Chapter XXXII: Leather Belting (3)
The velocity of sliding which may be assumed in selecting a proper coefficient is directly proportional to the belt speed, and may safely be estimated at .01 of that speed. For a pair of pulleys we should have .01 on each pulley, and therefore .02 for slip. Few belts run slower than 200 or 300 ft. per minute, and consequently a slip of less than 2 or 3 ft. per minute need seldom be considered. Another point of difference which may possibly affect the coefficients obtained, is that, in Mr. Holman's case the same portion of belt surface was subject to continuous friction, while in ours, the friction was spread over the belt at successive portions as in actual work. This we consider a new and important feature of our experiments. As a matter of practical importance, care was taken to observe, as nearly as possible, the maximum slip which might safely take place before a belt would be thrown from its pulley. A number of observations taken throughout the experiments led to the final conclusion that 20 per cent. of slip was as much as could safely be admitted. This information has been found of value in cases where work is done intermittently by a fly-wheel and the belt has to restore the speed of the wheel. It cannot be said in regard to a maximum value of [phi] that any was determined or even indicated, although it is certain that the increase at high rates of slip becomes less rapid.
We have now seen that the driving power of a leather belt depends upon such a variety of conditions, that it would be manifestly impracticable if not impossible to correlate them all, and it is thought better to admit the difficulties at once than to involve the subject in a labyrinth of formulæ which life is too short to solve.
The relative value of pulley diameters may vary with different belts, and all that can be expected or desired is some general expression covering roughly the greatest number of cases. Our apparatus did not admit of extensive variations in this respect, and our attention was given principally to the question of slip.
The coefficients given in Table III. are remarkably high, and show a great superiority for the rawhide over tanned leather in point of adhesion. The belt in question was very soft and pliable, but a little twisted from use on a cone pulley where it had rubbed against one side. It is not desirable, on account of its soft and adhesive nature, to use this kind of belt where frequent shifting is required, and when used on cone pulleys it is liable to climb and stretch against the side of the cone; but for a plain straight connection, there seems to be little room for improvement. Table IV. contains the results of similar experiments upon an oak-tanned leather belt made by Chas. A. Shieren & Co. Here the coefficients are much smaller than those given in Table III., and there is quite a marked difference between the coefficients for 10 in. and 20 in. pulleys.
As before noticed, the outside temperature has its effect, and it is probable that much lower results would have been obtained had the experiments been made in the heat of midsummer. The high coefficients obtained, together with the rapid increase of tension, show that the pulling power of a long horizontal belt must, in many cases, be limited by its strength rather than by its adhesion.
Table V. gives the results of experiments upon a light planer belt at very slow and very high speeds. As would naturally be expected, much higher coefficients were found at the high speed on account of the greater velocity of sliding.
TABLE V.
OAK-TANNED LEATHER BELT 2" WIDE BY 3-16" THICK AND 30' 4" LONG, WEIGHING 4 LBS., ON 20" CAST-IRON PULLEYS. DRY AND SMOOTH, TAKEN FROM SERVICE ON PLANER.
Legend column headings: [A] = No. of Experi'nt.
[B] = Sum of Tensions. _T_ + _t_ Initial.
[C] = Sum of Tensions. _T_ + _t_ Working.
[D] = Sum of Tensions. _T_ + _t_ Final.
[E] = _T_ - _t_ Working.
[F] = _T_
[G] = _t_
[H] = _T_/_t_
[I] = Percentage of Slip.
[J] = Velocity of Slip in ft. per min.
[K] = Arc of contact.
[L] = Coefficient of Friction.
[M] = Duration of run at time of experiment.
[N] = Remarks.
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
[A]|[B]|[C]|[D]|[E]| [F] | [G]|[H] | [I]| [J] | [K]| [L]| [M] |[N]
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
429|100|110| | 40| 75 |35 |2.14| 1.2| .54|179°|.243| |18
430| |115| | 60| 87.5|27.5|3.18| 6.1| 2.75|178 |.372| |r.
431| |118| | 70| 94 |24 |3.92|16.5| 7.42|178 |.440| |p.
432| |105| | 20| 62.5|42.5|1.47| .3| .14|179 |.123| |m.
