CA1138709A - Automatic bale ejection drive - Google Patents

Automatic bale ejection drive

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Publication number
CA1138709A
CA1138709A CA000396021A CA396021A CA1138709A CA 1138709 A CA1138709 A CA 1138709A CA 000396021 A CA000396021 A CA 000396021A CA 396021 A CA396021 A CA 396021A CA 1138709 A CA1138709 A CA 1138709A
Authority
CA
Canada
Prior art keywords
shaft
drive
frame
rotary
driven
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
CA000396021A
Other languages
French (fr)
Inventor
Charles A. Parrish
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Sperry Corp
Original Assignee
Sperry Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US06/025,170 external-priority patent/US4218866A/en
Priority claimed from CA348,413A external-priority patent/CA1126079A/en
Application filed by Sperry Corp filed Critical Sperry Corp
Priority to CA000396021A priority Critical patent/CA1138709A/en
Application granted granted Critical
Publication of CA1138709A publication Critical patent/CA1138709A/en
Expired legal-status Critical Current

Links

Abstract

ABSTRACT OF THE DISCLOSURE
In a crop roll forming machine having a reversibly rotatable bale forming means and a drive means there is provided a control means affixed to the frame movable between at least a first position and a second position for co-operative interaction with the drive means and the bale forming means to selec-tively cause the bale forming means to cease being driven in a first direction and cause it to be driven in an opposing second direction when the control means is moved from the first position to the second position so that a completed crop roll is ejected rearwardly from the machine onto the ground.

Description

~1.3~7~3 This application is a division o~ application 348,413, filed March 26, 1980.
BACKGROUND OF THE INVENTION
This invention relates to a machine for forming large cylindrical bales of crop materialJ commonly called round bales, in a roll forming region above the ground. More specifically, it is concerned with apparatus which per-mits the completed bale to be discharged from the roll forming region onto the ground by the automatic reversing o-f the bale forming means or upper apron.
Historically, it has been the custom to harvest forage crops by mowing the particular crop, letting it dry in the field, forming the dried crop material into windrows and passing a hay-baling machine over and along these windrows to form the crop material into rectangular bales. Recent practice has shown that the formation of crop material into large compact rolls, rather than rectangular bales as formerly done, permits the crop material to be deposited in roll form and left in fields for extended periods of time. The abilit~ to leave these rolled bales in fields obviates the additional steps required in the traditional rectangular baling process of gathering the bales and transporting them to a storage area protected from the elements. This new technique of forming large round bales has created a baling system that can be conducted by one person.
This is in marked contrast to the traditional practice of forming rectangular bales where the labor of several people was required to effect the cutting, dr~-` ing, windrowing, baling, gathering and storing of the crop material.
Several methods of forming compact cylindrical rolls of crop material have evolved through the yearsO The most successful of these methods involves the forming of crop rolls by picking up a swath or windrow of material from the field and directing it onto a lower conveyor. This conveyor transports the ma-'~

., .3B7(~9 terial to a roll or bale forming region ~here an upper apron or flight of belts, usually positioned above and adjacent the conveyor, moves in a suitable direction ` to rotate the crop material with which it is brought into contact. The increa-; sing popularity of these crop roll forming machines has seen their use broaden from rolling wintering forage for livestock to rolling high protein crops, such -~ as alfalfa, for dairy livestock. Therefore, these machines are the focal point of many ideas for developing both labor-saving and time-saving apparatus.
Crop roll forming machines that produce large cylindrical crop rolls utilize some form of a tailgate which is pivotally mounted to the frame of the machine. The tailgate is elevated upon completion of the crop roll or when it is desired to discharge a less than full size bale for any of a variety of reasons from the roll forming regionO ~he tailgate follows a predetermined arc of tra-vel, generally pivoting about a fixed point on the frame.
Prior crop roll forming machines require the operator, who is located in the operator's area of a prime moving vehicle, such as a tractor, to perform . a series of manual operations after completing the formation of the large crop roll and prior to recommencing the roll forming process or cycle. Generally these manual steps require the stopping of the roll forming machine and the towing tractor, the initiation of the wrapping of the completed crop roll, stopping the power takeoff shaft from the tractor, opening the tailgate, restarting the power takeoff shaft to po~er the roll forming machine's components to assist in dischar-ging the bale, closing the tailgate and finally, restarting the forward motion of the tractor and the roll forming machine. Obviously, one way to save time is to reduce the number of manual steps which the roll forming machine operator must take after the completion of the formation of each bale.
The current commercial crop roll forming machines generally discharge :
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the completed crop material package f~om the roll forming region either by pivo-ting the tailgate rearwardly and up~ardly, thereby permitting the bale to drop directly onto the ground, or by first elevatlng the tailgate and then activatingthe conveyor lower apron which forms the lower limit of the roll forming region.In the latter case, the lower apron is activated by the operator's restarting the po~er takeoff shaft, which previously has been disengaged, thereby causing the bale to be urged rearwardly out of the machine and onto the ground. In both cases, since these large cylindrical compact bales can vary in weight from as much as 850 to 1500 pounds or more, quite frequently a bale comes to rest at a position which is within the arc followed by the tailgate when it travels from its open or raised position to its closed or shut position. This means that for both techniques of discharging a completed bale the discharged bale can interfere with the tailgate as it is closed prior to the machine's continuing across the field and initiating the rolling of another bale. In addition then to requiring ~` the operator to take certain manual steps every time a completed bale is to be discharged, there is the additional time consuming possibility that the roll for-ming machine will have to be pulled forward so that the tailgate can close with-out having the completed crop roll interfere with its arcuate path of travel.
The foregoing problems are solved according to the parent application 348,413 by providing drive means for discharging the completed crop roll automa-. tically with the raising motion of the tailgate. The drive means impart a suffi-ciently powerful ejective thrust to the completed crop bale as it exits the rollforming region to enable it to generally roll clear of the arcuate path of travel followed hy the tailgate as it closes. More importantly, the power takeoff shaftmay continuously be operated during the entire bale discharging sequence, thereby -- obviating the necessity for the time consuming steps of cutting off the power ~ -3-:
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1~3~7109 ' ":' takeoff shaft drlve and then reengaging it prior to discharge of the completed bale and the recommencing of the roll forming process.
The present invention relates to a drive system for this purpose.
SUMMARY OP T~le IN\leNTION
According to one aspect~ the present invention provides a drive system having a frame supporting the working element, a rotary powered drive source, and a reversible rotatably driven ~orking element which comprises:
a) a rotary driving shaft connected to the drive source and rotatably mounted to the frame;
b) a first driven shaft rotatably mounted to the frame;
c) a second driven reversible shaft rotatably mounted to the frame;
d) a first rotary drive transfer means interconnecting the driving shaft and the first driven shaft;
e) a second rotary drive transfer means interconnecting the driving shaft and the second driven reversible shaft to drive the working element and the second driven reversible shaft in a first direction;
f) a first rotatable tensioning means movably fastened to the frame for cooperatively interacting with the second rotary drive transfer means so that sufficient tension is selectively maintainable on the second rotary drive trans-fer means to permit the rotary driving shaft to drive the second driven reversi-:: ble shaft in the first direction;
g) second rotatable tensioning means pivotally fastened to the frameand for cooperatively interacting with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the rotary driving shaft to drive the first driven shaft, and h) lifting metns fastened to the frame and connected to the first ,'-'`

