Centrifugal pump
09784275 · 2017-10-10
Assignee
Inventors
Cpc classification
F04D7/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a centrifugal pump for conveying a gaseous suspension, in particular a fiber pulp suspension, which has a pump impeller (12) with at least one opening (15) in the base plate and ribs (16) on the rear side, where a separator unit (17) is provided consisting of a separator housing (25) with a stationary disc (18) and a disc (22) that rotates together with the pump shaft (21), where the separator unit (17) is arranged in the pump housing adjoining the pump impeller (12) on its rear side when viewing the pump impeller (12) in axial direction and where the separator housing (25) has a gas collecting chamber (31) with a gas discharge pipe (28). It is characterized by the disc (22) that rotates together with the pump shaft (21) having a closed surface (23) without openings. As a result, pulp losses are reduced and the centrifugal pump achieves better stability when pumping a gaseous suspension, particularly a fiber pulp suspension.
Claims
1. A centrifugal pump for conveying a gaseous fiber pulp suspension, comprising: a pump housing; a rotatable shaft (21) in the pump housing and defining a rotation axis; an impeller (12) in the pump housing, wherein the impeller has a base plate rigidly connected to the shaft and the base plate has front and rear sides; at least one opening (15) from the front side to the rear side of the base plate; a plurality of ribs (16) on the rear side of the base plate; a separator unit (17) in the pump housing, confronting the ribs (16) on the rear side of the base plate, said separator unit including, a separator housing (25), having a wall with a front side confronting the ribs (16) which are on the rear side of the base plate, said wall including a stator plate (18) with stationary ribs (19); an imperforate disc (22) firmly connected completely around and rotatable with the shaft, said disc (22) having a front side facing the stator plate (18); a gas collecting chamber (31) having a gas discharge pipe (28); and a gas flow path from the disc (22), to the gas collecting chamber (31).
2. The pump of claim 1, wherein the stator plate (18) has a front side and a rear side, the front side of the stator plate (18) has a smooth surface (20) and the ribs (19) on the stator plate (18) are on the rear side of the stator plate.
3. The pump of claim 2, wherein the disc (22) that rotates with the shaft (21) has front and rear sides, the front side has a smooth surface (23) and the rear side carries radially outwardly extending ribs (24).
4. The pump of claim 3, wherein the separator housing (25) includes an opening (27) for delivering flushing fluid to the ribs (24) on the rear side of the disc (22) that rotates with the shaft (21).
5. The pump of claim 1, wherein the disc (22) that rotates with the shaft (21) has ribs (24).
6. The pump of claim 1, wherein the disc (22) that rotates with the shaft (21) has front and rear sides, the front side has a smooth surface (23) and the rear side carries radially outwardly extending ribs (24).
7. The pump of claim 6, wherein the separator housing (25) includes an opening (27) for delivering flushing fluid to the ribs (24) on the rear side of the disc (22) that rotates with the shaft (21).
8. The pump of claim 1, wherein a fluidizer (13) is provided in front of the impeller (12).
9. The pump of claim 1, wherein the imperforate disc has a closed surface without any openings.
10. A centrifugal pump for conveying a gaseous fiber pulp suspension, comprising: a rotatable shaft (21) defining a rotation axis; an impeller (12) having a base plate rigidly connected to the shaft and the base plate having front and rear sides, and a plurality of blades at the front side of the base plate and extending radially outward along the base plate; at least one opening (15) from the front to the rear side of the base plate; a plurality of radially outwardly extending ribs (16) on the rear side of the base plate; a separator unit (17) confronting the ribs (16) on the rear side of the base plate, said separator unit including; a stationary separator housing (25), having a wall with a front side confronting the ribs (16) on the rear side of the base plate, said wall including a stator plate (18) having a front side and a rear side, with radially outwardly extending stationary ribs (19) on said rear side; a hub (30) connected to the shaft for co-rotation therewith and including an imperforate disc (22) firmly connected completely around and extending radially from the hub, said disc (22) having a front side confronting the ribs (19) on the stator plate (18); a gas collecting chamber (31) located axially rearward of the disc (22) and having a gas discharge pipe (28); and a gas flow path from the front of the disc (22), along a radially outer portion of the disc (22) to the gas collecting chamber (31).
11. The pump of claim 10, wherein the disc (22) has a rear side and a plurality of radially extending ribs (24) are connected to the rear side of the disc.
12. The pump of claim 11, wherein the separator housing includes an opening (27) for delivering flushing fluid to said ribs (24) at the rear side of said disc (22).
