DRIVE SHAFT WITH DIRECT-MOUNTED SPROCKETS FOR FILTRATION APPARATUS
20170259194 · 2017-09-14
Assignee
Inventors
Cpc classification
B01D33/801
PERFORMING OPERATIONS; TRANSPORTING
F16H57/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D33/76
PERFORMING OPERATIONS; TRANSPORTING
B01D29/09
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16H55/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A drive shaft with direct-mounted sprockets is arranged in a chain drive unit. The drive shaft includes a shaft body, a pair of metal plate sprockets, and first padding portions and second padding portions formed of weld beads. The first padding portions are formed such that their positions are changed to alternate with each other in a circumferential direction of the shaft body. The second padding portions are formed such that their positions are changed to alternate with each other in the circumferential direction of the shaft body. A torque input to the shaft body is transmitted to the metal plate sprockets via the padding portions.
Claims
1. A drive shaft with direct-mounted sprockets used in a chain drive unit of a filtration apparatus, the drive shaft comprising: a shaft body including a straight portion having a cylindrical shape whose outside diameter is constant, a first end portion, and a second end portion, a torque of a motor input to the first end portion; a first metal plate sprocket which is arranged on the straight portion of the shaft body at a position close to the first end portion, and includes first teeth and side surfaces; a second metal plate sprocket which is arranged on the straight portion of the shaft body at a position close to the second end portion, the second metal plate sprocket being arranged parallel to the first metal plate sprocket, and including second teeth and side surfaces, the second teeth being the same in number as the first teeth, and being provided at positions corresponding to those of the first teeth; first padding portions each formed of a weld bead obtained by fillet welding provided at a corner portion defined by the side surfaces of the first metal plate sprocket and the shaft body, the first padding portions being formed such that their positions are changed to alternate with each other in a circumferential direction of the shaft body; and second padding portions each formed of a weld bead obtained by fillet welding provided at a corner portion defined by the side surfaces of the second metal plate sprocket and the shaft body, the second padding portions being formed such that their positions are changed to alternate with each other in the circumferential direction of the shaft body, wherein a keyway in which a key is inserted is formed along an axis of the shaft body on the first end portion of the shaft body, the key enabling coupling with an output shaft of a motor unit, and positions of the first tooth and the second tooth conform to each other on a line along the keyway, the first metal plate sprocket is fixed to the straight portion by the first padding portions, and the second metal plate sprocket is fixed to the straight portion by the second padding portions.
2. The drive shaft with direct-mounted sprockets of claim 1, wherein the first padding portions and the second padding portions are formed at equal pitches in the circumferential direction of the shaft body.
3. The drive shaft with direct-mounted sprockets of claim 2, wherein the first padding portions and the second padding portions are formed at mutually matching positions in the circumferential direction of the shaft body.
4. The drive shaft with direct-mounted sprockets of claim 1, wherein a thickness of each of the first teeth and the second teeth is less than half an inner width of each of corresponding chain links meshing with the teeth.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
[0015] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate embodiments of the invention, and together with the general description given above and the detailed description of the embodiments given below, serve to explain the principles of the invention.
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022] A filtration apparatus comprising a drive shaft with direct-mounted sprockets according to one embodiment will now be described with reference to
[0023] A lift portion 25 is formed at an end portion of the filter tank 11. The lift portion 25 extends obliquely toward the upper side of a liquid level Q3 in the filter tank 11, and extends to the outside of the filter tank 11. A discharge portion 26 is formed at an upper end of the lift portion 25. The discharge portion 26 is provided at a position higher than the liquid level Q3. The chain drive unit 14 using a motor as a drive source is provided near the discharge portion 26.
[0024] The conveyor 13 is arranged to be extended to the lift portion 25 and the discharge portion 26 from a bottom portion 11a of the filter tank 11. As shown in
[0025] The conveyor 13 moves in the direction indicated by arrow A in
[0026] The chain drive unit 14 comprises a motor unit 40 (
[0027] The cover 43 of the chain drive unit 14 includes a pair of side plates 43a and 43b, and an upper plate 43c. The first bearing 41 is fixed to the first side plate 43a by a bolt 45. The first bearing 41 rotatably supports the vicinity of a first end portion 60a of the shaft body 60.
