Title of Invention

FLOW CONTROL APPARATUS

Abstract Flow control apparatus (10) for controlling the flow of a fluid in a conduit said apparatus comprising : magnetic apparatus (11) arranged in association with a working fluid flow; and apparatus (12, 13) for selectably applying varying electromagnetic fields (15) to said magnetic apparatus at a plurality of discrete locations therealong, thereby to drive said magnetic apparatus in a selected manner and thus to change the dynamic state of the working fluid flow accordingly.
Full Text SUMMARY OF THE INVENTION
The present invention seeks to provide an apparatus which is capable of
changing the dynamic state of fluid flows by selective application of
electromagnetic fields to a working member, which is operative to directly influence
the fluid flow. The present invention is further capable of providing very high
resolution activation of a working member, and is further capable of providing
selectable variation in time of the activation of a working member in real time. The
present invention is also, due to a minimal number of working parts, highly reliable.
The present invention provides a flow control apparatus for controlling the
flow of a fluid in a conduit, said apparatus comprising : magnetic apparatus
arranged in association with a working fluid flow in a conduit, along the length
thereof; and apparatus for selectably applying varying electromagnetic fields to
said magnetic apparatus at a plurality of discrete locations therealong, thereby to
drive said magnetic apparatus in a selected manner and thus to change the
dynamic state of the working fluid flow accordingly.
In accordance with a preferred embodiment of the invention, an
electromagnetic flow control apparatus which includes a fluid flow conduit, a
magnetic membrane, and a plurality of discrete sources of selectably variable
magnetic fields, such as electromagnets, arranged in an ordered array, to drive the
membrane in a desired manner to control the flow of fluid in the conduit. The
membrane can preferably be driven between two extreme positions wherein the
flow of fluid in the conduit is totally unrestricted in the rest position of the

membrane and wherein the flow is highly restricted or stopped completely in the
maximum deformation of the membrane radially inward.
Further, in accordance with another preferred embodiment of the present
invention, the electromagnetic flow control apparatus additionally includes a
control device to selectively activate the array of electromagnets so as to
produce a desired deformation in the magnetic membrane and a desired time
variation thereof. In accordance with a yet another preferred embodiment of the
present invention, the flow control apparatus is an integrated fluid flow conduit
and electromagnetic control apparatus wherein the magnetic membrane is the
body of or is embedded in the fluid flow conduit In accordance with an
alternative embodiment of the present invention the flow control apparatus
encloses an existing fluid flow conduit and controls the fluid flow therein by
exerting pressure thereon from without
In accordance with additional embodiments of the present invention, the
flow control apparatus additionally includes a rod member, which may be made
of magnetic material, located centrally in the fluid flow conduit along the length of
the flow control apparatus. Such a roc! can enhance the capability of the flow
control apparatus to cut off the flow of fluid in the conduit
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
The present invention will be more fully understood and appreciated from
the following detailed description, taken in conjunction with the accompanying
drawings, in which.

Fig. 1 is a schematic cross-sectional view of flow control apparatus,
constructed in accordance with a first embodiment of the invention, in which a
magnetic membrane is controlled via a single array of electromagnets, only;
Fig. 2 is a schematic cross-sectional view of flow control apparatus,
constructed in accordance with a second embodiment of the invention, in which
a magnetic membrane is controlled via a pair of electromagnet arrays;
Figs. 3A, 3B. and 3C are isometric, side-sectional, and cross-sectional
views, respectively, of an integrated fluid flow conduit and electromagnetic flow
control apparatus, constructed in accordance with a third embodiment of the
invention;
Figs 4A and 4B are cross-sectional views of the conduit of Figs. 3A, 3B
and 3C, in partially closed and fully closed positions, respectively
Fig. 5A is a side-sectional view of a conduit and fluid control apparatus,
similar to that of Figs. 3A-4B but including a rod member extending
longitudinally therein;
Figs. 5B and 5C are cross-sectional views of the conduit of Fig. 5A, in fully
open and fully closed positions, respectively
Fig. 6A is a side-sectional view of a fluid control apparatus, according to
another embodiment of the invention, for use with an existing fluid flow conduit
also shown in the figure,
Fig. 6B is a side-sectional view of a fluid control apparatus similar to that
in Fig. 6A, with the addition of a protective air cushion around the existing fluid
flow conduit;

Fig. 7 is a block diagram of a controller circuit forming part of the
apparatus shown in Fig. 1; and
Fig. 8 is a block diagram of a driver circuit forming part of the apparatus
shown in Fig. 1.

