The invention relates to a drive device for a solid bowl screw centrifuge.
Such a solid bowl screw centrifuge—also called a decanter—is known from DE 10 2006 028 804 A1. During operation, the orbiting transmission of the drive device heats up. It is known in this respect to use transmission cooling devices, by means of which this effect is intended to be counteracted.
As transmission cooling devices, external oil coolers are known on the one hand. In this case the oil is directed via a rotating device into the orbiting transmission—which has at least one rotating outer part—and discharged again. It is furthermore known that cooling of the transmission can be improved by means of a more intense air circulation. The friction forces of the rotating transmission surface are utilized in the process in order to create an airflow around the transmission, by means of which the air on the transmission surface is directed away from this in the radially outward direction. Also known are solutions in which the transmission is provided with a housing. Via vanes which are attached on the rotating transmission, an airflow for cooling is created axially and directed into the housing.
Against this background, the invention has the object of counteracting the effect of transmission heating on a transmission of a drive device for a centrifuge using simple constructional means.
Created is a drive device for a solid bowl screw centrifuge, with at least one motor for rotating a drum of the centrifuge, a transmission which is connected between motor and drum, and a cooling device for cooling the transmission in operation during rotations of the drum. This cooling device is designed as an annular body which is mounted on the transmission on the outside and which has at least one air guiding device which is designed for the purpose of directing air onto the outer surface of the transmission radially from farther on the outside radially farther inward.
By means of the transmission cooling device, the forced convective heat transfer from the transmission to the surroundings is improved in a simple constructional manner.
According to an advantageous development, by means of which the cooling effect is further increased, a plurality of the air guiding devices are formed on the annular body.
The annular body preferably has a ring, or a plurality of rings, which are preferably designed as radially oriented annular disks. These rings can be easily fastened on the transmission and on the other hand allow the attachment of the air guiding devices in a simple manner. The rings, moreover, can be additionally used themselves for air guiding.
According to an advantageous variant, one or more of the air guiding devices is/are formed between two axially spaced apart rings of the annular body, wherein the one or more air guiding devices which are formed between the two axially spaced apart rings of the annular body act as vanes on the one hand which increase the airflow in the surroundings of the transmission and on the other hand act with air guiding effect by them guiding the airflow from radially farther on the outside to radially closer to the transmission surface. In particular, it is possible in such a way that one or more of the air guiding devices and the rings in the installed state together form a casing around the transmission which at one or more points has inlets arranged radially more toward the outside and outlets which lie radially more toward the inside, preferably relative thereto.
The transmission is preferably designed as a planetary transmission or orbiting transmission, which within the sense of this application means that it has at least one transmission outer part which rotates during operation, that is to say a completely or partially free lying part radially toward the outside, by means of which the annular body rotates in a rotational direction during operation. It will also have further rotating parts—for example radially more toward the inside.
The invention is described in more detail below based on exemplary embodiments with reference to the drawings.
The drum 1 of
The product (mixture) to be processed is directed through a central pipe into the rotating drum 1. In the drum 1, this product is cleared of a solid phase or an aqueous phase. The solid phase has to be pushed along the screw 2 against the centrifugal force of the particles.
In the drum 1, the screw 2, which is rotated at a low relative rotational speed in the relation to the drum 1, is therefore rotatably supported. In this way, the screw 2 brings about the required delivery of the solid material or of the solid phase in the direction of a solid material outlet (as a rule at a conical end of the drum 1).
For rotating the drum 1 and the screw 2, the solid bowl screw centrifuge has a drive system. A first drive motor—called the main motor 3—serves primarily for rotating the drum 1 and a second drive motor—called the secondary motor 4—serves primarily for creating a variable differential speed between the drum 1 and the screw 2. A transmission 5 can be provided between the drive motors on one side and between the drum 1 and the screw 2 on the other side. This transmission 5 can be designed for example as a planetary transmission with one or more stages. It can also be an orbiting cam plate transmission. Such an arrangement is known for example from the generic DE 10 2006 028 804 A1.
