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1. Field of the Invention
The apparatus of the present invention relates to vibratory centrifuges. More particularly, the present invention relates to an improved vibratory centrifuge which provides maximum vibration of the centrifuge through the natural resonance between a single vibratory motor and torsion springs upon which the system is mounted.
2. General Background of the Invention
Centrifugal separators or centrifuges such as horizontal centrifuges are generally used for the separation or the removal of liquid from solids such as coal or other types of solids. The vibratory centrifuge is usually defined as a low G machine that conveys solids over a screen surface with oscillating or vibratory motion. The machine is best suited for a range of particle sizes and both have inherent advantages and disadvantages. Normally, there is a thick bed that is maintained on the screen surface, there is not much loss of solids through the screen openings. This is advantageous in that the vibratory unit is a higher recovery device and thus more efficient machine. However, the thick bed also reduces the drying or dewatering that occurs. Thus, the current vibratory machines provide high recovery efficiencies but will not remove as much water or liquids as will the screen-scrow machines.
Currently, most vibratory centrifuges use what is termed “brute force”, that is operating in sub-resonance, to impart vibration to the vibrating component. Such a device is very costly and inefficient. Therefore, there is a need in the industry for a horizontal vibratory centrifuge, which can utilize a link between the vibrating motor and the vibrating component through an indirect link, rather than through the brute force of the direct link concept. Such a device is the subject of this patent application.
The apparatus of the present invention solves the shortcomings of the art in a simple and straightforward manner. What is provided is a horizontal vibratory centrifuge, which includes a slurry separating component; a drive motor; a drive unit for rotating the separating component; a feed pipe for feeding the slurry into the separating component; a product discharge for discharging the solid portion of the slurry from the separating component and a pipe for discharging the fluid portion from the separating component; at least one vibratory motor mounted onto the drive unit; a plurality of connecting rods moveably connecting the drive unit to a torsion bar assembly, the assembly including a plurality of torsion bars, each mounted on a first end to an upper fixed spring clamp and a lower fixed spring clamp, and on a second end to the connecting rods with a pillow bearing, so that the vibrations of the low energy vibrating motor is in resonance with the springs so as to provide in part maximum vibration to the vibrating assembly at low energy levels.
There is also provided the method of imparting vibration to a slurry in the separation component by a single low energy vibrating motor which operates in resonance with the torsion springs to achieve maximum vibration and thus maximum separation between the solid and liquid components of the slurry.
Therefore it is a principal object of the present invention to provide an improved horizontal vibrating centrifuge, which imparts maximum vibration to the vibrating centrifuge component through the use of a single low energy motor mounted with the assembly;
It is a further object of the present invention to provide a horizontal vibrating centrifuge which includes a vibrating motor mounted upon a torsion bar spring assembly so that the vibration of the motor is in resonance with the torsion bars to effect the maximum vibratory motion to the vibrating component of the system;
It is a further object of the present invention to provide a simplified horizontal vibrating centrifuge which eliminates the brute force or sub-resonance and replaces it with at least one low energy vibrating motor which operates in resonance with springs for effecting the maximum vibratory motion to the vibrating system;
It is a further object of the present invention to provide a horizontal vibrating centrifuge which includes a drive unit mounted on torsion bars, the torsion bars connected to upright members, which mount to axle shafts in the assembly to impart vibration to the vibrating component.
For a further understanding of the nature, objects, and advantages of the present invention, reference should be had to the following detailed description, read in conjunction with the following drawings, wherein like reference numerals denote like elements and wherein:
As seen in the Figures, there is included in the cutaway view a feed pipe 27 into which slurry 60 is fed as seen by arrow 61. For purposes of clarity, the term “slurry” may be defined as a mixture of a liquid and insoluble solid material. There is provided a back wall 29, which of course would mate with circular wall 13 to define the interior 51 of the separation component 12. There is provided a rotating screen 50 which would rotate when the motor rotates the drive assembly 23 during the separation process. As seen in the Figure, slurry 60 is fed into feed pipe 27. The slurry 60 may comprise, for example, a coal slurry, having both solid and liquid components, or the like. As the slurry 60 enters into the rotating screen 50, the slurry is rotated and vibrated in a manner as will be discussed further, so that the fluid portion 62 is filtered through the screen 50, and the solid portion 55 exits the product discharge chute 67, as seen by arrow 68. The chute 67 would discharge the solid portion 55 of the slurry, and the discharge pipe 25 would discharge the fluid or effluent portion 62, such as water, as seen in
Turning now to the specifics of the means in which the improved vibratory centrifuge 10 is operated, reference is made to the Figures where the drive assembly 23 is mounted on an axle shaft 28. At both ends of the axle shaft 28 there is provided a plurality of vertically inclined connecting rods 30. At the connection between the axle shaft 28 and the connecting rods 30, there is provided bearing assembly, housing bearings 31, so that movement is allowed between the shaft 28 and the connecting rod 30 during operation. Each of the connecting rods 30 would be moveably connected to an end of a horizontally positioned torsion bar or torsion spring 32. Each torsion bar 32 is mounted on a first fixed end 33 by an upper fixed spring clamp 34 and a lower fixed spring clamp 36, and are movably or flexibly mounted on their second end 35 to the lower end 41 of each of the connecting rods 30 via a bearings 31. In the preferred embodiment, bearings 31 would be pillow block mounted roller bearings for optimal performance.
This connection is illustrated in
As an alternative embodiment, in the assembly illustrated in
Therefore, as seen in
In the preferred embodiment, there is provided a single vibratory motor 38 attached to and mounted on the drive unit 23 as seen in
When the vibratory motor 38 imparts vibration to the drive assembly 23 in the direction of arrows 70, as seen in
The following is a list of parts and materials suitable for use in the present invention.
All measurements disclosed herein are at standard temperature and pressure, at sea level on Earth, unless indicated otherwise. All materials used or intended to be used in a human being are biocompatible, unless indicated otherwise.
The foregoing embodiments are presented by way of example only; the scope of the present invention is to be limited only by the following claims.
Number | Name | Date | Kind |
---|---|---|---|
2204007 | Baily | Jun 1940 | A |
2556317 | Cook | Jun 1951 | A |
2626745 | Fletcher, Jr. | Jan 1953 | A |
3133879 | Becker | May 1964 | A |
3636468 | Ellis | Jan 1972 | A |
4079882 | Mizuyoshi et al. | Mar 1978 | A |
4253961 | Schlebusch et al. | Mar 1981 | A |
4639320 | Smith | Jan 1987 | A |
5127512 | Frolich et al. | Jul 1992 | A |
5616245 | Albrecht | Apr 1997 | A |
5676835 | Derton et al. | Oct 1997 | A |
5780780 | Ahmed | Jul 1998 | A |
6260391 | Rippe | Jul 2001 | B1 |
20020086789 | Carson et al. | Jul 2002 | A1 |
Number | Date | Country |
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WO 2007109603 | Sep 2007 | WO |
Number | Date | Country | |
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20070215560 A1 | Sep 2007 | US |