[0028] In the second side plate 43b of the cover 43, an opening 50 of a size which allows the drive shaft 55 with direct-mounted sprockets to be inserted therein horizontally is formed. The internal diameter of the opening 50 is greater than the outside diameter of each of the metal plate sprockets 61 and 62. The opening 50 is closed by a lid 51. The second bearing 42 is mounted on the lid 51 by a bolt 52. The lid 51 is fixed to the second side plate 43b by bolts 53. The second bearing 42 rotatably supports a second end portion 60b of the shaft body 60 of the drive shaft 55 with direct-mounted sprockets.
[0029] The drive shaft 55 with direct-mounted sprockets is inserted into the cover 43 through the opening 50, and the first end portion 60a of the shaft body 60 is inserted into first bearing 41. Further, the second bearing 42 is made to fit on the second end portion 60b of the shaft body 60, and the lid 51 is fixed to the second side plate 43b by the bolts 53.
[0030]
[0031] The shaft body 60 includes the first end portion 60a to which the torque of the motor is input, and the second end portion 60b which is on the side opposite to the first end portion 60a. The shaft body 60 includes a cylindrical straight portion 60c. In the straight portion 60c, the outside diameter is constant throughout the entire length of a region including the first padding portions 71 and the second padding portions 72. On this straight portion 60c, a keyway and a retaining ring groove as seen in a sprocket mounting portion of a conventional drive shaft are not formed. Accordingly, the outside diameter of the straight portion 60c corresponds to an effective diameter for transmitting the torque of the motor unit 40.
[0032] On the first end portion 60a of the shaft body 60, a torque of the motor unit 40 (a torque of the motor) is input. Accordingly, on the first end portion 60a, a keyway 60d into which a key is inserted is formed so as to achieve coupling with a hollow output shaft incorporated in the motor unit 40. As shown in
[0033] The first metal plate sprocket 61 is arranged at a position close to the first end portion 60a in the entire length of the straight portion 60c of the shaft body 60. The first metal plate sprocket 61 includes first teeth 61a and side surfaces 61b and 61c.
[0034] The second metal plate sprocket 62 is arranged at a position close to the second end portion 60b in the entire length of the straight portion 60c of the shaft body 60. The second metal plate sprocket 62 includes second teeth 62a and side surfaces 62b and 62c. The second teeth 62a are the same in number as the first teeth 61a. Accordingly, the outside diameters of the metal plate sprockets 61 and 62 are the same.
[0035] The first metal plate sprocket 61 and the second metal plate sprocket 62 are arranged parallel to each other. As shown in
[0036] The shaft body 60, the first metal plate sprocket 61, and the second metal plate sprocket 62 are formed of carbon steel for machine parts (for example, S45C conforming to JIS) having chemical components common to each other. The chemical components (wt %) of S45C are C: 0.42 to 0.48; Si: 0.15 to 0.35; Mn: 0.60 to 0.90; P: 0.030 or less; S: 0.035 or less; and Fe: the remainder.
[0037] The first padding portion 71 is formed of a weld bead obtained by fillet welding. The first padding portion 71 is provided at a corner portion defined by the side surfaces 61b and 61c of the first metal plate sprocket 61 and the shaft body 60.
[0038] The second metal plate sprocket 62 is structured in the same way as the first metal plate sprocket 61. The second padding portion 72 is structured in the same way as the first padding portion 71. That is, the second padding portion 72 is formed of a weld bead obtained by fillet welding likewise the first padding portion 71. The second padding portion 72 is provided at a corner portion defined by the side surfaces 62b and 62c of the second metal plate sprocket 62 and the shaft body 60. Two second padding portions 72 are formed on each of the side surface 62b and the other side surface 62c of the second metal plate sprocket 62. Further, the second padding portions 72 are formed on the side surface 62b and the other side surface 62c alternately in the circumferential direction of the shaft body 60. More specifically, the second padding portions 72 are formed at equal pitches in four places in total by alternating their positions by 90 degrees in the circumferential direction of the shaft body 60, likewise the first padding portions 71.
