The present invention relates to a system having a centrifugal separator.
The present invention relates to a system comprising a hermetic centrifugal separator, where the separator comprises a rotor including a separation chamber, an inlet channel for a mixture of components to be separated, a first outlet channel for receiving at least one separated light component, a second outlet channel for receiving at least one separated heavy component, the system further comprising recirculation means for recirculating from said second outlet channel to said separation chamber part of the separated heavy component.
According to a second aspect, the present invention relates to a method of controlling such a system comprising the following steps: feeding a mixture of components into a separation chamber from an inlet channel; separating said mixture of components in said separation chamber into light and heavy components; leading at least one light component into a first outlet; leading at least one heavy component into a second outlet; recirculating part of the separated heavy component from said second outlet into said inlet channel;
Such systems are used when the content of the heavy component in a mixture varies heavily or is constantly low, whereas it is often desired to obtain a separated sludge with a constant concentration, to e.g. avoid clogging in heavy phase outlet pipes.
It is an object of the present invention to provide an improved system comprising a hermetical centrifugal separator and a method of controlling such a system with which it is possible to control the heavy phase flow rate.
In accordance with the invention there is therefore provided a system comprising centrifugal separator as initially described hereinabove, wherein a first monitoring means is monitoring density, flow rate, or combination thereof, of the heavy component flowing in said second outlet channel, and a first control means is controlling recirculation flow in response to a control signal from said first monitoring means.
In a preferred embodiment of the present invention the system comprises a second monitoring means monitoring flow rate of the heavy component flowing in said second outlet channel, and a second control means controlling the pressure by controlling a first back pressure valve in said first outlet channel in response to a control signal from said second monitoring means.
In a further preferred embodiment of the present invention the system comprises a third monitoring means monitoring pressure in said second outlet channel, and a third control means controlling the pressure by controlling a second back pressure valve in said second outlet channel in response to a control signal from said third monitoring means.
In yet another preferred embodiment of the present invention the system said control means are controlling in response to a signal based on a difference between a control signal from said monitoring means and a desired set point for a monitored parameter.
In another preferred embodiment of the present invention the system comprises a fourth monitoring means monitoring flow rate in said recirculation means, and a fourth control means controlling recirculation flow rate in response to a control signal from said fourth monitoring means, where said fourth control means is getting its set point from the output of said first control means.
According to an embodiment of the present invention said control means are PID controllers.
In another embodiment of the present invention said first control means is a MPC controller and said second, third and fourth control means are PID controllers, and where said first control means are supplying set points to at least one of said second, third and fourth control means.
In a further embodiment of the present invention said second outlet channel is connected to heavy component outlet pipes inside the separation chamber where said pipes have inlet openings close to the interior wall of the separator bowl.
In accordance with the second aspect of the invention there is provided a method as initially described hereinabove, wherein it further comprises the following steps: monitoring parameters of density, flow rate or combination thereof, of the heavy component flowing in said second outlet channel; creating a control signal in relation to said parameter(s); and controlling the recirculation flow in response to said control signal.
According to an embodiment of this second aspect of the present invention the method comprises the following steps: monitoring a parameter of flow rate, of the heavy component flowing in said second outlet channel; creating a second control signal in relation to said parameter of flow rate; and controlling the pressure in said first outlet channel by controlling a first back pressure valve in said first outlet channel in response to said second control signal.
In a further embodiment of this aspect of the present invention the method comprises the following steps: monitoring a parameter of pressure in said second outlet channel; creating a third control signal in relation to said parameter of pressure; and controlling the pressure in said second outlet channel by controlling a second back pressure valve in said second outlet channel in response to said third control signal.
In another embodiment of this aspect of the present invention the method said step of controlling comprises, computing of a difference between said control signal and a desired set point for a monitored parameter.
In a further embodiment of this aspect of the present invention the method comprises the steps of: monitoring a parameter of flow rate in said recirculation means; creating a fourth control signal in relation to said parameter of flow rate in said recirculation means; and controlling said recirculation flow rate in response to said fourth control signal, where said controlling is comprising computing of a difference between said fourth control signal and a set point which corresponds to the first control signal.
The invention thus provides a system and method which control the characteristics of the separated heavy component even when feeding the separator with a feed of varying contents.
The system and the method according to the invention are described below in a more detailed description of preferred embodiments of the present invention referring to the drawings
In
In each outlet channel 4, 5 is a (first and second resp.) back pressure valve 6, 7 arranged. Leading from said second outlet channel 5 for heavy components to said inlet channel 2 is a recirculation means 8 arranged. Said recirculation means 8 comprises a recirculation channel 9 adapted to deviate part of the separated heavy component upstreams of said second back pressure valve 7 and a recirculation pump 10 adapted to pump said part of the separated heavy component to said inlet channel 2.
The pumping flow of the recirculation pump 10 is controlled by a so called PID controller (Proportional-Integral-Derivative) 11 which responds continually or intermittently to a signal from a coriolis flow meter 12 located in said outlet channel 5 for heavy components. Said signal derives from a calculated difference between a measured flow or density and a desired set point. It is for instance highly desirable that the outlet channel 5 is not subject to clogging as the continuous flow of heavy component is then interrupted. The desired set point may then be of a value that ascertains a continuing flow.
Also the back pressure valves 6, 7 are provided with PID controllers 13, 14.
The PID controller 13 controlling the back pressure valve 6 in the light component outlet channel 4 responds to a signal based on a difference between the heavy component flow in the outlet channel 5 and a desired set point of the same. The PID controller 11 is then responding to the density of the heavy component in the outlet channel 5.
The PID controller 14 controlling the back pressure valve 7 in the heavy component outlet channel 5 is responding to the back pressure in said heavy component outlet channel 5.
The idea is to control the recirculation flow to control the density while the light component valve 6 controls the heavy component pressure.
This control strategy can be modified by adding a so called cascaded controller over the recirculation pump 10, as can be seen in
In
The idea with cascaded controllers is that the inner loop is much faster than the outer loop. The outer controller thus considers the control signal (i.e. the set point to the inner loop) as being realized immediately because of the different time scales they operate in. The control is still decentralized, but now there is also the possibility of controlling the recirculation flow by setting its set point. A PID controller 17 controlling the heavy component back pressure valve 7 responds to a signal calculated from the heavy component flow monitored by the coriolis flow meter.
In
An application of the present invention discloses a system according to the present invention where the hermetic centrifugal separator is equipped with conventional ejection openings for optional intermittent discharge of sludge.
To a person skilled in the art the present invention is not limited by the described examples and several modifications and alternatives are possible within the scope of the present invention as defined by the claims.
Number | Date | Country | Kind |
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1000085-9 | Jan 2010 | SE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/SE11/50091 | 1/28/2011 | WO | 00 | 9/28/2012 |