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: 113B709 rotatable tensioning means and the second rotatable tensioning means in such a manner tbat when actuated the lifting means moves the first rotatable tensioning and the second rotatable tensioning means so that the second rotary drive trans-fer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and the first rotary drive transfer means at a predeter-mined point in the movement of the second rotatable tensioning means causes rotary power to be transmitted to tbe second driven reversible shaft to drive the second driven reversible shaft and the working element in the opposing second : direction.
- 10 According to another aspect, the present invention provides, in a roll ~ forming machine for forming cylindrical bales o crop material having a generally ; ~ upright bile frame, a pickup mounted to the frame, bale forming means reversi-bly and rotatably mounted to the frame movable in a first direction and an oppo-. sing second direction, and a rotary powered drive means, the improvement which comprises a drive system having:
a) a rotary driving shaft connected to the drive means and rotatably mounted tg the frame;
b) a first driven shaft rotatably mounted to the frame connectable to the drive shaft;
~; 20 c) a second driven reversible shaft mounted to the frame connectable ~: to the driving shaft and the bale forming means;
.~ d) first rotary drive transfer means connectable to the driving shaft and the first driven shaft;
e~ second rotary drive transfer means connectable to the driving shaft and the second driven reversible shaft to drive the bale forming means and the second driven reversible shaft in the first direction;

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~3~ 9 ~) first tenslonlng means movably fastened to the rame and coopera-tive with the second rotary drive transfer means so that sufficient tension is selectively maintainable on the second rotary drive transfer means to permit thedriving shaft to drive the second driven reversible shat;
g) second tensioning means pivotally fastened to the frame and cooper-- ative with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the driving shaft to drive the first driven shaft;
; and - h) lifting means fastened to the frame and connected to the first tensioning means and the second tensioning means in such a manner that when actu-` ated the lifting means moves the first tensioning means and the second tensioning means so that the second rotary drive transfer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and at a pre-determined point in movement of the second tensioning means the first rotary drive transfer means causes rotary power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the bale forming means in the opposing second direction to eject a completed crop bale from the machine.
BRIEF DESCRIpTIQN OF THE DRAWINGS
In the accompanying drawings~ which illustrate exemplary embodiments of the present invention:
Figure 1 is a side elevational view of a crop roll forming machine attached to a partially illustrated tractor for towing and having the side shiel-: ding broken away to show a drive means for the upper apron;
; Figure 2 is a side elevational view of the roll forming machine with . the tailgate in the raised position diagrammatically illustrating the ejection :~ -6-. ., ,, :

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1~3B709 of a com~leted bale or crop roll R and the rela~ive po~ltion~ng o the components of the drive means used to e~fect ~he reverse movement of the upper apron;
Pigure 3 is an enlarged side elevational view o the drive means o the crop roll forming machine correspondlng to the components' positioning in Figure 1 with the tailgate closed and the bale being ~ormed;
Pigure 4 is a top plan view o the drive means and its components cor~
responding to their positioning in Figure l;
; Figure 5 is an enlarged side elevational view of the drive means of -- the crop roll forming machine ~ith its components positioned corresponding to the positioning shown in Figure 2 when the tailgate is raised effective to reverse the path of travel of the upper apron and eject a bale;
Figure 6 is a top plan vie~ of the drive means of Figure 5 with its components positioned to reverse the path o travel of the upper apron;
. Figure 7 is a sectional view ~aken along the lines 7-7 of Figure 1 showlng the input power takeof shaft and tbe main drive shaft coming from a gear-box on the roll forming machine leading to the drive means;
Figure 8 is an enlarged sectional view taken along the lines 8-8 of Figure 4 of-the main drive shaft imparting rotary motion to the upper apron of the bale forming means and the one way clutch mounted thereabout to disengage the drive to the lower apron or transport means;
Figure 9 is a sectional view taken along lines 9-9 of Figure 8; and '. Figure 10 is a sectional view taken along the lines 10-10 of Figure 2 ; illustrating the lifting means for the tailgate of the crop roll forming machine and its cooperative functioning with the tensioning or idler means utilized to effect the reversing of the upper apronO