433| |112| | 50| 81 |31 |2.61| 3.5| 1.57|178 |.309| |
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
435|200|204| | 40|132 |82 |1.61| .2| .09|180 |.152| |
436| |206| | 60|133 |73 |1.82| .7| .32|180 |.191| |
437| |208| | 80|144 |64 |2.25| 1.8| .81|179 |.260| |
438| |210| |100|155 |55 |2.82| 3.7| 1.66|179 |.332| |
439| |212| |120|166 |40 |3.61| 7.7| 3.47|179 |.411| |
440| |215| |140|177.5|37.5|4.73|18.4| 8.28|179 |.497| |
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
442|100|110| | 60| 85 |25 |3.40| .3| 7.12|178 |.394| |950
443| |120| | 80|100 |20 |5 | .7| 16.62|178 |.518| |r.
445| |125| | 90|107.5|17.5|6.14| 3 | 71.25|177 |.587|Start.|p.
446| |125| | 90|107.5|17.5|6.14|25 |593.7 |177 |.587|min. |m.
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
448|200|200| | 80|140 |60 |2.33| .4| 9.5 |179 |.271| |
449| |200| |100|150 |50 |3 | .5| 11.87|179 |.352| |
450| |195|175|120|157.5|37.5|4.20| .8| 19 |179 |.459| |
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
451|150|175| |120|147.5|27.5|5.36| .9| 21.38|178 |.540| |
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
452|135|160| |120|140 |20 |7 |20 |475 |178 |.626| |
---+---+---+---+---+-----+----+----+----+------+----+----+------+---
It may here be mentioned that the sum of the tensions was the horizontal pressure of the belt against the pulleys, and that no allowance was necessary for the effect of the centrifugal force. At the speed here used, the tension indicated in the belt at rest was about 50 lbs. greater than when in motion.
TABLE VI.
SHOWING THE AVERAGE COEFFICIENT OF FRICTION AND VELOCITY OF SLIP FOR A NUMBER OF EXPERIMENTS IN WHICH THE SLIP APPROXIMATED 2 PER CENT.
-------------------------------------+--------------+-----------------
No. exper'ts in av'ge. | |
|Percentage of Slip. | |
| |Veloc. of Sl. in ft. per m. | |
| | |Coefficient of Fric- | |
| | |tion. | |
| | | | Belt. | Pulleys. | Remarks.
--+----+-----+-----+-----------------+--------------+-----------------
3|1.4 | 5.6 | .661|5-1/2" old belt. |20" diam. |Belt in nor.
| | | |Table I |pap. cov'd |w'k'g con.
--+----+-----+-----+-----------------+--------------+
2|1.7 | 6.8 | .44 |5-1/2" old belt. |20" di. | " "
| | | |Table I |cast-iron sur.|
--+----+-----+-----+-----------------+--------------+-----------------
2|1.55| 6.2 | .575|5-1/2" old belt. |20" di. |Belt dressed
| | | |Table I |cast-iron sur.|with "Beltiline."
--+----+-----+-----+-----------------+--------------+-----------------
5|1.7 | 6.8 | .452|2-1/4" dbl. belt.|20" di. |B't dry as us.
| | | |Table II |cast-iron sur.|on plan'r.
--+----+-----+-----+-----------------+--------------+-----------------
2|1.5 | 6 | .818|2-1/4" dbl. belt.|20" di. |Belt dressed
| | | |Table II |cast-iron sur.|with "Sankey's
| | | | | |Life of Leather."
--+----+-----+-----+-----------------+--------------+-----------------
2|1.7 | 6.8 |1.38 |4" r´hide b. |20" di. |Belt in nor.
| | | |Table III |cast-iron sur.|w'k'g con.
