Two-spindle pump of single-flow construction
09624925 ยท 2017-04-18
Assignee
Inventors
Cpc classification
F01C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/601
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a two-spindle screw pump of single-flow construction, comprising a pump housing, which has a pump portion, a bearing portion and a gear portion with a gear chamber, wherein the bearing portion and the pump portion are realized separately from each other characterized in that the gearwheel and the fastening element (and thus the shaft) are mutually rotatable, so that a spacing of the flanks of the feed screws (the flank clearance of the feed screws) is adjustable, that an opening is provided on the gear portion of the pump housing, that the opening is provided with a detachable cover, that the opening is arranged such that the cover is detachable in the mounted state of the screw pump, and that the gear chamber, for the adjustment of the flank clearance of the feed screws, can be reached with the tool necessary for this purpose.
Claims
1. Two-spindle screw pump of single-flow construction, comprising a pump housing, which has a pump portion, a bearing portion and a gear portion with a gear chamber, wherein the bearing portion and the pump portion are realized separately from each other, comprising a feed housing part as a component part of the pump portion, in which two shaft-mounted feed screws with flanks are provided, wherein the shafts are mounted in the bearing portion (external bearing) and extend into the gear portion, comprising gearwheels, which are arranged on the shafts in the gear portion and by means of which the shafts are rotatably coupled, and comprising a fastening element, arranged on the shaft in operative connection therewith, for establishing a holding connection between shaft and gearwheel, wherein the fastening element and the gearwheel have corresponding bores, via which, between the gearwheel and the fastening element, a holding connection can be established via a locking element, characterized in that the gearwheels and shafts are held in place on one end by an endplate through which a drive shaft extends, and the bores in the fastening element are realized such that the gearwheel and the fastening element (and thus the shaft) are mutually rotatable, so that a spacing of the flanks of the feed screws (the flank clearance of the feed screws) is adjustable, in that an opening is provided on the gear portion of the pump housing, in that the opening is provided with a detachable cover, the opening and the cover distinct from the endplate and disposed to provide access with the detachable cover removed to the gear chamber, for the adjustment of the flank clearance of the feed screws, with a tool, with the pump in its mounted state with the drive shaft connected and the endplate in place; and further characterized in that the bores in the fastening element are here provided as a circumferential elongated hole, in which the locking element, in the inserted yet unlocked state, is circumferentially displaceable, and in that the circumferential length of the elongated hole is here provided such that its end points conform at least to points of contact of the flanks of the feed screws, and the circumferential length of the elongated holes is longer than the circumferential spacing of the points of contact of the flanks of the feed screws.
2. Screw pump according to claim 1, characterized in that the fastening element with the elongated holes is provided only on one shaft.
3. Pump according to claim 1, characterized in that a hydraulic separation exists between the pump portion and the bearing portion, or in that a spatial separation exists between the bearing portion and the gear portion.
4. Pump according to claim 3, characterized in that said hydraulic separation exists between the pump portion and the bearing portion via a face seal.
5. Pump according to claim 1, characterized in that the fastening element has a bushing portion for slipping onto the shaft, or wherein the shaft and the bushing portion have a groove for the reception of a feather key for establishing a rotationally operative connection between the shaft and the fastening element.
6. Pump according to claim 5, characterized in that said bushing portion has a receiving portion for the gearwheel.
7. Pump according to claim 1, characterized in that the bores of the gearwheel are realized as drilled holes with threaded portion, or in that a locking element in the form of a screw is insertable into the bores, via which screw the holding connection can be established.
8. Pump according to claim 1, characterized in that a bore is provided in the shaft head, into which bore can be introduced a locking element which locks the fastening element against the shaft.
Description
(1) The invention is explained in greater detail below with reference to an illustrative embodiment in conjunction with a drawing, wherein:
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(15) On the driven shaft 16, a fastening element 27 is disposed on the shaft end 23. The fastening element 27 has a bushing portion 28 and a flange portion 29. The outer side of the bushing portion 28 is simultaneously the receiving surface 30 for the gearwheel 26. Into a groove (not represented) in the shaft end 23 and in the fastening element 27 is inserted a feather key 31, via which a rotationally operative connection between the shaft 16 and the fastening element 27 is established. In a bore (not represented) in the end face 32 of the shaft end 23 is screwed a hexagon bolt 33, with which a clamping washer 34 is screwed against a seat 35 on the fastening element 27. The fastening element 27 is thereby lockingly connected to the shaft end 23. The flange portion 29 has a bore 36. The gearwheel 26 has a corresponding bore 37, which can be realized as a throughbore or as a drilled hole. In the bore 37 is arranged a thread (not represented). A hexagon bolt 38 is screwed into this thread, whereby the flange portion 29 of the fastening element 27 is locked in place with the gearwheel 26. Behind the bushing portion 28 of the fastening element 27 is located a spacer bushing 39, which serves to ensure that the gearwheel 26 cannot make contact with the bearing portion 13 with the fastening screws 40 of the gear portion 14.
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(18) The adjustment of the flank clearance 47 is therefore made such that the fastening element 27 is arranged in a rotationally secure manner on the shaft end 23 or the driven shaft 16 by means of the feather key 31. After this, the clamping washer 34 is screwed into the seat via the hexagon bolt 33. At this point, the gearwheel 26 is already located on the receiving surface 30 of the bushing portion 28 of the fastening element 27 and is engaged with the gearwheel 25 of the drive shaft 15. For the adjustment of the flank clearance, the flange portion 29 with the elongated holes 41 located therein is now arranged via the bores in the gearwheel 26 and the hexagon bolts 38 are screwed in, whereupon still no locking connection between the flange portion 29 and the gearwheel 26 is formed. By rotating the flange portion 29, there is now the possibility of adjusting the flank clearance 47 between the feed screw 18 and the feed screw 17. Once the optimal adjustment of the flank clearance 47 is achieved, a locking connection is produced via the hexagon bolts 38.
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(20) If it becomes necessary to reset the flank clearance 47 due to maintenance works, for example on the face seal, due to wear and tear, or due to a change of feed screws 17, 18, it is possible, by removing the hexagon bolts 44 and taking off the cap 43, to reach with a tool (not represented) through the opening 42 into the gear chamber 21. It is possible, for example, to release the hexagon bolts 38 in order to achieve a rotation of the driven shaft 16 relative to the gearwheel 26 and thus reset the flank clearance 47. Following adjustment of the flank clearance, the hexagon bolts 38 are then retightened and the cap 43 mounted with the hexagon bolts 44 back onto the plane portion 50 and made ready for service by insertion of the hexagon bolts 44 into the bore 51.
(21) It is thus no longer necessary to detach the drive units 49 and/or the gear portion 14 of the housing 11. Furthermore, as a result of the elongated holes 41, it is no longer necessary to complexly remove the gearwheel 26 from the shaft 16 so as then to complexly adjust the flank clearance 47 by appropriately rotating the gearwheel 26 about a segment of a circle until the next bore 36 is aligned, and subsequently remounting the gearwheel 26 onto the shaft 16.
(22) TABLE-US-00001 Reference symbol list: 10 screw pump 11 housing 12 pump portion 13 bearing portion 14 gear portion 15 driven shaft 16 driven shaft 17 feed screw 18 feed screw 19 needle bearing 20 roller bearing 21 gear chamber 22 shaft end 23 shaft end 24 connection 25 gearwheel 26 gearwheel 27 fastening element 28 bushing portion 29 flange portion 30 receiving surface 31 feather key 32 end face 33 hexagon bolt 34 clamping washer 35 seat