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DET~r~B~ PESCRIPT~N 0~ THE pR~RRED EMBOD~M~NT
; Referring generally to the dra~lngs and in particular to Pigure 1, there is shown a general representation of the crop roll orming machine 10 of the type illustrated in United States Patent NoO 3,859,909 to Mast, dated January 14, 1975. The crop roll forming machin~ 10 is illustrated as being astened to atowing vehicle such as a tractor 11 wlth a power takeoff shaft 12 providing the rotary driving force for the mechanically operated components of the crop roll forming machine. The machine 10 is appropriately fastened via the towing hitch 14 mounted on the drat member 15 o the roll orming machine 10 to hitch member`-~ 10 16 of the tractor llo The tractor hydraulic lines 18 provide the necessary fluid from the tractor's hydraulic reservoir ~not shohn) for the hydraulically operated components of the roll forming machine 10. The drive means for the roll forming machine 10 is indicated generally by the numeral 19.
The roll forming machine 10, shown in Figures 1 and 2, comprises gener-ally an upper frame 20 and a lower frame 21. Lower frame 21 has mounted to its forward portion a pickup 22, normally tined, for collecting crop material deposi-ted in preformed windrows on a field and delivering it to the roll forming machine 10. The lower frame 21 includes a horizontal beam member 24 to which is suitablyfastened a floor 25. The floor 25 alternatively may be in the form of sheet . 20 metal with appropriate channels ~not shown~ having conveying chains running therealong, as illustrated in the aforementioned patent to Mast, or may consist of one conveyor belt rotatably mounted or any other means suitable for supporting crop material once it is delivered thereto by the pickup 220 Horizontal beam member 24 is connected at its forward end to a generally vertical beam member 26.
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~ diagonal brace member 28 is appropriatel~ fastened to the top of vertical beam : member 26 and extends downwardly and rearwardly until it joins fixedly with a :.
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1~3B~09 bracing member at the rearward portlon o the side sheet covering member 29. A
diagonal bracing member 30 extends upwardly and orwardly from the rear of side ~; sheet covering member 29 until it i9 flxedly~ astened to vertical member 26.
This lower frame 21 is mobil~ly mount0d to a pair o~ wheels 31 (only one of which is partially shown) via a suitable axl~ and support beam indicated generally by , the numeral 32.
Upper frame 20, shown in its elevated position in Figure 2 consists of a tailgate pivotable about its mounting point 34 at the top of vertical member 26. The tailgate or upper frame 20 is ormed from a series of interconnected bracing members 35, 36, 37~ 38 and 39 and is encased by side sheet members 40 and rear sheet members ~not shown). The upper frame 20 is raised and lowered by means of a pair of hydraulic cylinders 41, only one of which is shown. As best seen inFigure 2, the hydraulic cylinders 41 are mounted one on each side of the frame ~ith the barrel end 42 being fastened to the vertical beam member 26 of the lower frame 21 and the rod end 44 being fastened to the bracing member 35 of the upperframe 20. Suitable hydraulic lines ~not shown) are connected to opposite ends ofthe cylinders 41 to supply the fluid from the aforementioned tractor hydraulic ; reservoir for the selective activation of the hydraulic cylinders. As best seen in the elevated position of Figure 2, the upper frame has an elongated section 45 of the type shown and described in United States Patent No. 4,143, 505, assignedto the assignee of the present invention.
The upper bale forming means or upper apron 46 travels about the peri-phery of the roll forming machine 10 on a series of appropriately mounted idler sprockets 48, 49, 50, 51 and a drive sprocket ~not shown) mounted about a rever-sible rotatable shaft 520 Shaft 52 is suitably rotatably affixed or mounted to vertical frame member 260 A takeup mechanism indicated generally by the numeral _9_ .

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54 ~s fastened to bearing brackets 55, shown in ~igure 1 which are ln turn se-cured to the upper portion of vertical member 26. The takeup mechanism 54 further includes a pair of pivotable parallel arms 56, one belng position0d on each sideof the rame. The takeup mechanism plvota about a bearing 58 and thereby allows the upper apron 46 to be played out and about the periphery of expanding crop roll R. The upper apron 46 passes about sprockets 59 mounted on the end of each of the takeup arms 56. The upper apron 46 is preferably comprised of a pair of roller link chains (not shown) transversely spaced apart on opposing sides of the machine 10 which are interconnected by a series o spaced apart parallel crop engaging members which combine with the roller link chains to form a rotatable curvilinear crop engaging surface.
The details of the roll forming machine are not described in further detail at this point because they are old and well known to one of ordinary skill in the art. It should be noted, however, that the upper apron 46 could equally well comprise the aforementioned roller link chains, as well as a series of expandable belts or a series of rollers of cylindrical or hexagonal cross section arranged to form a movable curvilinear surface.
Drive means 19 is connected to the power takeoff shaft 12 of Figure 1 of the tractor 11 through a series of connecting shafts and gearboxes best shown j ` `:
in Figure 7. Connecting shaft 60 connects to the shaft 12 of Pigure 1 at a uni-versal joint 62 above draft member 15. Shaft 60 then joins input shaft 61 via another universal joint 630 Input shaft 61 is rotatably fastened to draft member; 15 via support bracket 64, best shown in Figures 1 and 20 Rearwardly of brackets 64 draft member 15 separates into two members 65 and 66 to generally form an A-frame type of structureG Members 65 and 66 are fixedly fastened to a horizontal support member 68, best shown in Figure 7, ~hich extends transversely across the 10-. .

