The disclosed embodiments relate to a decanter centrifuge comprising a centrifugal bowl rotating around a preferably horizontal axis of rotation including at least one liquid discharge outlet at one end and at least one solids discharge opening at the other end, and a scroll conveyor mounted substantially concentrically inside the bowl for rotation of said centrifugal bowl at a slightly different speed relative to the bowl for transporting the solid phase towards said solids discharge openings.
Among the factors affecting cake moisture are long residence time and compacting pressure on the cake. One part of the compacting pressure can be generated by the hydraulic pressure of liquid column difference between solid and liquid discharges which is used to compact the cake at the baffle/cone and to support scroll transportation towards the conical section. Besides the rotational speed, differential speed between bowl and scroll and torque control of the scroll conveyor, the relative pond depth (difference between liquid and solids discharge diameters) represents an important parameter to operate a decanter. At the end of the feed tube slurry enters the decanter centrifuge through the feed ports of the feed chamber. Said slurry is separated in at least one clarified liquid moving through liquid outlets and a separated solid (cake) which is transported by the scroll towards and through solids discharge openings.
Different concepts have been proposed to change the relative pond depth. The most common way to vary the hydraulic pressure generated by the relative pond depth is the weir plate or port member installed at the liquid discharge where it can be adjusted radially in order to change the diameter of the liquid discharge at the same time as keeping the solids discharge diameter fixed. This way to change the relative pond level, however, has some limits for deep pond decanters where there is too little space to adjust the pond depth radially at the liquid discharge side. In addition this adjustment on a small radius has lower effect on the hydraulic pressure than adjustment at the solids discharge openings.
In EP 0 747 127 A2 is proposed an adjustable gate mounted on the hub of the scroll conveyor with a locking mechanism which can control the cake compaction at the solids discharge openings. This system is used to improve cake moisture or it is an additional method for operating a decanter centrifuge.
In EP 0 798 045 A1 is presented a system to control the flow of solid discharge by varying the cross-sectional area of the solids discharge openings with a sleeve which can help to improve moisture content in the cake and it can be used as an additional method for operating a decanter centrifuge.
Another system to control flow of solids discharge openings is shown in U.S. Pat. No. 7,311,654 B2 where the adjusting of cross-section is made by a disk adjustable in the axial direction.
The patent application WO 2012/003407 A2 presents a cone-less decanter with a baffle where the solid lifts from the bowl wall in a radially inward manner along a plough and is pumped into a heavy phase discharge flow where it is re-suspended and exits the machine with that flow. There is no level difference on the two sides of the baffle. In order to adjust the solid phase flow across the baffle, air injection is used to change the density at one side of the baffle and thus generating a flow through the baffle gap.
In U.S. Pat. No. 9,393,574 B1 are presented exchangeable wear inserts for the solids discharge openings of a decanter centrifuge with a holder fixed with screws from the outside. The discharge diameter is not varied in this case.
FR778407A discloses a clarifier and centrifugal separator with liquid evacuation at the bottom through nozzles and with sediment evacuation at the top. The description explains that the clarified liquid is forced to exit at the bottom base through the nozzles, which can be accessed for changing or setting of the nozzles It is disclosed that the nozzles have their length determined so that their inner end, with respect to the thickness of the liquid layer, is such that a desired quantity of water is removed by them; which at the same time regulates the consistency of sediment.
DE3345400A discloses a solid bowl screw centrifuge with sludge discharge nozzles with a control device which allows for periodic opening or closing of the sludge nozzles. According D2 the control device is a rotor being operated as a “Schleusenorgan” at the peripheral area and is volumetrically metering the discharge of the sludge through the available nozzles. The diameter of the nozzle openings is without influence on the discharged sludge volume per time unit The nozzle may be fastened with screws and for sealing the nozzle body against the bowl a sealing body may be used, which thickness may be reduced in order to move the nozzle body inwardly in order to compensate for wear.
None of these solutions incorporate exchangeable or adjustable bushings in a radial manner without changing the outlet cross-section in order to change the solid discharge diameter, thereby reducing the solid flow capacity.
The disclosure relates to radially adjustable bushings at the solids discharge openings by which the internal cake level can be adjusted to achieve optimal cake moisture or it can be used as an additional parameter to control the decanter. The bushings can be adjusted in such a way as to reduce the total power consumption of the decanter, using hydraulic pressure difference as a scroll transport support.
In the disclosed embodiments, the relative pond depth is generated by varying the solids discharge diameter and by keeping the liquid discharge diameter fixed. This variation is enabled by using exchangeable or adjustable bushings moving the bushing entrance in radial direction together with a special shape of the scroll flight or the bowl at the end of the conical section. The bushings can be screwed or fixed with any system allowing radial movement or by exchangeable bushings with different lengths. Said bushings are oriented relative to the plane perpendicular to the rotational axis with an angle (α) in the range of 1° to 90°, preferably 30° to 60°.
The invention will now be described in further details based on exemplary, but not limiting, embodiments with reference to the drawings. In the drawings:
In another embodiment, the relative pond depth 12 is established by changing both discharge diameters at the same time: adjustable or exchangeable weir plates 13 or discharge port members for the liquid discharge and radially adjustable or exchangeable bushings 10 for the solids discharge openings. This invention can also be implemented in a 3-phase decanter and serves to improve the decanter performance.
More embodiments are presented in
In
The example in
The invention is not limited to the examples shown in the drawings. It may be used for any kind of decanter where the discharge of liquid and solids and thus the separation shall be adjusted.
Number | Date | Country | Kind |
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17169366 | May 2017 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/057637 | 3/26/2018 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/202358 | 11/8/2018 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3520473 | Gilreath | Jul 1970 | A |
5244584 | Schlieperskoetter | Sep 1993 | A |
7311654 | Ostkamp | Dec 2007 | B2 |
8419607 | Mackel et al. | Apr 2013 | B2 |
9393574 | Morris | Jul 2016 | B1 |
20060089247 | Ostkamp | Apr 2006 | A1 |
Number | Date | Country |
---|---|---|
3345400 | Jun 1985 | DE |
3345400 | Jun 1985 | DE |
0747127 | Apr 2002 | EP |
0798045 | Jul 2002 | EP |
778407 | Mar 1935 | FR |
5169965 | Jun 1976 | JP |
6074750 | May 1985 | JP |
2012003407 | Jan 2012 | WO |
Entry |
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DE 3345400 Description and Claims Espacenet machine translation. |
International Search Report and Written Opinion dated Jun. 19, 2018 (PCT/EP2018/057637). |
International Preliminary Report on Patentability dated Mar. 29, 2019 (PCT/EP2018/057637). |
Number | Date | Country | |
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20210114042 A1 | Apr 2021 | US |