SHIFTABLE TRANSMISSION IN ROLLING MILL TECHNOLOGY
20200208716 ยท 2020-07-02
Inventors
Cpc classification
B21B35/04
PERFORMING OPERATIONS; TRANSPORTING
F16H2200/0056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H3/093
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2003/0931
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B30B3/04
PERFORMING OPERATIONS; TRANSPORTING
B21B35/12
PERFORMING OPERATIONS; TRANSPORTING
B21B35/141
PERFORMING OPERATIONS; TRANSPORTING
F16H2200/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a shiftable transmission (1) having at least two shifting levels, preferably for use in rolling mill technology, said shiftable transmission comprising: a rotatably mounted input shaft (20), to which an input torque an be applied; a rotatably mounted first output shaft (30) and a rotatably mounted second output shaft (40), which are arranged parallel and are connected to each other by means of an output transmission stage in such a way that aid output shafts rotate oppositely, preferably at the same rotational speed, when an input torque is applied to the input shaft (20) at any shifting level of the shiftable transmission (1); a first coupling (50), which is designed to selectively connect an disconnect the input shaft (20) and the first output shaft (30), a first shifting level of the shiftable transmission (1) being realized in the coupled state, in which first shifting level the input shaft (20) and the first output shaft (30) are connected to each other in such a way that the input torque is transferred from the input shaft (20) to the first output shaft (30) without step-up or step-down, preferably without redirection and without a spur gear stage.
Claims
1. Shiftable transmission having at least two shifting stages, preferably for use in rolling mills, the shiftable transmission comprising: a rotatably supported input shaft (20) subjected to an input torque; a rotatably supported first output shaft (30) and a rotatably supported second output shaft (40) arranged parallel to each other and connected by an output transmission stage in such a manner that in each shifting stage of the shiftable transmission (1) upon application of input torque to the input shaft (20), they rotate in opposite directions, preferably, with a same rotational speed; a first clutch (50) which is set up to connect the input shaft (20) and the first output shaft (30) with each other and disconnect them from each other in a switching manner, wherein in a connecting condition of the first clutch (50), a first shifting stage of the shiftable transmission (1) is realized in which the input shaft (20) and the first output shaft (20) are connected with each other so that the input torque is transmitted from the input shaft (20) to the first output shaft (30) without increased or decreased ratio, preferably without deviation, and without a spur gear stage.
2. Shiftable transmission (1) according to claim 1, characterized in that the input shaft (20) and the first output shaft (30) are axially arranged one behind another along a same rotational axis.
3. Shiftable transmission (1) according to claim 1, characterized in that the output transmission stage comprises a first pinion (3) fixedly connected with the first output shaft (30), and a second pinion (41) fixedly connected with the second output shaft (40) and meshing with the first pinion (31), wherein the first pinion (31) and the second pinion (41) preferably have a same diameter.
4. Shiftable transmission (1) according to claim 1, characterized in that the first clutch (50) is a formlocking clutch having a first shift sleeve (51) concentrically arranged with respect to the first output shaft (30) and axially displaceable for shifting the first clutch (50).
5. Shiftable transmission (1) according to claim 1, characterized in that it comprises an input transmission stage that provides for increased or reduced ratio between the input shaft (20) and second output shaft (40) in the second shifting stage.
6. Shiftable transmission (1) according to claim 5, characterized in that the input transmission stage comprises a first spur gear (21) fixedly connected with the input shaft (20), and a second spur gear (42) meshing with the first spur gear (21) and connectable with the second output shaft (40), and in that in the second shifting stage, the input torque from the input shaft (20) is transmitted to the second output shaft (40) by the two spur gears (21, 42), wherein a diameter of the first spur gear (21) is preferably smaller than that of the second spur gear (42).
7. Shiftable transmission (1) according to claim 5, characterized in that the input transmission stage comprises a second clutch (60) for driving the input shaft (20) and the second output shaft (40), preferably, for connecting and disconnecting, in a switchable manner, the second spur gear (42) and the second output shaft (40), wherein in a connecting condition, the second clutch (60) forms the second shifting stage of the shiftable transmission.
8. Shiftable transmission (1) according to claim 7, characterized in that the second clutch (60) is a formlocking clutch comprising, preferably, a second shift sleeve (61) concentrically arranged relative to the second output shaft (40) and axially displaceable for shifting the second clutch (60).
9. Shiftable transmission (1) according to claim 7, characterized in that the first clutch (50) and the second clutch (60) are so connected with each other that they always shifted together and in opposite directions, wherein the first clutch (50) and the second clutch (60) are preferably mechanically connected with each other.
10. Rolling mill for rolling a metal strip and comprising a shiftable transmission and having at least two shifting stages, preferably for use in rolling mills, the shiftable transmission comprising: a rotatably supported input shaft (20) subjected to an input torque; a rotatably supported first output shaft (30) and a rotatably supported second output shaft (40) arranged parallel to each other and connected by an output transmission stage in such a manner that in each shifting stage of the shiftable transmission (1) upon application of input torque to the input shaft (20), they rotate in opposite directions, preferably, with a same rotational speed; a first clutch (50) which is set up to connect the input shaft (20) and the first output shaft (30) with each other and disconnect them from each other in a switching manner, wherein in a connecting condition of the first clutch (50), a first shifting stage of the shiftable transmission (1) is realized in which the input shaft (20) and the first output shaft (20) are connected with each other so that the input torque is transmitted from the input shaft (20) to the first output shaft (30) without increased or decreased ratio, preferably without deviation, and without a spur gear stage, wherein the first output shaft (30) and the second output shaft (40) are connected, respectively, with working roll, intermediate roll, or backup roll.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] Below, preferred embodiments will be described, with reference to the drawings. At that, the same, similar, and functionally identical elements are designated with identical reference numerals and, in order to prevent redundancy, a repeated description of these elements will be, at least partially, avoided.