--+----+-----+-----+-----------------+--------------+
11|1.8 | 3.6 | .861|4" r´hide b. |10" diameter. | " "
| | | |Table III | |
--+----+-----+-----+-----------------+--------------+
1|2 | .45| .432|4" r´hide b. |10" diameter. | " "
| | | |Table III | |
--+----+-----+-----+-----------------+--------------+
1|1.9 | .86| .691|4" r´hide b. |20" diameter. | " "
| | | |Table III | |
--+----+-----+-----+-----------------+--------------+
7|1.94| 3.88| .617|4" o.tan'd b. |10" diameter. | " "
| | | |Table IV | |
--+----+-----+-----+-----------------+--------------+
4|1.85| 7.40| .906|4" o.tan'd b. |20" diameter. | " "
| | | |Table IV | |
--+----+-----+-----+-----------------+--------------+-----------------
2|1.5 | .67| .251|2" o.tan'd b. |20" diameter. |B't dry as us. on
| | | |Table V | |plan'r.
--+----+-----+-----+-----------------+--------------+
2| .8 |38 | .529|2" o.tan'd b. |20" diameter. | " "
| | | |Table V | |
--+----+-----+-----+-----------------+--------------+-----------------
The conclusion to be drawn from this series of experiments is the great importance of high speed in the economy of belt transmission. The friction of belts on pulleys is evidently dependent on the velocity of sliding, and, as a general rule, the greater the velocity the greater the friction. There are but few apparent exceptions to this rule, and investigation of them has led to the inference that in all such cases, the condition of the belt or pulley surface had undergone a change either by heating or by deposit from the belt on the pulley. The percentage of slip is the measure of the power lost in transmission by the belt itself, and the higher the speed the less this becomes. There is a limit, however, to the power which may be transmitted as the speed is increased, and this limit is caused by the reduction in pressure against the pulley arising from the action of centrifugal force.
This point has been clearly demonstrated in a paper read before this Society by Mr. A. F. Nagle on the "Horse Power of Leather belts,"[43] and the formula there developed is written thus:
_HP_ = _CVtw_(_S_ - .012_V_^{2}) ÷ 550, (1.)
in which _C_ is a constant to be determined from the arc of contact and coefficient of friction as expressed in the equation:
_C_ = 1 - 10^{-.00758_f[alpha]_}, (2.)
_V_ = velocity of belt in feet per second.
_t_ = thickness of the belt in inches.
_w_ = width " "
_S_ = working strength of leather in lbs. per square inch.
_f_ = coefficient of friction.
_[alpha]_ = arc of contact in degrees.
[43] Transactions A. S. M. E., Vol. II., page 91. See also Mr. Nagle's
Tables I., II., and III., in Appendix VI. to this paper for values of
_C_ and _H.P._
The velocity at which the maximum amount of power can be transmitted by any given belt is independent of its arc of contact and coefficient of friction, and depends only upon the working strength of the material and its specific gravity.
From equation (1.) we obtain for the maximum power of leather belts the condition:
_____
_V_ = \/28_S_, (3.)
and for any other material whose specific gravity is _y_, we find
____
/_S_
_V_ = \ / ---
\/ _y_
The coefficient of friction .40, adopted by Mr. Nagle, appears from these experiments to be on the safe side for all working requirements, except in cases where dry belts are run at slow speeds.
If we assume 2 per cent. as the greatest allowable slip, and select within this limit the coefficient corresponding to the nearest approximations to it, we can form some idea of the coefficients which can be relied upon at different speeds.
Table VI. gives the average results obtained for this maximum allowance of slip, and shows an extreme variation in the coefficient of friction from .251 for a dry oak-tanned belt at the slow speed of 90 feet per minute to 1.38 for a rawhide belt at the moderate speed of 800 feet per minute.
For continuous working, it is probable that the coefficient 1.38 is too high, but still it is certain that a coefficient of 1.00 can be steadily maintained for an indefinite length of time, and we may say that in actual practice the coefficient of friction may vary from .25 to 1.00 under good working conditions. This extreme variation in the coefficient of friction does not give rise, as might at first be supposed, to such a great difference in the transmission of power. It will be seen by reference to formula (1.) that the power transmitted for any given working strength and speed is limited only by the value of _C_, which depends upon the arc of contact and the coefficient of friction.
For the usual arc of contact, 180°, the power transmitted when _f_ = .25 is about 24 per cent. less than when _f_ = .40, and when _f_ = 1.00, the power transmitted is about 33 per cent. more, from which it appears that in extreme cases the power transmitted may be 1/4 less or 1/3 more than will be found from the use of Mr. Nagle's coefficient of .40.