387~9 ., . width of the roll forming machine 10, Input shat 61 then is joined with a right :: ~ angle gearbox 69 suitabl)~ fastened atop horizontal member 68. The rotary power is transferred within gearbox 69 through a set of bevel gears 70 to an output shaft 71. Shaft 71 extends through side member 72 and at ~ts extremity has moun-ted thereabout a multi-grooved drive sheave 74. The sheave 74 and output shaft 71 are enabled, as a result of the instant invention, to be continuously driven ~: during the operation of the roll forming machine 10 without disengaging the shaft . 12. The rotary power being transerred rom the power takeoff shaft 12 through -~ the gearbox 69 to the sheave 74 is transferred via drive belt 75 to sheave 76 and then to shaft 78 about which sheave 76 is mounted.
,.-, The transfer of rotary power is best seen in Figures 3 and 5 wherein in enlarged scale the drive means 19 is irst shown with the components in posi-;. tion to drive the upper apron 46 in a first direction utilized during the forma-~ tion of a bale and; secondly, in position to drive upper apran 46 in an opposing . ~
; second direction utilized during the discharge of the bale, respectively. In-`. teriorly of the sheave 76 shaft 78 has a s~rocket 79 mounted thereabout which is . s . connected via chain 80 to driven pickup sprocket 81 which is mounted about pickup . drive shaft 82. Shat 82 then drives the tined pickup 22 which is pivotally : mounted to the lower frame 21 o ~igures 1 and 2~
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Drive sheave 74 also has a second driving belt 84 mounted thereabout interiorly of the drive belt 75. Belt 84 is wrapped about multiply grooved ` driving sheave 85 which is mounted about a reversibly driven shaft 52 and which .; drives the upper apron 460 Brackets 77 and 106 have belt guide pins extending outwardly over sheaves 74 and 85, respectively, which aid in keeping belt 84 properly seated about its sheavesO Interiorly of multiply grooved sheave 85 and : coaxially mounted about shaft 52 is a sprocket 86 about which is wrapped a chain ~11-:
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1~39709 88. Chain 88 drives ~he lo~r apron 89, lllustrated ~n phantom in ~igures 1 and
2.
Drive belt 75 and driving belt 84 are maintained with the proper amount of tension to transmit rotary power from output shaft 71 via drlve ~heave ~` 74 to both sheave 76 and multiply grooved sheave 85 by means of a series of movable tensioning idlers. The relationship of these idlers to belts 75 and 84 during the roll forming cycle and the roll e~ection cycle are shown in ~igures 3 and S, respectively. Drive belt 75 is ~ensloned b~ a pair of rotatable idlers 90 and 91 which are movable separatel~ ~ith respect to each other. Idler 90 is rotatably mounted to arm 92 ~hicb is pivotally affixed to side sheet member 94 via bushing 9S and pin 96. Idler 91 is astened to an extensible support arm attached at the upper end to the tailgate 20 ~not sho~n in Figures 3 and 5) and ., .
~ is indicated generall~ by the numeral 98. A connecting link 93 is pivotally , ..
affixed to side sheet member 94 by bushing 97 and pin 103. On its opposing end link 93 rotatabl~ supports idler 91 by bushing 87 and pin 120. Driving belt 84 is tensioned by movable idler 99 ~hich is rotatably affixed to a second extensible support arm also attached at its upper end to the tailgate 20 and indicated generally by the numeral 100. Idler 90 i9 spring biased via spring 101 which is fastened via a suitable clevis 102 mounted to bracket 104. Bracket 104 is fixed-ly fastened to side sheet member 94. Spring 101 serves to keep belt 75 under the proper amount of tension to transmit rotary drive power when the upper frame or tailgate 20 is in the closed position and a crop roll R is being formed within the machine in a region commonly known as the bale forming regionO Spring 1O5J
anchored on one end to bracket 106, serves to relieve the tension on belt 84 by llfting idler 99 as the tailgate 20 is elevated beyond a predetermined point in its arcuate path to the raised or open position.

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` Extenslble support arms ~8 and 100 are shown in more detail in Figure `` 10. Arm 100 is fastened at lts upper end to bracing member 35 of the upper frame or tailgate ~0 by a stub pin 108 and bushing 109, both of which are inserted through a suitabl~ sized opening in coupling extension 110. Support arm 100 has an upper base member 111 with a spring 112 inserted within its hollow upper por-tionO The opposing end of arm 100 has inserted therein a telescoping portion 114 which has at its lower end a bracket 115 suitably fastened thereto. Idler 99 is rotatabl~ mounted about roller pin 116 ~hich passes through the legs of bracket 115, Spring 112 serves to keep sufficient tension via idler 99 on bolt 84 to permit the transfer of rotary drive po~er when the tailgate 20 is in the closed ` position. Support arm 98 similarly is mounted about pin 108 and bushing 109 at the upper portion of the base member ll8. Inserted within the hollowed lower end of base member 118 is the telescoping portion ll9o The lower portion of telesco-ping member 119 has a roller pin 120 fixed thereto and about which idler 91 is rotatably mounted. The most exterior or outboard end of roller pin 120 has con-- necting link 93 affixed theretoO The~telescoping portions of support arms 98 and 100 are movable within base members 118 and 111, respectively, to permit some lost motion to occur in the movement of the idlers 91 and 99 as the tailgate is raised. This permits the required amount of tension to be maintained on the belts 75 and 84 until certain predetermined points in the elevational path of the tailgate are reached. The arcuate movement of the tailgate, in conjunction ~ith spring 105, causes the idler 99 to be sufficiently raised to reduce the required tension to interrupt the transfer of the rotary drive power of belt 54. Belt 75 is continuously maintained under tension as the tailgate 20 is raised by the co-operative pivotal effect of idlers 90 and 91 and spring 101 so that rotary dri-ving force is continuously transferred from sheave 74 to sheave 76. As the 1~l313~C~9 tailgate continues to be raised towards its ully extended position, a second predetermined point is reached ~here the arm 98 is in a position which causes the idler 91 to pull the drive belt 75 sufficientl~ upwardly and rearwardly that it back wraps about multiply grooved sheave 850 The combined cooperative effect o~
idlers 90, 91) spring 101 and arm 98 creates greater tension on the back wrapped drive belt 75 when the tailgate is ln the raised position than when it is in the lowered or closed positionO The effect o this back wrapping will be further explained hereinafter.