The main motor 3 is connected via a belt drive 6, having two belts 7, 8 by way of example here, to the transmission 5 and to the drum 1. The main motor 3 serves for supplying the discharge power for cleared fluid and the solid material and provides the off-load power. The torque which occurs during operation between the screw 2 and the drum 1 is created here via the transmission 5. The required power for the solid material delivery—that is to say the variable differential rotational speed between the drum 1 and the screw 2—is supplied to the transmission 5 via the secondary motor 4.
The main motor 3 and the secondary motor 4—preferably via a frequency converter in each case, not shown here, which is connected upstream to them, are connected to an alternating current system—usually a three-phase current system, and in this way are provided with electric power.
During operation, the transmission 5 heats up one account of flank friction, bearing and seal friction and splash losses. In order to counteract this effect, the transmission 5—preferably a planetary transmission—is cooled by means of a transmission cooling device 9 (
The transmission 5—see also
According to
The annular body 11 has at least one ring 12—see
It is preferred and constructionally simple to be implemented that one, or a plurality of, sheet metal plate(s) form(s) the air guiding devices 14, 15, 16, 25. According to
The air guiding devices 14, 15, 16, 25 of
The one or plurality of air guiding device(s) 14, 1516, 25 can in each case be formed in one piece or in a multiple of pieces. They are fastened on the ring 12 (
According to
In principle, a type of preferably almost closed casing is formed around the transmission 5, but which at a number of circumferential positions has the openings or inlets 17 and outlets 18, wherein, however, similar to a pitot tube effect, air backs up and is directed through the gap 19 between transmission 5 and casing.
The air guiding devices 14 can be stabilized in the circumferential direction for example by means of a further ring 20 which lies axially between the rings 12, 13. The air guiding devices 14 act especially in a transmission region 5a which is completely or largely cylindrical with regard to the external contour.
On one of the two rings 12, 13 provision is made for a further air guiding device 15—also conically formed in this case—which is designed as a conical sheet metal ring. In this way, a conical gap 28 (
According to
The air guiding devices 16 are provided in this case for the purpose of directing air into the rather cylindrical region 5a of the transmission 5 and the air guiding devices 25 are provided for the purpose of directing air into the rather conical region 5b of the transmission 5. Air is again directed radially from the outside inward toward the transmission 5, wherein the air can escape axially to the side from the air guiding devices 16, 26 on the outer circumference of the transmission 5 (see
Number | Date | Country | Kind |
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10 2015 115 720.9 | Sep 2015 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/070662 | 9/1/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/045929 | 3/23/2017 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4327862 | Jakobs | May 1982 | A |
20020183186 | Caldwell | Dec 2002 | A1 |
20130220766 | Tadych | Aug 2013 | A1 |
20170189916 | Eberle | Jul 2017 | A1 |
Number | Date | Country |
---|---|---|
202097039 | Jan 2012 | CN |
202191968 | Apr 2012 | CN |
203108669 | Aug 2013 | CN |
10 2006 028 804 | Dec 2007 | DE |
20 2012 012 743 | Oct 2013 | DE |
202012012743 | Oct 2013 | DE |
3 154 703 | Apr 2017 | EP |
2393142 | Mar 2004 | GB |
2 393 142 | Nov 2004 | GB |
2004-532728 | Oct 2004 | JP |
2011-122645 | Jun 2011 | JP |
WO 2013070150 | May 2013 | WO |
WO 2015189349 | Dec 2015 | WO |
WO-2016168439 | Oct 2016 | WO |
Entry |
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DE 202012012743 Description Espacenet Machine Translation. |
Chinese-language Chinese Office Action issued in Chinese counterpart application No. 201680053842.0 dated May 29, 2019 (Seven (7) pages). |
Japanese Office Action issued in Japanese application No. 2018-534003 dated Mar. 17, 2020, with English translation (Five (5) pages). |
PCT/EP2016/070662, International Search Report (PCT/ISA/210) dated Nov. 18, 2016, with partial English translation, enclosing Written Opinion of the International Searching Authority (PCT/ISA/237) (Eleven (11) pages). |
German Search Report issued in German counterpart application No. 10 2015 115 720.9 dated Apr. 28, 2016, with Statement of Relevancy (Eight (8) pages). |
Number | Date | Country | |
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20180280993 A1 | Oct 2018 | US |