Electrically Driven Turnout for a Duel-Belt Conveyor
20220348419 ยท 2022-11-03
Inventors
Cpc classification
B65G47/74
PERFORMING OPERATIONS; TRANSPORTING
B65G37/005
PERFORMING OPERATIONS; TRANSPORTING
B65G47/53
PERFORMING OPERATIONS; TRANSPORTING
B65G47/766
PERFORMING OPERATIONS; TRANSPORTING
B65G15/12
PERFORMING OPERATIONS; TRANSPORTING
B65G47/52
PERFORMING OPERATIONS; TRANSPORTING
B65G35/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A turnout for use with two transport sections includes a turnout arm rotatably supported with respect to a first axis of rotation, guided in a linearly movably in the direction of the first axis, and movable between two end positions. The turnout arm has a deflection surface configured such that, when the turnout arm is in a first end position, a transported item can be transferred between the first and second transport sections via the deflection surface, and the turnout arm is located beneath the transport level in a second end position such that the transported item is movable along the first transport section beyond the turnout. The turnout arm is connected for driving, via a transmission, to a single electric motor such that it is movable back and forth between the first and second end positions solely by being driven by the electric motor in two degrees of freedom.
Claims
1. A turnout for use with first and a second transport section, at least the first transport section including two parallel, spaced-apart, endlessly revolving traction elements, the two traction elements defining a common transport level, the turnout comprising: a turnout arm supported so as to be swivelable with respect to a first axis of rotation, guided in a linear movable manner in a direction of the first axis of rotation, and movable back and forth between a first and a second end position, the first axis of rotation being perpendicular to the transport level, locatable between the two traction elements of the first conveying section, the turnout arm comprising: a concavely curved deflection surface configured such that, when the turnout arm is in the first end position, a transported item can be transferred from the first to the second transport section or vice versa via the deflection surface, and when the turnout arm is in the second end position, the turnout arm is located entirely beneath the transport level such that the transported item is movable along the first transport section beyond the turnout; a single electric motor; and a transmission via which the turnout arm is connected to the electric motor such that the electric motor drives the turnout arm to move back and forth between the first and second end positions solely by being driven by the electric motor, via the transmission, in two degrees of freedom.
2. The turnout according to claim 1, wherein the transmission is configured to be self-inhibiting in the first end position, at least in respect of a linear movement of the turnout arm in the direction of the first axis of rotation.
3. The turnout according to claim 1, wherein the transmission is configured such that, in the second end position, the transmission forms an end stop for movement of the turnout arm along the first axis of rotation in a direction toward the second end position.
4. The turnout according to claim 1, wherein the electric motor is a stepper motor that is connected to the transmission so as to drive the transmission via a toothed belt, the toothed belt drive configured to effect a transmission ratio that is greater than 2.
5. The turnout according to claim 1, the transmission comprising a control roller that is mounted so as to be rotatable with respect to a second axis of rotation and that is connected to be rotationally driven by the electric motor, the control roller extending at least portionally with a constant cross-sectional shape along the second axis of rotation at which a corresponding circumferential surface has, from the second axis of rotation, a control distance that varies along a circumference of the circumferential surface.
6. The turnout according to claim 5, wherein the control distance is at a maximum in the first end position.
7. The turnout according to claim 5, wherein the control distance is at a minimum in the second end position.
8. The turnout according to claim 5, further comprising: a carriage on which the turnout arm is mounted so as to be rotatable about the first axis of rotation, the carriage being guided in a linearly movable manner in the direction of the first axis of rotation, and the carriage including a control surface that bears on the circumferential surface of the control roller.
9. The turnout according to claim 5, wherein the control roller, in a region of the circumferential surface, has a control groove or a control projection that extends helically with respect to the second axis of rotation, the turnout arm being fixedly connected to a separate control arm that is coupled, at a free end, to the control groove or to the control projection.
10. The turnout according to claim 9, further comprising: a carriage on which the turnout arm is mounted so as to be rotatable about the first axis of rotation, the carriage being guided in a linearly movable manner in the direction of the first axis of rotation, and the carriage including a control surface that bears on the circumferential surface of the control roller, wherein the carriage further comprises a base plate that is parallel to the transport level, and the turnout arm and the control arm are located on opposite sides of the base plate.
11. The turnout according to claim 1, wherein the first axis of rotation is located in a range of between 30% and 70% of a length of the deflection surface in a direction of movement of the transported item.
12. The turnout according to claim 1, wherein the first axis of rotation is located in a range of between 40% and 60% of the length of the deflection surface in the direction of movement of the transported item.