, ;:A stop pin 121 is fastened to and extends outwardly from side sheet member 94 to engage a pivot arm 107, thereby limiting the amount of upward rota-tional movement of idler 99 when the tailgate is in the raised position. A sup-port shelf 122 is suitably affixed to side sheet member 94 to support the lower .:, .
; b,~ run of driving belt 84 when the tailgate is raised beyond the predetermined point ,:, `that removes the tension from driving belt 84 to interrupt the transfer of rotary .,, po~er between the drive sheave 74 and multiply grooved sheave 85.

, Figure 11 shows an alternative embodiment of the drive means indicated generally by the numeral 19 in Figure 1. The rotary power is transferred to ~;shaft 71 and then to sheaves 74 and 85 via driving belt 84 as explained previous-, ly. In this embodiment, however, drive belt 75 is connected directly to sheave 76 ~not shown) without the use of any intermediate idlers. Driving belt 84 is tensioned by idler 99 fastened to the tailgate in the manner previously described.
Shaft 52 has a support arm 139 pivotall~ mounted thereabout. On its opposing end support arm 139 has rotatably mounted a sheave 140 mounted about a roller pin 141.
Belt 142 passes about sheave 140 on the freely moving end of support arm 139 and a sheave 144 on the opposing pivoting base endO Support arm 139 is movably af-fixed to lifting arm 145 at a point suitably located along its length. Lifting :

1~38~()9 arm 145 is astened to the tallgate about stub pin 108 ~not shown) coaxlally with extensible support arms 100 ~not shown) and hydraulic cylinder 41 ~not shown).
This mounting relationship is essentiall~ as illustrated in Figure 10 with the exception of lifting arm 145 and its accompanying elements replacing extensible arm 98 and its elementsO Support arm 139 and lifting arm 145 are biased down-, .~
wardly by spring 146 which is fastened via bracket 148 to side sheet member 94.
Sheave 140 on the pivoting end of support arm 139 is designed to con-tact the cast iron frictional extended surface 149 of sheave 74, as shown in Figure 12. Preferably sheave 140 has rubber coated flanged sides or cylindrical tire-type edge extensions which would increase the friction between the engagingsurfaces of the sheaves 140 and 74 to promote the transfer of rotary power when the lifting arm 145 is raised by the up~ard motion o the tailgate 20. The rai-sing of arm 145 causes support arm 139 to pivot upwardly and bring the sheave 140 and its coworking belt 142 into contact with the surface 149 of sheave 74.
If desired, a lost motion design, such as that shown in extensible support arm r~ 100 in Figure 10, could be utilized in lifting arm 145.
Shaft 52 has a one-way clutch 124 mounted about it inwardly of multi-ply grooved sheave 85. Clutch 124, best shown in ~igures 8 and 9 is fastened viavolts 125 to the hub 126 of sheave 850 The interior of hub 126 has a pawl or dog: 20 129 fastened to it by pin 130. The pawl is spring biased by compression spring 131 inserted in a suitable slot cast in the hub. The seats within the sheave 85 - and has ratcheting 128 circumferentially cast about the entire exterior circum-ference. The ratche*ing 128 cooperates with pawl 129 so that when the sheave 85 is rotated in a counterclockwise direction, the clutch is disengaged and the pawl 129 rides over the ratchets 128. When the sheave 85 turns and rotates in a clockwise direction, the pawl 129 engages ratchet 128 and causes the sprocket 86, 1131~;'()9 which is bolted or plnned to the clutch 124, to correspondingly rotate. The rota-ti~n of ~procket 86 causes lo~er apron chain 88 to be driven and accordingly drives the lower apron 89, brie~ly shown in ~igures 1 and 2. The end of shaft 52- :~ is splined and interfits wlth the splined center of sheave 85. The sheave 85 i9 ; securely fastened to the exterior o shaft 52 by a locking bolt 135 and washer - ~` 136, or in another suitable fashion.
` Alternately, the interior of hub 126 could be composed of ratcheting ~:; 128 circumferentially cast about the entire interior circumference of the sheave , ~ -, 85~ The ratcheting 128 would then cooperate with the pawl or dog 129 fastened to the clutch by a pin 130~ In this configuration the sheave 85 is rotated in a clockwise direction, the clutch would be disengaged and the pawl 129 would ride ,.. . .
over the ratchets 128. A driving relationship would exist between the ratcheting-~ 128 and the pawl 129 when the sheave 85 turns in a counterclockwise direction.
~j In operation the roll forming machine 10 is towed across a field that -~ ~ has arranged thereon in preformed windrows a suitable crop material that has been ; previously cut. The tined pickup 22 gathers the windrowed crop material, picks it ' up from the ground and transports it upwardly into the forward portion of the floor 25. The crop material is then transported by the lower apron 89 rearwardlyinto contact with the moving upper apron 460 The upper apron 46 causes the crop ~ 20 material to be rolled at the rear of the floor 25 in what is commonly called the ; bale forming region and initiates the formation of a core of crop material. The crop material is continually ed into the bale orming region into an ever increa-sing cylindrically shaped core. The upper apron 46 expands about the crop roll Ras it increases in size by means of the rotation of the takeup means 54 which permits the playing out of more of the upper apron 46 to accommodate the increased bale size. Once the crop roll R has reached the desired size, the operator stops -16-., .