[0039] The first metal plate sprocket 61 is fixed to the straight portion 60c of the shaft body 60 by the first padding portions 71. The second metal plate sprocket 62 is fixed to the straight portion 60c of the shaft body 60 by the second padding portions 72. When these metal plate sprockets 61 and 62 are arc-welded to the shaft body 60, the first metal plate sprocket 61 and the second metal plate sprocket 62 are positioned as shown in
[0040] As can be seen, the positions of the respective teeth of the first teeth 61a and the second teeth 62a (i.e., the positions in the direction of rotation of the shaft body 60) are made to conform to each other. In other words, the position of the first tooth 61a and the position of the second tooth 62a are made to conform to each other on line L1 along the keyway 60d. In this state, the first metal plate sprocket 61 is fixed to the straight portion 60c by the first padding portions 71, and the second metal plate sprocket 62 is fixed to the straight portion 60c by the second padding portions 72.
[0041] In one example of the first padding portion 71 shown in
[0042] The first padding portions 71 are formed on the side surfaces 61b and 61c of the sprocket 61 alternately with their positions changed in a circumferential direction of the first metal plate sprocket 61. The second padding portions 72 are also formed on the side surfaces 62b and 62c of the sprocket 62 alternately with their positions changed in a circumferential direction of the second metal plate sprocket 62. Accordingly, it is possible to prevent the perpendicularity α of the metal plate sprockets 61 and 62 with respect to the axis X1 (
[0043] The torque of the motor unit 40 input to the shaft body 60 is transmitted to the first and second metal plate sprockets 61 and 62 via the first and second padding portions 71 and 72. As the first and second metal plate sprockets 61 and 62 rotate integrally with the shaft body 60, the chains 31 and 32 move.
[0044] According to the drive shaft 55 with direct-mounted sprockets of the present embodiment, there is no need to form a keyway for mounting a sprocket and a retaining ring groove on the shaft body 60 as in a conventional drive shaft. That is, a groove which may become a point which causes breaking is not formed on the straight portion 60c of the shaft body 60. Therefore, the shaft body 60 can exhibit great strength against the torque to be input. In other words, even a shaft body 60 having a diameter smaller than that of a conventional drive shaft can withstand a torque from a motor that outputs large power. Moreover, a keyway for mounting a sprocket and a retaining ring groove do not need to be formed as in the conventional drive shaft. Accordingly, work and equipment required for processing these grooves can be omitted, and great economic effects can be produced.
[0045] In a sprocket mounting portion of a conventional drive shaft, a backlash may be created in a fitting portion of a key and a keyway. However, such a portion (a fitting portion of a key and a keyway) does not exist in the drive shaft 55 with direct-mounted sprockets of the present embodiment. Accordingly, with respect to the drive shaft 55 with direct-mounted sprockets of the present embodiment, the metal plate sprockets 61 and 62 are rotated integrally in synchronization with each other in such a state that the positions of the first teeth 61a and the positions of the second teeth 62a are completely aligned. Accordingly, while the present embodiment has the feature of being substantially maintenance-free, vibration and a noise of the conveyor 13 can be reduced.
[0046] An example of an inner width W1 of each of chain links 31a and 32a (one of which is shown in
[0047] Meanwhile, an example of a thickness T1 (
[0048] An object S to be removed which is deposited at the bottom portion 11a of the filter tank 11 is conveyed toward the discharge portion 26 through the lift portion 25 by the scrapers 33 of the conveyor 13. The chains 31 and 32 of the conveyor 13 are moved as the motor unit 40 of the chain drive unit 14 is rotated. The object S to be removed which has been conveyed to the discharge portion 26 by the conveyor 13 falls toward a collection box 80.
[0049] Needless to say, in carrying out the present invention, as well as the specific structure of the filtration apparatus, the specific forms of the shaft body of the drive shaft with direct-mounted sprockets arranged in the chain drive unit, the first and second metal plate sprockets, and the shape, position or the number of the padding portions may be modified variously.
[0050] Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.