13. A transport system comprising: a first transport section comprising two endlessly revolving traction elements spaced apart in parallel such that the traction elements define a common transport level; a second transport section; and a turnout comprising: a turnout arm supported so as to be swivelable with respect to a first axis of rotation, guided in a linear movable manner in a direction of the first axis of rotation, and movable back and forth between a first and a second end position, the first axis of rotation being perpendicular to the transport level, locatable between the two traction elements of the first conveying section, the turnout arm comprising: a concavely curved deflection surface configured such that, when the turnout arm is in the first end position, a transported item can be transferred from the first to the second transport section or vice versa via the deflection surface, and when the turnout arm is in the second end position, the turnout arm is located entirely beneath the transport level such that the transported item is movable along the first transport section beyond the turnout; a single electric motor; and a transmission via which the turnout arm is connected to the electric motor such that the electric motor drives the turnout arm to move back and forth between the first and second end positions solely by being driven by the electric motor, via the transmission, in two degrees of freedom wherein the first axis of rotation is perpendicular to the transport level and is located between the two traction elements of the first conveying section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The disclosure is explained in greater detail in the following on the basis of the appended drawings, in which:
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION
[0024]
[0025] Preferably, transported item 60, in the form of workpiece carriers, is transported on the present transport system 66. In the simplest case, these may be flat plates of a constant thickness, which in turn carry workpieces (not represented) that are transported, for example, between different processing stations of a production line.
[0026] By means of the turnout 10 according to the disclosure, the transported item 60 shown in
[0027] To assist the swivel movement of the transported item 60 within the turnout 10, a curved inner guide surface 11 and a straight or slightly curved outer guide surface 12 are located in a fixed position on the transport system 66. In the first end position, the outer guide surface 12 continues the curved deflection surface 32 on the turnout arm 30 in an even and smooth manner. The corresponding component at the same time forms an end stop for the turnout arm 30.
[0028]
[0029]
[0030] Furthermore, the second base parts 72 each accommodate a rotary bearing (No. 46 in
[0031] The third base part 73 is an L-shaped, curved sheet metal part that is fastened, in particular screwed, to the underside of the first base part 71 by one L-leg. The other L-leg forms a to flange to which the electric motor 50, in this case realized as a stepper motor is fastened. The drive shaft of the electric motor 50 is fixedly connected to a smaller first toothed belt wheel 52. The control roller 41 is fixedly connected to a larger second toothed belt wheel 53. The first and the second toothed belt wheel 52; 53 are connected in respect of rotary drive via a toothed belt, the corresponding transmission ratio being considerably greater than one, being for example three. The electric motor 59 thus rotates comparatively rapidly and with a low torque, the control roller 41 rotating slowly with a comparatively high torque. The control roller 41 is part of a transmission 40 that is explained in greater detail with reference to
[0032] Also to be noted is the cover plate 25 on the carriage 20, which is part of the housing.
[0033]
[0034]
[0035] Apart from the control groove 45, the circumferential surface of the control roller 41 extends with a constant cross-sectional shape along the second axis of rotation 42. The cross-sectional shape is defined by a control distance 44, which varies along the circumference of the control roller 41. The control distance 44 at the control surface 22 of the carriage accordingly defines the lift position of the carriage. Rotation of the control roller 41 by means of the electric motor 50 therefore enables the determinative control distance 44 to be changed. When the control roller 41 is rotated, the location at which the control cam engages in the control groove 45 changes at the same time, such that the rotational position of the turnout arm 30 changes in turn. A rotation of the electric motor 50 thus simultaneously effects a lift movement and a swivel movement of the turnout arm 30, i.e. a movement in two degrees of freedom.
[0036]
[0037] It is also to be noted that the first axis of rotation 31 is located approximately in the center of the turnout arm 30.
REFERENCE NUMERALS
[0038] 10 turnout [0039] 11 inner guide surface [0040] 12 outer guide surface [0041] 20 carriage [0042] 21 base plate [0043] 22 control surface [0044] 23 rotary bearing [0045] 24 guide rod [0046] 25 cover plate [0047] 26 helical screw [0048] 30 turnout arm [0049] 31 first axis of rotation [0050] 32 deflection surface [0051] 33 control arm [0052] 34 free end of the control arm [0053] 37 control cam [0054] 40 transmission [0055] 41 control roller [0056] 42 second axis of rotation [0057] 43 circumferential surface of the control roller [0058] 44 control distance [0059] 45 control groove [0060] 46 rotary bearing [0061] 50 electric motor [0062] 51 toothed belt [0063] 52 first toothed belt wheel [0064] 53 second toothed belt wheel [0065] 60 transported item [0066] 61 first transport section [0067] 62 second transport section [0068] 63 traction means [0069] 64 carrier [0070] 65 traction-means drive [0071] 66 transport system [0072] 70 base [0073] 71 first base part [0074] 72 second base part [0075] 73 third base part [0076] 74 sliding bush