TABLE VII.
SHOWING THE TORSIONAL MOMENT IN LBS. REQUIRED TO OVERCOME JOURNAL FRICTION AND OTHER INTERNAL RESISTANCES, FOR BELTS AT VARIOUS SPEEDS AND TENSIONS ON DIFFERENT ARRANGEMENTS OF PULLEYS.
------+-----+-------+-----+-----+-----+------+-------------+--------------
No. of|Ten- |Moment |Dia- |Revo-|Width|Thick-| |
exper-|sion.|in inch|meter|lut's| of | ness | Manner of |
im'nt.|_T_ +| lbs. | of |per |Belt.| of | Driving. | Remarks.
| _t_ | |pul- |min. | |Belt. | |
| | |leys.| | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
1 | 100| 20 | 20" | 160 | 6" |7/32" |Straight open|
3 | 300| 25 | | | | |belt. |
5 | 500| 30 | | | | | |
7 | 700| 35 | | | | | |
10 | 1000| 45 | | | | | |
45 | 100| 15 | | | | | |
47 | 300| 22.5 | | | | | |
49 | 500| 27.5 | | | | | |
51 | 700| 35 | | | | | |
54 | 1000| 50 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
163 | 100| 17.5 | 20" | 160 | 4" |9/32" |Straight open|
165 | 300| 25 | | | | |belt. |
167 | 500| 30 | | | | | |
169 | 700| 35 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
194 | 100| 17.5 | 10" | 160 | 4" |5/16" |Straight open|
196 | 300| 27.5 | | | | |belt. |
198 | 500| 40 | | | | | |
200 | 700| 55 | | | | | |
202 | 900| 70 | | | | | |
203 | 1000| 80 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
327 | 100| 20 | 10" | 18 | 4" |5/16" |Straight open|
328 | 1000| 80 | | | | |belt. |
393 | 100| 20 | | | | | |
394 | 1000| 100 | | | | | |
395 | 600| 60 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
405 | 100| 20 | 20" | 18 | 4" |9/32" |Straight open|
406 | 1000| 160 | | | | |belt. |
407 | 600| 100 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
428 | 100| 20 | 20" | 18 | 2" |9/32" |Straight open|
434 | 200| 25 | | | | |belt. |
------+-----+-------+-----+-----+-----+------+-------------+--------------
441 | 100| 25 | 20" | 950 | 2" |3/16" |Straight open|
447 | 200| 30 | | | | |belt. |
------+-----+-------+-----+-----+-----+------+-------------+--------------
453 | 100| 25 | 20" | 160 | 6" |7/32" |Crossed belt.|14' 6" between
454 | 500| 60 | | | | | |pulleys.
455 | 1000| 110 | | | | | |14' 6" bet.
| | | | | | | |pul'ys.
------+-----+-------+-----+-----+-----+------+-------------+--------------
459 | 100| 15 | 20" | 160 | 6" |7/32" |Straight open|14' 6" between
460 | 500| 25 | | | | |belt. |pulleys.
461 | 1000| 65 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
462 | 100| 25 | 20" | 160 | 6" |7/32" |Straight open|With 8"
463 | 500| 60 | | | | |belt. |tightener.
464 | 1000| 110 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
465 | 100| 45 | 20" | 160 | 6" |7/32" |Crossed belt.|8 feet between
466 | 500| 105 | | | | | |pulleys.
467 | 1000| 180 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
470 | 100| 25 | 20" | 160 | 6" |7/32" |Quarter turn |
471 | 500| 80 | | | | |belt on 16" |
472 | 750| 145 | | | | |diameter mule|
473 | 1000| 250 | | | | |pulleys. |
474 | 750| 170 | | | | | |
475 | 500| 110 | | | | | |
476 | 1000| 220 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
477 | 1000| 140 | 20" | 160 | 6" |7/32" |Quarter turn |Freshly oiled.
478 | 750| 100 | | | | |belt on 16" |
479 | 500| 70 | | | | |diameter mule|
480 | 100| 20 | | | | |pulleys. |
481 | 50| 60 | 20" | 160 | 6" |7/32" |Quarter turn |Belt rub.