DETAILED DESCRIPTION OF THE INVENTION
Referring, now to Figure 1. there is shown, schematically, a fluid flow control
device, referred to generally as 10, in accordance with a first embodiment of the
present invention A magnetic membrane 11 is located opposite an array of
electromagnets 12. The array may be linear, as in Figure 1, or planar. Electric power
from the power supply 14 is distributed among the electromagnets of the array 12 by
a controller and driver unit 13 so as to create varying magnetic fields 15 which
produce a desired wavelike, dynamic, deformation of the membrane 11'. When the
membrane is placed within or adjacent to a fluid flow conduit with fluid flowing therein,
as shown by arrows 16, the deformation will cause a corresponding variation in the
fluid flow characteristic. The use of a plurality of electromagnets 12 and the electronic
control thereof to produce electromagnetic fields 15 acting on the membrane element
11 which directly affects the fluid flow, provides high resolution and real time control
thereof.
Figures 7 and 8 show block diagrams of examples of controller and driver
circuits, respectively, which together may constitute controller and driver unit 13
shown in Figure 1. These circuits, as will be understood by persons skilled in the art,
are operative to distribute power to the electromagnets of the array to create the
aforementioned varying magnetic fields.
As will be understood by persons skilled in the art, magnetic membrane 11 can
have a number of alternative configurations. These may be, in alternative
embodiments of the invention, by way of example, any of the following:
• a single membrane made of a flexible magnetic material, such as polyethylene
impregnated with iron filings or with nickel
• a compound membrane having joined magnetic and non-ma gnet ic layers wherein
the magnetic layer transfers forces resulting from its deformation as described
above to the non-magnetic layer
• a single non-magnetic membrane having magnetic elements embedded therein
• a single non-magnetic membrane having magnetic elements attached to its surface
It will be further understood by persons skilled in the art that such magnetic elements
may be permanent magnets or other magnetic material.

In a second embodiment of the present invention, shown schematically in
Figure 2, a second array of electromagnets 27 similar to the first array 22, is located
opposite the magnetic membrane 21. The use of an additional array provides
enhanced spatial and temporal response in the magnetic membrane 21 with resulting
enhanced control of the flow of the fluid in the conduit.
As will be understood by persons skilled in the art, the more discrete locations
whereat electromagnetic fields can be applied to the magnetic membrane, the greater
is the resolution of the control over the deformation thereof.
Referring now to Figures 3A, 3B, and 3C, there is shown, in isometric,
side-sectional, and cross-sectional views, respectively, an integrated fluid flow conduit
and electromagnetic flow control apparatus, constructed in accordance with a
preferred embodiment of the present invention. In this embodiment, a plurality of
arrays of electromagnets 32 are arranged cylindrically around a fluid flow conduit 31
whose walls are made of magnetic material. Figure 3C shows the cross-sectional view
of the conduit 31 when it is fully open. Figures 4A and 4B, show the conduit 31 when
it is partially closed and fully closed, respectively, as a result of the application of
suitable magnetic fields via the arrays of electromagnets.
The spatial resolution of the control of the deformation of the fluid flow conduit,
together with the time resolution of the control provided by electronic control of the
individual electromagnets allows such embodiments of the present invention to impart
a wavelike motion to fluid flows along the conduit 31 along its length, as indicated by
11' and 21' in Figures 1 and 2 respectively, so as to drive the flow fluid though the
conduit in a peristaltic-like fashion.
Referring now to Figures 5A, 5B, and 5C, there is shown an alternative
embodiment of the present invention wherein an integrated fluid flow conduit and
electromagnetic flow control apparatus additionally includes a rod 53 running
longitudinally in the center of the fluid flow conduit 51. Rod 53 is supported by any
suitable mounting elements (not shown). When the magnetic elements 52 are
activated to close the fluid flow conduit 51, as shown in Figure 5C, the magnetic
membrane wall of the conduit 51 presses against the rod 53, thereby providing a
firmer seal to close the conduit to fluid flow. In accordance with a further embodiment
of the present invention, the rod 53 may be made of magnetic material in order to
enhance the magnetic force for closing the fluid flow in the conduit 51.