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1~l3~()9 ~` the machine 10 andJ if desired, wraps the roll R with a wrapping or binding mate-rial. Upon completion of the roll formin~ and wrapping cyclesJ the operator ele-vates the upper frame or tailgate 20 in preparation for discharging the complet0d ``` crop roll R onto the groundO
Initially while the upper frame 20 is being raised the support arms 98 .~ and 100 maintain sufficient pressure on the idlers 91 and 99 to cause belts 75 and 84 to continue to transfer rotary force. HoweverJ beyond first predetermined - poin~s in the elevation of the upper frame 20 the lost motion built into the telescoping portion 119 of the support arm 98 has reached its limit and the idler 91 begins to be raised sufficiently to affect the manner in which the transfer of rotary power through the belt 75 is achieved. Similarly, at a second predeter-mined point in the elevation of upper frame 20 the tension spring 112 reaches its limit of expansion and idler 99 begins to be raised, thereby decreasing the ten-:
sion on driving belt 84 until i~ caUCes the sheave 85 to cease to be driven. Thisin turn stops the rotation of shaft 52 which is connected to the sprocket 138 which drives the upper apron 460 As the tailgate or upper frame 20 continues to be raised idler 91 on the lower end of support arm 98 is pivoted upwardly and rearwardly about the pivot point of connecting link 93. This pivotal motion of idler 91 in turn causes idler 90 to be pivoted upwardly in a generally clockwise rotation about the pivot pin 96 of idler arm 92. During this entire time rotary drive continues to be transmitted via drive belt 75 from the drive sheave 74 to sheave 76. At the first predetermined point in the elevation of the tailgate or upper frame 20 the idler 91 is pulled sufficiently upwardly and rearwardly to cause the belt 75 to begin to back wrap about the now stationary sheave 84. Once the belt 75 is back wrapped about sheave 85 with sufficient tension, the continued movement of belt 75 imparts a counterclockwise motion to sheave 85, thereby causing the one-way clutch 124 to disengage as pawl 129 passes over the ratcheting :
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:1~36~09 '`'`.
12~. Because o the splined connection of ~heave 85 to shaft 52, the shaft 52 also rotates in a counterclockwise direction transmitting this rotary drive to the sprocket 138 about which is mounted one of the chains of the upper apron 46. The counterclockwise rotation of the sprocket 138 causes the upper apron 46 to reverse its normal direction of travel, as best shown in Pigure 2, and impart topspin to the completed crop roll R as it urges the roll R out of the roll forming machine's bale forming region. Upon completion of the ejection of the completed crop roll R
the upper frame or tailgate 20 is lowered, thereby causing the idlers 99 and 91 to be driven generally downwardly and forwardly into the position generally shown in Pigure 3. As the idler 91 is lowered it causes the belt to lose contact with the sheave 85 and, therefore, allows the upper apron 46 to cease turning in its re-verse direction. As the idler 99 is lowered with the closing of the tailgate or upper frame 20, it comes into contact again with belt 84 and supplies sufficient tension to permit the rotary drive force to be transferred from the continuously turning sheave 74 to sheave 85 via the belt 84 so that the sheave 85 drives the shaft 52 in a clockwise direction. This allows the upper apron 46 to be driven in the direction illustrated in Figure 1.
Thus, during the entire discharge operation of the roll forming machine 10 the operator only has to perform two steps manually. The operator must elevate the tailgate to cause the upper apron to initially cease movement before the upper apron is automatically reversed in its direction of travel to impart topspin to the completed crop roll to eject it. Then the operator must manually actuate the controls to close the tailgate which automatically stops the reverse movement of the upper apron 46 and permits it to be driven in its forward direction prior to recommencing the bale forming operationO There is no need to disengage and then reengage the power takeoff shaft since the power takeoff has been able to operate continuously throughout the entire discharge operationO

` ` 1~3!37(~9 ,.

.:
: While the preerred structure in which the principles of the present :; ~
. invention have been incorporated is shown and described above, it is to be under-stood that the invention is not to be limited to the particular details thus presented but, in fact~ widel~ different means may be employed in the practice of :~ the broader aspects of this inventionO The scope o the appended claims is in-.;
tended to encompass all obvious changes in the details, materials and arrange-. ments of parts that will occur to one of ordinary skill in the art upon a reading of this disclosure.

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Claims

THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE
PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:
1. A drive system having a frame supporting the working element, a rotary powered drive source, and a reversible rotatably driven working element which comprises:
a) a rotary driving shaft connected to the drive source and rotatably mounted to the frame;
b) a first driven shaft rotatably mounted to the frame;
c) a second driven reversible shaft rotatably mounted to the frame;
d) a first rotary drive transfer means interconnecting the driving shaft and the first driven shaft;
e) a second rotary drive transfer means interconnecting the driving shaft and the second driven reversible shaft to drive the working element and the second driven reversible shaft in a first direction;
f) a first rotatable tensioning means movably fastened to the frame for cooperatively interacting with the second rotary drive transfer means so that sufficient tension is selectively maintainable on the second rotary drive trans-fer means to permit the rotary driving shaft to drive the second driven reversible shaft in the first direction;
g) second rotatable tensioning means pivotally fastened to the frame and for cooperatively interacting with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the rotary driving shaft to drive the first driven shaft; and h) lifting means fastened to the frame and connected to the first rotatable tensioning means and the second rotatable tensioning means in such a manner that when actuated the lifting means moves the first rotatable tensioning and the second rotatable tensioning means so that the second rotary drive trans-fer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and the first rotary drive transfer means at a predeter-mined point in the movement of the second rotatable tensioning means causes rota-ry power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the working element in the opposing second direction.

2. The drive system according to Claim 1 wherein the first rotary drive transfer means further comprises a drive belt rotatably mounted about the rotary driving shaft and the first driven shaft.

3. The drive system according to Claim 2 wherein the second rotary drive transfer means further comprises a drive belt rotatably mounted about sheave mounted to the driving shaft and the second driven reversible shaft.

4, The drive system according to Claim 3 wherein the first rotatable tensioning means further comprises a rotatable idler mounted to a movable arm affixed to the frame.

5. The drive system according to Claim 4 wherein the second rotatable tensioning means comprises at least a pair of rotatable idlers mounted on sepa-rate arms.

6. The drive system according to Claim 5 wherein the lifting means com-proses a hydraulic cylinder connected to the arm of the first rotatable tension-ing means and the frame.