482 | 25| 120 | | | | |on 16" mule |against low.
| | | | | | |pulleys. |guide m. pul.
------+-----+-------+-----+-----+-----+------+-------------+--------------
483 | 100| 20 | 20" | 160 | 6" |7/32" |Quarter turn |Well oiled,
484 | 500| 50 | | | | |on 16" mule |after a run of
485 | 750| 70 | | | | |pulleys. |2 hrs. at _T_
486 | 1000| 105 | | | | | |+ _t_ = 100.
------+-----+-------+-----+-----+-----+------+-------------+--------------
495 | 250| 30 | 20" | 160 | 6" |7/32" |Half turn |
496 | 500| 50 | | | | |belt on 16" |
497 | 750| 90 | | | | |mule pulleys.|
498 | 1000| 170 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
503 | 1000| 260 | 20" | 160 | 6" |7/32" |Quarter |10 feet
504 | 750| 190 | | | | |twist. |between
505 | 500| 130 | | | | | |pulleys.
506 | 250| 80 | | | | | |
507 | 100| 30 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
513 | 100| 50 | 20" | 160 | 6" |7/32" |Quarter |7' 6" between
514 | 250| 105 | | | | |twist. |pulleys.
515 | 500| 200 | | | | | |
516 | 750| 290 | | | | | |
517 | 1000| 380 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
523 | 100| 25 | 20" | 160 | 4" | 1/4" |Quarter |10 feet
524 | 250| 50 | | | | |twist. |between
525 | 500| 95 | | | | | |pulleys.
526 | 750| 145 | | | | | |
527 | 1000| 210 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
528 | 100| 65 | 20" | 160 | 4" | 1/4" |Quarter |6 feet between
529 | 250| 135 | | | | |twist. |pulleys.
530 | 500| 245 | | | | | |
531 | 750| 380 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
533 | 100| 25 | 20" | 160 | 6" |7/32" |Quarter |16' 6" between
534 | 250| 40 | | | | |twist. |pulleys.
535 | 500| 75 | | | | | |
536 | 750| 105 | | | | | |
537 | 1000| 165 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
539 | 1000| 130 | 20" | 160 | 6" |7/32" |Quarter twist|7' 6" between
540 | 750| 110 | | | | |with 16" |pulleys.
541 | 500| 90 | | | | |diameter |
542 | 250| 60 | | | | |carrying |
543 | 100| 40 | | | | |pulley. |
544 | 100| 30 | | | | | |
545 | 250| 55 | | | | | |
546 | 500| 90 | | | | | |
547 | 750| 120 | | | | | |
548 | 1000| 170 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
569 | 100| 25 | 20" | 160 | 6" |7/32" |Straight open|
571 | 500| 55 | | | | |belt. |
572 | 750| 70 | | | | | |
573 | 1000| 90 | | | | | |
------+-----+-------+-----+-----+-----+------+-------------+--------------
The percentage of slip is the most important factor affecting the efficiency of belt transmission, but in addition to this we have journal friction, the resistance of the air, and with crossed belts the friction of the belt upon itself. These have been termed internal resistances, and their values for some of the most common arrangements of pulleys are given in Table VII. From this table it appears that the moment required to run a straight belt varies from 15 to 25 inch lbs. at 100 lbs. tension for all speeds. At 160 revolutions per minute and 1,000 lbs. tension, the required moment varied from 45 to 90 inch lbs., and at 18 revolutions per minute and at the same tension it varied from 80 to 150 inch lbs.
From the average of these quantities we find the moment of resistance to be expressed by the following formulæ for straight open belts between 2" journals:
At 160 r. p. m.:
_M_ = .053_S_ + 14.7, (5.)
At 18 r. p. m.:
_M_ = .11_S_ + 9, (6.)
in which
_M_ = moment of resistance in inch lbs.
_S_ = sum of tensions.
When a crossed belt does not rub upon itself, the resistance is the same as for an open belt.
