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Grashofs criterion One extreme configuration. If this configuration is reached, further anticlockwise rotation of crank is feasible without snapping the.

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Presentation on theme: "Grashofs criterion One extreme configuration. If this configuration is reached, further anticlockwise rotation of crank is feasible without snapping the."— Presentation transcript:

1 Grashofs criterion One extreme configuration. If this configuration is reached, further anticlockwise rotation of crank is feasible without snapping the coupler. 3 4 2 1 Another extreme configuration. If this configuration is reached, further clockwise rotation is feasible without snapping the coupler.

2 Full rotation of crank (2)
One extreme configuration. If this configuration is reached, further anticlockwise rotation of crank is feasible without snapping the coupler. 3 l3 4 l4 2 1 l1 + l2 l1 + l2 < l3 + l4 Sum of lengths of two sides of a triangle is greater than the third.

3 Full rotation of crank (2)
Another extreme configuration. If this configuration is reached, further clockwise rotation is feasible without snapping the coupler. 3 l4 4 l3 2 1 l2 – l1 (l2 – l1 ) + l3 > l4 (l2 – l1 ) + l4 > l3 Sum of lengths of two sides of a triangle is greater than the third.

4 Summary of geometrical conditions for full rotation of link 2
. Full rotation of link(2) Summary of geometrical conditions for full rotation of link 2 l1 + l2 < l3 + l4 (l2 – l1 ) + l3 > l4 (l2 – l1 ) + l4 > l3 Rearranging terms l1 + l2 < l3 + l4 l1 + l4 < l3 + l2 l1 + l3 < l4 + l2

5 Full rotation of link(4)
Summary of geometrical conditions for full rotation of link 2 l1 + l2 < l3 + l4 (l2 – l1 ) + l3 > l4 (l2 – l1 ) + l4 > l3 Interchange subscripts 2 and 4 l1 + l4 < l3 + l2 (l4 – l1 ) + l3 > l2 (l4 – l1 ) + l2 > l3 Rearranging terms l1 + l4 < l2 + l3 l1 + l2 < l3 + l4 l1 + l3 < l4 + l2 Identical with (2)!!!

6 Full rotation of link (3)
4 5 l3 6 2 1 Construct a six bar mechanism. The two links are parallel to, and hence equal in length to, 2 and 3. Hence irrespective of the configuration of 4, the four bar 2356 system remains a parallelogram. As per construction, complete rotation of 6 implies complete rotation of 3.

7 Full rotation of link (3)
4 5 l2 6 2 1 Consider the 4 bar system 6541. Note that the motion of this mechanism is independent of 2 and 3 which with 6 and 5 form a continuously changing parallelogram. Also note that we are effectively replacing 2 by 3 and 3 by 2 in this mechanism. Hence a new set of conditions for full rotation of 6, and hence of 3, may be obtained by interchanging the subscripts 2 and 3 in the first set of equations. The explanation follows.

8 Full rotation of link (3)
4 5 l2 6 2 1 First we look at the links in terms of their roles. In the new mechanism 6 is input in place of 2, 5 is coupler in place of 3, 4 is output in place of 4 (unchanged). Hence we first replace all l2 by l6, all l3 by l5 , all l4 by l4 in the 3 inequations obtained earlier. l1 + l6 < l5 + l4 (l6 – l1 ) + l5 > l4 (l6 – l1 ) + l4 > l5

9 Full rotation of link (3)
4 5 l2 6 2 1 Now we look at the links in terms of their lengths. l6 = l3, l5 = l2 , l4 = l4. But we have already substituted l2 = l6, l3 = l5 , l4 = l4 in the 3 inequations. Hence effectively l2 => l3, l3 => l2 , l4 = l4 in the 3 inequations. l1 + l3 < l2 + l4 (l3 – l1 ) + l2 > l4 (l3– l1 ) + l4 > l2 l1 + l6 < l5 + l4 (l6 – l1 ) + l5 > l4 (l6 – l1 ) + l4 > l5

10 Full rotation of link(3)
Summary of geometrical conditions for full rotation of link 3 l1 + l3 < l2 + l4 (l3 – l1 ) + l2 > l4 (l3– l1 ) + l4 > l2 Rearranging terms l1 + l3 < l4 + l2 l1 + l4 < l2 + l3 l1 + l2 > l3 + l4 Identical with (2) again!

11 Full rotation of links (2), (3) & (4)
l4 + l3 > l1 + l2 ………. (1) l3 + l2 > l1 + l4 ………. (2) l2 + l4 > l1 + l3 ………. (3) Add (1) and (2) l3 > l1 Add (2) and (3) l2 > l1 Add (3) and (1) l4 > l1 link1 is the shortest link. Sum of l1 and any other link is smaller than the sum of any other link. Hence l + s < p + q

12 Hence link 3 cannot rotate fully about link 2
Rotation of link 3 about 2 Extreme configuration. If this configuration is reached, further anticlockwise rotation of link 3 is just feasible without snapping link 4. 3 4 2 1 l1 + l4 > l2 + l3 But as shown earlier l3 + l2 > l1 + l4 Hence link 3 cannot rotate fully about link 2

13 Hence link 3 cannot rotate fully about link 4
Rotation of link 3 about 4 Extreme configuration. If this configuration is reached, further anticlockwise rotation of crank is just feasible without snapping the coupler. 3 4 2 1 l1 + l2 > l3 + l4 But as shown earlier l1 + l2 < l1 + l4 Hence link 3 cannot rotate fully about link 4

14 l + s < p + q where s is the shortest link
Conclusions l + s < p + q where s is the shortest link All other links rotate fully about s. Hence if the shortest link is grounded Both 2 and 4 rotate fully about the ground making it a Double Crank l + s < p + q where s is the shortest link Link 3 does not rotate fully about either 2 or 4. Hence if link 3 is grounded i.e. if the shortest link is made the coupler Neither 2 nor 4 will rotate fully about the ground making it a Double Rocker l + s < p + q where s is the shortest link If link 2 (or 4) is grounded 1 rotates fully about 2 (or 4) 3 rotates partially about 2 (or 4) making it a Crank Rocker

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