[0027]
[0028] The shiftable transmission 1 has a housing 10 in which an input shaft 20, a first output shaft 30, and a second output shaft 40 are rotatably supported. The pivot bearings, which are shown in
[0029] In the engaged condition of the first clutch 50, the input shaft 20 and the first output shaft 30 are fixedly connected with each other without toothing. Advantageously, the first clutch 50 formlockingly connects the two shafts. In the described embodiment, to this end, there is provided a first cylindrical shift sleeve 51 which is arranged concentrically relative to the input shaft 20 and the first output shaft 30 and is slidable in an axial direction. In the coupled state, the first shift sleeve 51 simultaneously engages both the input shaft 20 and the first output shaft 30, formlockingly connecting both shafts 20 and 30. The engagement can be carried out directly or the first shift sleeve 51 can be displaced, as shown in the discussed embodiment, by first clutch counterparts 52 and 53 fixedly connected, respectively, with the input shaft 20 and the first output shaft 30. Upon an axial displacement of the first shift sleeve 51, at least one of the two shafts 20 and 30 is not connected anymore therewith, and the first coupling is released, and the two shafts 20 and 30 are separated, whereby they can be rotated independently from each other. The first shift sleeve 51 can be actuated electrically, pneumatically, or in any other way. It should be noted that the first shift coupling can be formed in technically different manner. E.g., the fixed connection of the input shaft 20 and the first output shaft 30 can be realized as a forcelocking connection.
[0030]
[0031] The first pinion 31 is fixedly connected with the first output shaft 30, optionally, is formed integrally therewith. The first pinion 31 engages a second pinion 41 which again is fixedly connected with the second output shaft 40, optionally, is formed integrally therewith, by teeth engagement. Both pinions 31 and 41 preferably have the same diameter so that at an input torque, both output shafts 30 and 40 are driven with the same rotational speed in opposite directions. In the discussed embodiment, both pinions 31 and 41 form the above-mentioned output gear stage. Instead of the pinions 31 and 41, other gear elements can be used, preferably, suitable forms of gear wheels, as long as it is insured that with an input torque applied to the input shaft 20, both output shafts 30 and 40 are driven with a predetermined rotational speed ratio, preferably with the same rotational speed in opposite directions.
[0032] In the coupled condition of
[0033] In condition of
[0034] Between the second spur gear 42 and the second output shaft 40, there is provided a second clutch 60 which can be displaced, as the first clutch 50, by an axially displaceable second cylindrical shift sleeve 61. In the engaged condition of the second clutch 60, the second output shaft 40 and the second spur gear 42 are fixedly connected with each other. Preferably, the second clutch 60 forms a formlocking connection. In the discussed embodiment, to this end, there is provided a second cylindrical shift sleeve 61 which is arranged concentrically with the second output shaft 40 and is displaced in the axial direction. In the engaged condition, the second shift sleeve 61 engages simultaneously both the second output shaft 40 and the second spur gear 42, formlockingly connecting both parts. The engagement can be direct or the second shift sleeve 41, as shown in the discussed embodiment, can be fixedly connected with the second spur gear 42 and the second output shaft 40 and be displaced therewith by two clutch counterparts 62 and 63 connected, respectively, with the second spur gear 42 and the second output shaft 40.
[0035] By axial disengagement of the second shift sleeve 61, the second clutch 60 is released, and the second spur gear 62 and the second output shaft 40 are separated, whereby they become rotatable independent from each other. As in the case of the first clutch 50, the actuation of the second shift sleeve 61 can be carried out electrically, pneumatically, or in any other way. It should also be noted that the second clutch 60 can be technically realized in other way, e.g., a forcelocking connection can be realized.
[0036] In the engaged condition of
[0037] This, in turn, insures that the two pinions 41 and 31 transmit the torque to the first output shaft 30 which is mechanically separately from the input shaft 20 by the non-actuated first clutch 50.
[0038] According to the above-described construction, the first shift stage, shown, in
[0039] The shiftable transmission is preferably designed as what might be called a stand main drive. Thus, the first shifting stage with a ratio of about or equal one is used for high rolling speeds at which the problem of vibration excitation is particularly relevant.
[0040] The second switching stage with a reduced speed ratio is used for low rolling speeds when the installation is less vibration-prone.
[0041] The described shiftable transmission which is preferably formed as a spur gear-pinion transmission, enables a noticeable reduction of swinging excitations of a rolling stand and which are caused by the drive train, with spur gears being disposed with. Furthermore, this is accompanied by a more favorable dynamic behavior of the drive train in the first shifting stage since inertial masses such as spur gears of a complete shifting stage are eliminated.
[0042] A mechanical connection of the clutches 50 and 60 which are to be synchronously actuated during the shifting step, insure the system-inherent safety of shiftable transmission 1. Further, due to the elimination of a spur gear stage, an inexpensive, compact, and maintenance-free shiftable transmission is provided.
LIST OF REFERENCE NUMERALS
[0043] 1 Shiftable transmission [0044] 10 Housing [0045] 20 Input shaft [0046] 21 First spur gear [0047] 30 First output shaft [0048] 31 First pinion [0049] 40 Second output shaft [0050] 41 Second pinion [0051] 42 Second spur gear [0052] 43 Bearing [0053] 50 First clutch [0054] 51 First shift sleeve [0055] 52,53 First clutch counterparts [0056] 60 Second clutch [0057] 61 Second shift sleeve [0058] 62,63 Second clutch counterparts