The resistance offered by the introduction of carrying pulleys and tighteners is appreciable, and depends upon the pressure brought to bear against their journals. If the belt rubs against the flanges of the carrying pulleys, the resistance is very much increased, and this is often liable to occur in horizontal belts from a change of load. The friction on journals of carrying pulleys may be estimated by the formulæ already given if we substitute for _S_ the pressure against their journals. In the experiments which were made upon internal resistances, the greatest resistance was offered by a quarter-twist belt 6 feet between journals on 20-inch pulleys.
The equation for this belt may be written:
_M_ = .35_S_ + 58, (7.)
but the introduction of a carrying pulley reduced the resistance to no more than what might be expected from the same number of journals with a straight belt.
With quarter-twist belts the resistance lies chiefly in slip, which occurs as the belt leaves the pulleys, and this naturally depends upon the distance between journals in terms of the diameters of the pulleys.
The effect of time upon the tension of the belt used in Table VIII. is plainly shown by experiments 588 to 613 inclusive, between which the pulleys remained at a fixed distance apart, and the belt slowly stretched from a tension of 380 to 280 lbs.
To estimate the efficiency of belt transmission for an average case, we may assume 40 in. lbs. as the moment of internal resistance for a belt whose tension is 500 lbs. and 40 in. lbs. statical moment = about 20 ft. lbs. per revolution. If the belt is transmitting 400 lbs. with two per cent. of slip on 20 in. pulleys, then .02 × 400 × 5 = 40 ft lbs. are lost per revolution in slip, making a total loss of 60 ft. lbs. per revolution.
TABLE VIII.
SHOWING THE INCREASE IN THE SUM OF THE TENSIONS ON A VERTICAL BELT 4" WIDE BY 1/4" THICK, AND 24 FT. LONG, ON 20" CAST-IRON PULLEYS, AT 120 R. P. M.
------+---------+-----------+-----+-----+--------+---------+----------
No. of| Scales | Tension | | | Incre- |Percen'e |
exper-+----+----+-----+-----+ | | m´nt |of Incre-| Date.
im'nt.| A. | B. |_T_ +|_T_ -| _T_ | _t_ |of _T_ +| ment. |
|[44]|[44]| _t_ | _t_ | | | _t_ | |
------+----+----+-----+-----+-----+-----+--------+---------+----------
578 | 93 | 101| 194 | 16 |105 | 89 | 0 | |5-15-1885.
579 | 70 | 142| 212 | 144 |178 | 34 | 18 | |
580 | 67 | 170| 237 | 206 |221.5| 15.5| 43 | |
581 | 66 | 180| 246 | 228 |237 | 9 | 52 | |
582 | 66 | 188| 254 | 244 |249 | 5 | 60 | .323 |
583 | 91 | 101| 192 | 20 |106 | 86 | -2 | |
------+----+----+-----+-----+-----+-----+--------+---------+----------
584 |202 | 210| 412 | 16 |214 |214 | 0 | |5-15-1885.
585 |167 | 250| 417 | 166 |292.5|292.5| 5 | |
586 |145 | 300| 445 | 310 |376.5|376.5| 33 | .171 |
587 |185 | 195| 380 | 20 |200 |200 | -32 | |
------+----+----+-----+-----+-----+-----+--------+---------+----------
588 |190 | 199| 380 | 0 |190 |190 | 0 | |5-18-1885.
589 |133 | 250| 393 | 214 |303.5| 89.5| 13 | .033 |
------+----+----+-----+-----+-----+-----+--------+---------+----------
590 |177 | 177| 354 | 0 |177 |177 | 0 | |5-19-1885.
591 |156 | 203| 359 | 94 |226.5|132.5| 5 | |
592 |138 | 235| 373 | 194 |283.5| 89.5| 19 | |
593 |135 | 250| 385 | 230 |307.5| 77.5| 31 | |
594 |128 | 275| 403 | 294 |348.5| 34.5| 49 | |
595 |125 | 300| 425 | 350 |387.5| 37.5| 71 | |
596 |123 | 325| 448 | 404 |426 | 22 | 94 | .333 |
597 |168 | 168| 336 | 0 |168 |168 | -18 | |
------+----+----+-----+-----+-----+-----+--------+---------+----------
598 |143 | 143| 286 | 0 |143 |143 | 0 | |5-25-1885.