13. The pump of claim 11, wherein an annular chamber (29) is provided between the hub (30) and the stator plate (18), leading to the front side of the disc (22); the disc has a radially outer edge and a gap (26) is provided between the radially outer edge of said disc (22) and the separator housing (25); an annular opening (32) is provided between the hub (30) and the separator housing, rearward of the ribs (24) at the rear side of said disc (22); whereby a fluid flow path is defined from the impleller (12)through said at least one opening (15)to said rids (16)on the base plate; from said ribs (16)on the base plate through said annular chamber (29) to said gap (26); and from said gap along said ribs (24) on the rear side of said disc (22) and through said annular opening (32) to said gas collecting chamber (31).
14. The pump of claim 13 where the impeller (12) is in a pump housing and the separator unit (17) is also in the pump housing.
15. The pump of claim 13, wherein the imperforate disc has a closed surface without any openings.
16. The pump of claim 15, whereby the gas that flows to said gas collection chamber (31) passes radially along the front side of the disc (22) to the radially outer edge of the disk (22), through said gap (26), then radially inward along the rear side of said disc (22) to the gas collecting chamber (31).
17. The pump of claim 16, wherein any pulp present at the rear side of the disc (22) is conveyed through the gap (26) in revere flow relative to the gas, to the front side of the disc (22) and to said annular chamber (29) whereupon said pulp is introduced to the ribs (16) at the rear of the base plate.
18. The pump of claim 10, wherein the front side of the disc (22) has a smooth surface (23).
19. The pump of claim 10, wherein a fluidizer (13) is provided in front of the impeller (12).
20. The pump of claim 19, wherein the fluidizer is a rotor connected to the pump shaft.
21. The pump of claim 10, wherein the imperforate disc has a closed surface without any openings.
Description
(1) In the following, the invention is described on the basis of the drawings, where
(2)
(3)
(4)
(5)
(6) In addition, the pump 1 has a gas discharge pipe 8, in which a regulating valve 9 and a vacuum pump 10 are mounted. The control unit 7 controls the flow in the outlet pipe 4 by means of the control valve 6 and, in particular, by means of the control valve 9 in the gas discharge pipe 8. If the level of the suspension in the tank 3 and standpipe 2, measured by the pressure sensor 11 at the lower end of the standpipe 2, rises too high and there is thus a risk of suspension entering the gas discharge pipe 8, the control unit 7 closes the regulating valve 9. It is this system that largely enables enough gas to be separated when the system is started up and shut down.
(7)
(8) In centrifugal pumps for gaseous suspensions, e.g. MC pumps, fiber pulp is pressed through the openings 15 into the degassing chamber or, in the present case, into the separator unit 17 depending on the flow rate and consistency. This pulp is conveyed back into the pump by the separator impeller 22 with the aid of the vanes 24. In operating ranges where no or only a little fiber pulp is pressed into the separator unit 17 or the degassing chamber, more or less air is pressed through the separator unit 17 depending on the volume of air separated. This air is discharged from the pump through a bore hole 28 on the side facing away from the separator impeller 22 with or without the aid of a vacuum pump. Thus, the separator unit 17 according to the invention causes fibers to be pumped back permanently without obstructing the air flowing out at the same time. As the separator impeller 22 has a closed surface without openings, the fibers cannot escape.
(9) The separator housing 25 forms the gas collecting chamber 31 with the pump shaft 21 and contains the gas discharge opening (28) and the pipe 27 for flushing water. The gas that is separated, particularly the air that is separated, flows from the rear side of the pump impeller 12 through the channels formed by the ribs 19 on the stationary disc 18, then passes through the gap 26 into the channels formed by the ribs 24 of the rotating disc 22 into the gas collecting chamber 31 and is discharged from there out of the centrifugal pump 1 through the gas discharge pipe with or also without an additional vacuum pump.
(10)
(11) It can thus be appreciated that in the preferred embodiment shown in
(12) An annular chamber 29 is provided between the hub 30 and the stator plate 18, leading to the front side of the disc 22. A gap 26 is provided between the disc 22 and the separator housing 25, and an annular opening 32 is provided between the hub 30 and the separator housing, behind the ribs 24. In this manner, a flow path is defined from the impeller 12 through the openings 15 to a radially inner portion of ribs 16; from the ribs 16 through the annular chamber 29 to the gap 26, and from the gap along the ribs 24, and through the annular opening 32 to the gas collecting chamber 31.
(13) Without the separator unit according to the invention, a compromise is always needed between fiber loss and pump stability, as well as pump performance. By using the separator according to the invention, fiber loss, pump stability, and pump performance can be uncoupled from each another.