7. A drive system having a rotary powered drive source, a first reversi-ble rotatably driven working element, a second rotatably driven working element and a frame supporting the first and second working elements which comprises:
a) a rotary driving shaft connected to the drive source and rotatably mounted to the frame;
b) a first driven shaft rotatably mounted to the frame connectable to the driving shaft;
c) a second driven reversible shaft rotatably mounted to the frame connectable to the driving shaft and the working elements;
d) first rotary drive transfer means connectable to the driving shaft and the first driven shaft;
e) second rotary drive transfer means connectable to the driving shaft and the second reversible shaft to drive the first and second working elements and the second driven reversible shaft in a first direction;
f) first rotatable tensioning means movably fastened to the frame and cooperative with the second rotary drive transfer means so that sufficient tension is selectively maintainable on the second rotary drive transfer means to permit the rotary driving shaft to drive the second driven reversible shaft;
g) second rotatable tensioning means pivotally fastened to the frame and cooperative with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the rotary driving shaft to drive the first driven shaft;
h) clutching means mounted about the second driven reversible shaft connected to the second working element effective when engaged to transfer rotary power to the second working element and when disengaged to not transfer rotary power to the second working element; and i) lifting means fastened to the frame and connected to the first ro-tatable tensioning means and the second rotatable tensioning means in such a manner that when actuated the lifting means moves the first rotatable tensioning means and the second rotatable tensioning means so that the second rotary drive transfer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and at a predetermined point in the movement of the second rotatable tensioning means the first rotary drive transfer means causes rotary power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the first working element in the opposing second direction, the rotation of the second driven reversible shaft in the oppo-sing second direction further causing the clutching means to disengage and stop the transfer of rotary power to the second working element.

8. The drive system according to Claim 7 wherein the first rotary drive transfer means further comprises a first drive belt rotatably mounted about the rotary driving shaft and the first driven shaft.

9. The drive system according to Claim 8 wherein the second rotary drive transfer means further comprises a second drive belt rotatably mounted about the rotary driving shaft and the second driven reversible shaft.
10. The drive system according to Claim 9 wherein the first rotatable tensioning means further comprises a rotatable idler mounted to a movable arm fastened to the frame.

11, The drive system according to Claim 10 wherein the second rotatable tensioning means comprises at least a first rotatable idler and a second rota-table idler, the first idler being mounted on a first pivotable arm and the sec-ond idler being mounted on a second pivotable arm.

12. The drive system according to Claim 11 wherein the clutching means further comprises a one-way overriding clutch rotatably mounted about the second driven reversible shaft and rotatably connected to the second drive belt.

13. The drive system according to Claim 12 wherein the lifting means further comprises a hydraulic cylinder connected to the arm of the first rotatable tensioning means and the frame.

14, In a roll forming machine for forming cylindrical bales of crop ma-terial having a generally upright mobile frame, a pickup mounted to the frame, bale forming means reversibly and rotatably mounted to the frame movable in a first direction and an opposing second direction, and a rotary powered drive means, the improvement which comprises a drive system having:
a) a rotary driving shaft connected to the drive means and rotatably mounted to the frame;
b) a first driven shaft rotatably mounted to the frame connectable to the drive shaft;
c) a second driven reversible shaft mounted to the frame connectable to the driving shaft and the bale forming means;
d) first rotary drive transfer means connectable to the driving shaft and the first driven shaft;
e) second rotary drive transfer means connectable to the driving shaft and the second driven reversible shaft to drive the bale forming means and the second driven reversible shaft in the first direction;
f) first tensioning means movably fastened to the frame and cooperative with the second rotary drive transfer means so that sufficient tension is selec-tively maintainable on the second rotary drive transfer means to permit the driving shaft to drive the second driven reversible shaft;
g) second tensioning means pivotally fastened to the frame and cooper-ative with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the driving shaft to drive the first driven shaft;
and h) lifting means fastened to the frame and connected to the first tensioning means and the second tensioning means in such a manner that when actu-ated the lifting means moves the first tensioning means and the second tensioning means so that the second rotary drive transfer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and at a pre-determined point in movement of the second tensioning means the first rotary drive transfer means causes rotary power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the bale forming means in the opposing second direction to eject a completed crop bale from the machine.

15. The roll forming machine according to Claim 14 wherein the first rotary drive transfer means comprises a first drive belt rotatably mounted about the driving shaft and the first driven shaft.

16. The roll forming machine according to Claim 15 wherein the second rotary drive transfer means comprises a second drive belt rotatably mounted about the driving shaft and the second driven reversible shaft.

17. The roll forming machine according to Claim 16 wherein the first tensioning means comprises an idler rotatably mounted to a movable arm affixed to the frame.

18. The roll forming machine according to Claim 17 wherein the second tensioning means comprises at least a first rotatable idler and a second rota-table idler, the first idler being mounted on a first pivotable arm and the sec-ond idler being mounted on a second pivotable arm.

19. The roll forming machine according to Claim 18 wherein the second tensioning means comprises at least one hydraulic cylinder connected to the mov-able arm of the first tensioning means.

20. The roll forming machine according to Claim 14 wherein the bale forming means further comprises an upper apron presenting a rotatable curvilinear bale engaging surface and a transport means adjacent the pickup and rotatably mounted to the frame generally below the upper apron for supporting crop material as it is formed into a crop bale.

21. The roll forming machine according to Claim 20 wherein the drive system further comprises a one-way overriding clutch rotatably mounted to the second driven reversible shaft and rotatably connected to the second rotary drive transfer means operable to transfer rotary power to the transport means when engaged and when disengaged to not transfer rotary power to the transport means.