599 |140 | 148| 288 | 16 |152 |136 | 2 | |
600 |130 | 160| 290 | 60 |175 |115 | 4 | |
601 |122 | 170| 292 | 196 |194 | 98 | 6 | |
602 |116 | 180| 296 | 28 |212 | 84 | 10 | |
603 |112 | 190| 302 | 156 |229 | 73 | 16 | |
604 |108 | 200| 308 | 184 |246 | 62 | 22 | |
605 |105 | 210| 315 | 210 |262.5| 52.5| 29 | |
606 |102 | 220| 322 | 236 |279 | 43 | 36 | |
607 |100 | 230| 330 | 260 |295 | 35 | 44 | |
608 | 99 | 240| 339 | 282 |310.5| 28.5| 53 | |
609 | 98 | 250| 348 | 304 |326 | 22 | 62 | |
610 | 98 | 260| 358 | 316 |337 | 21 | 72 | |
611 | 99 | 270| 369 | 342 |355.5| 13.5| 83 | |
612 |100 | 280| 380 | 360 |370 | 10 | 94 | .357 |
613 |140 | 140| 280 | 0 |140 |140 | -6 | |
------+----+----+-----+-----+-----+-----+--------+---------+----------
[44] Scales A recorded the reduction of the load on the testing device
for _vertical_ belts by the tension of the loose part of the belt
(_t_). Scales B, by that of the tight side of the belt (_T_).
The total power expended per revolution is about 2,000 ft. lbs., therefore .03 is lost.
Under light loads, the internal resistance, which is nearly constant in amount, may be a large percentage of the power transmitted, while under heavy loads the percentage of slip may become the principal loss.
It would be difficult to work out, or even to use, a general expression for the efficiency of belt transmission, but, from the foregoing, it would seem safe to assume that 97 per cent. can be obtained under good working conditions.
When a belt is too tight, there is a constant waste in journal friction, and when too loose, there may be a much greater loss in efficiency from slip. The allowance recommended of 2 per cent. for slip is rather more than experiment would indicate for any possible crawl or creep due to the elasticity of the belt, but in connection with this, there is probably always more or less actual slip, and we are inclined to think that in most cases this allowance may be divided into equal parts representing creep and slip proper. Under good working conditions, a belt is probably stretched about 1 per cent. on the tight side, which naturally gives 1 per cent. of creep, and to this we have added another per cent. for actual slip in fixing the limit proposed.
The indications and conclusions to be drawn from these experiments are:
1. That the coefficient of friction may vary under practical working conditions from 25 per cent. to 100 per cent.
2. That its value depends upon the nature and condition of the leather, the velocity of sliding, temperature, and pressure.
3. That an excessive amount of slip has a tendency to become greater and greater, until the belt finally leaves the pulley.
4. That a belt will seldom remain upon a pulley when the slip exceeds 20 per cent.
5. That excessive slipping dries out the leather and leads toward the condition of minimum adhesion.
6. That rawhide has much greater adhesion than tanned leather, giving a coefficient of 100 per cent. at the moderate slip of 5 ft. per minute.
7. That a velocity of sliding equal to .01 of the belt speed is not excessive.
8. That the coefficients in general use are rather below the average results obtained.
9. That when suddenly forced to slip, the coefficient of friction becomes momentarily very high, but that it gradually decreases as the slip continues.
10. That the sum of the tensions is not constant, but increases with the load to the maximum extent of about 33 per cent. with vertical belts.
11. That, with horizontal belts, the sum of the tensions may increase indefinitely as far as the breaking strength of the belt.
12. That the economy of belt transmission depends principally upon journal friction and slip.
13. That it is important on this account to make the belt speed as high as possible within the limits of 5,000 or 6,000 ft. per minute.
14. That quarter-twist belts should be avoided.
15. That it is preferable in all cases, from considerations of economy in wear on belt and power consumed, to use an intermediate guide pulley, so placed that the belt may be run in either direction.
16. That the introduction of guide and carrying pulleys adds to the internal resistances an amount proportional to the friction of their journals.
17. That there is still need of more light on the subject.
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Modern Machine-Shop Practice, Volumes I and IIChapter XXXII: Leather Belting (3)
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