7-9. The use of the ''scotch yoke'' is explained page 8.
  3. Norman W. Storer, Electric Locomotive, {{US patent. 991038, granted May 2, 1911. The use of the ''scotch yoke'' is discussed on page 2 of the text.
  4. (2009-03-18). "Science Links Japan | Effect of Piston Speed around Top Dead Centre on Thermal Efficiency". Sciencelinks.jp.
  5. Bourke Engine Documentary, Published 1968, p50, "Appraising Engine Efficiency" para2
  6. Bourke Engine Documentary, Published 1968, p51, "Important Factors in Engine Design"
  7. "Effect of the Ratio Between Connecting-rod Length and Crank Radius on Thermal Efficiency". Science Links Japan.
  8. "Patent US4075898 - Scotch yoke - Google Patents".
Info: Wikipedia Source

This article was imported from Wikipedia and is available under the Creative Commons Attribution-ShareAlike 4.0 License. Content has been adapted to SurfDoc format. Original contributors can be found on the article history page.

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