22. A roll forming machine for forming cylindrical bales of crop materi-al, which comprises:
a) a generally upright mobile frame having opposing sides, an infeed area and an outlet area therebetween, the frame being adapted to travel across a field of crop material;
b) a pickup mounted to the frame to gather crop material from the field and deliver it to the infeed area;
c) bale forming means rotatably mounted on the frame movable in a pre-determined path of travel, the bale forming means being reversibly rotatable in a first direction and an opposing second direction and defining in combination with the infeed and outlet areas a bale forming region;
d) drive means rotatably fastened to the frame, e) a rotary driving shaft connected to the drive means and rotatably mounted to the frame;
f) a first driven shaft rotatably mounted to the frame;
g) a second driven reversible shaft rotatably mounted to the frame;
h) a first rotary drive transfer means interconnecting the driving shaft and the first driven shaft;
i) a second rotary drive transfer means interconnecting the driving shaft and the second driven reversible shaft to drive the bale forming means and the second driven reversible shaft in a first direction;
j) a first rotatable tensioning means affixed to the frame and movable between at least a first position and a second position for cooperatively inter-acting with the second rotary drive transfer means so that sufficient tension is selectively maintainable on the second rotary drive transfer means to permit the rotary driving shaft to drive the second driven reversible shaft in the first direction;
k) second rotatable tensioning means pivotally affixed to the frame and movable between at least a first position and a second position for coopera-tively interacting with the first rotary drive transfer means so that sufficient tension is maintained thereto to permit the rotary driving shaft to drive the first driven shaft; and l) lifting means fastened to the frame and connected to the first ro-tatable tensioning means and the second rotatable tensioning means in such a manner that when actuated the lifting means moves the first rotatable tensioning and the second rotatable tensioning means between the first positions wherein the bale forming means is driven in the first direction and the second positions so that the second rotary drive transfer means no longer transmits rotary power from the driving shaft to the second driven reversible shaft and the first rotary drive transfer means at the second position in the movement of the second rota-table tensioning means causes rotary power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the bale forming means in the opposing second direction to eject a completed crop bale from the bale forming region.

23. The roll forming machine according to Claim 22 wherein the bale forming means further comprises an upper apron presenting a rotatable curvilinear bale engaging surface and a transport means adjacent the pickup and rotatably mounted to the frame generally below the upper apron for supporting crop material as it is formed into a crop bale.

240 The roll forming machine according to Claim 23 wherein the drive means further comprises a one-way overriding clutch rotatably mounted to the sec-ond driven reversible shaft and rotatably connected to the second rotary drive transfer means operable to transfer rotary power to the transport means when engaged and when disengaged to not transfer rotary power to the transport means.

25. A roll forming machine for forming cylindrical bales of crop materi-al which comprises:
a) a generally upright mobile frame having opposing sides, an infeed area and an outlet area therebetween, the frame being adapted to travel across a field of crop material;
b) a pickup mounted to the frame to gather crop material from the field and deliver it to the infeed area;

c) a movable transport means adjacent the pickup between the opposing sides for receiving the crop material from the pickup in the infeed area and moving it generally rearwardly towards the outlet area;
d) a bale forming means rotatably mounted on the frame above the transport means and defining therebetween a bale forming region, the bale forming means being reversibly rotatable in a first direction and an opposing second di-rection;
e) a tailgate pivotally mounted to the opposing sides of the frame about the bale forming region movable in a generally arcuate path of travel be-tween a closed position wherein the outlet area is obstructed and an open posi-tion wherein the outlet area is unobstructed to permit the ejection of a bale;
f) drive means rotatably fastened to the frame;
g) a rotary driving shaft connected to the drive means and rotatably mounted to the frame;
h) a first driven shaft rotatably mounted to the frame connectable to the driving shaft;
i) a second driven reversible shaft rotatably mounted to the frame connectable to the driving shaft and the bale forming means;
j) first rotary drive transfer means connectable to the driving shaft and the first driven shaft;
k) second rotary drive transfer means connectable to the driving shaft and the second driven reversible shaft to drive the bale forming means and the second driven reversible shaft in the first direction;
l) first rotatable tensioning means movably fastened to the frame and cooperative with the second rotary drive transfer means such that sufficient tension is selectively maintainable on the second rotary drive transfer means to permit the rotary driving shaft to drive the second driven reversible shaft;

m) second rotatable tensioning means pivotally fastened to the frame and cooperative with the first rotary drive transfer means so that sufficient tension is maintained thereon to permit the rotary driving shaft to drive the first driven shaft;
n) lifting means fastened to the frame and connected to the tailgate for selectively moving the tailgate between the closed position and the open pos-ition the lifting means further being connected to the first rotatable tensioning means and the second rotatable tensioning means in such a manner that when actu-ated the lifting means moves the first rotatable tensioning means and the second rotatable tensioning means so that the second rotary drive transfer means no longer transmits rotary power from the driving shaft to the second driven rever-sible shaft and at a predetermined point in the movement of the second rotatable tensioning means the first rotary drive transfer means causes rotary power to be transmitted to the second driven reversible shaft to drive the second driven reversible shaft and the bale forming means in the opposing second direction to eject a completed crop bale from the bale forming region.

26. The roll forming machine according to Claim 25 wherein the drive means further comprises a one-way overriding clutch rotatably mounted to the second driven reversible shaft and rotatably connected to the second rotary drive transfer means operable to transfer rotary power to the transport means when engaged and when disengaged to not transfer rotary power to the transport means.
CA000396021A 1979-03-29 1982-02-10 Automatic bale ejection drive Expired CA1138709A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CA000396021A CA1138709A (en) 1979-03-29 1982-02-10 Automatic bale ejection drive

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US06/025,170 US4218866A (en) 1979-03-29 1979-03-29 Automatic bale ejection drive
US025,170 1979-03-29
CA348,413A CA1126079A (en) 1979-03-29 1980-03-26 Automatic bale ejection drive
CA000396021A CA1138709A (en) 1979-03-29 1982-02-10 Automatic bale ejection drive

Publications (1)

Publication Number Publication Date
CA1138709A true CA1138709A (en) 1983-01-04

Family

ID=27166625

Family Applications (1)

Application Number Title Priority Date Filing Date
CA000396021A Expired CA1138709A (en) 1979-03-29 1982-02-10 Automatic bale ejection drive

Country Status (1)

Country Link
CA (1) CA1138709A (en)

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