In a further preferred embodiment of the present invention, an electromagnetic
flow control apparatus 62 is employed in conjunction with an existing fluid flow conduit
61, as shown in Figures 6A and 6B. In this embodiment of the invention, an
electromagnetic flow control apparatus 62, including a magnetic membrane 63, is a
sleeve-like construction that is placed around a segment of an existing fluid flow
conduit 61. The deformation of the magnetic membrane 6:3 in response to the
magnetic fields produced by the apparatus 62 presses on the conduit to control the
fluid flow therein. In an alternative embodiment of the invention, the electromagnetic
flow control apparatus 62 may include a. gas-filled cell 65 separating the magnetic
membrane 63 from the fluid flow conduit 61 to provide a cushion to protect the conduit
from excessive forces.
It will be appreciated by persons skilled in the art that the present invention is
not limited by what has been shown and described hereinabove, merely by way of
example. Rather, the scope of the present invention is limited solely by the claims,
which follow.

WE CLAIM;
1. Flow control apparatus (10) for controlling the flow of a fluid in a conduit,
said apparatus comprising :
magnetic apparatus arranged in association with a working fluid flow in a
conduit, along the length thereof; and
apparatus for selectably applying varying electromagnetic fields (15) to said
magnetic apparatus at a plurality of discrete locations therealong, thereby to drive
said magnetic apparatus in a selected manner and thus to change the dynamic
state of the working fluid flow accordingly.
2. Flow control apparatus as claimed in claim 1, wherein said magnetic
apparatus comprises :
a non-magnetic portion; and
a magnetic portion arranged in force transfer association with said non-
magnetic portion, wherein said magnetic portion is operative, in response to
application thereto of electromagnetic fields (15), to drive said non-magnetic
portion accordingly,
3. Flow control apparatus as claimed in claim 1, wherein said magnetic
apparatus comprises a non-magnetic portion having magnetic elements arranged
in fixed association therewith.

4. Flow control apparatus as claimed in claim 3, wherein said magnetic
elements are implanted in said non-magnetic portion
5. Flow control apparatus as claimed in claim 3. wherein said magnetic
elements are affixed to a surface of said non-magnetic portion.
6. Flow control apparatus as claimed in claim 3, wherein said magnetic
elements are permanent magnets
7. Flow control apparatus as claimed in claim 1 wherein said apparatus for
applying electromagnetic fields comprises an apparatus for applying varying
electromagnetic fields to said magnetic apparatus generally perpendicular
thereto.
8. Flow control apparatus as claimed in claim 1 wherein said apparatus for
applying electromagnetic fields comprises an apparatus for moving said
magnetic apparatus so as to impart thereto a predetermined wave motion.
9. Flow control apparatus as claimed in claim 1, wherein said magnetic
apparatus has a generally curved planar shape when at rest, and said apparatus
for applying electromagnetic fields comprises an apparatus for varying the
degree of curvature of said magnetic apparatus

10. Flow control apparatus as claimed in claim 1 wherein said apparatus for
applying electromagnetic fields comprises :
a plurality of electromagnets arranged at discrete locations along said
magnetic apparatus ; and
control apparatus for activating said electromagnets in a predetermined
manner so as to move said magnetic apparatus in a corresponding manner
11. Flow control apparatus as claimed in claim 10, wherein said magnetic
apparatus is arranged about a tube for carrying a fluid flow said plurality of
electromagnets are arranged at discrete locations along said tube, and are also
arranged radially thereabout, and
said control apparatus is operative to activate said electromagnets in a
predetermined manner in association with said tube so as to vary the cross-
sectional configuration of said tube at predetermined locations therealong
between predetermined first and second extreme positions
wherein, when said tube is in said first extreme configuration, said plurality
of electromagnets are not operated, and said tube is in a fully open, at rest
position, thereby permitting flow therethrough
and when said tube is in said second extreme position, said plurality of
electromagnets are operated so as to force opposing wall portions of said tube
radially inward, thereby to reduce the cross-sectional area of said tube so as to
constrict fluid flow therealong.

12. Flow control apparatus as claimed in claim 11 comprising a rod located
inside said tube and extending longitudinally therealong, wherein, when said
tube is in said second extreme position said opposing wall portions of at least a
portion of said tube are pressed against said rod
13. Flow control apparatus as claimed in claim 12, wherein said rod is a
magnetic rod.
14. Flow control apparatus as claimed in any one of claims 1 to 13, wherein
said magnetic apparatus is a magnetic membrane apparatus
15. Flow control apparatus as claimed in claim 14, wherein said magnetic
membrane apparatus comprises a tube for carrying a fluid flow, said plurality of
electromagnets are arranged at discrete locations along said tube and are also
arranged radially thereabout, and
said control apparatus is operative to activate said electromagnets in a
predetermined manner so as to vary the cross-sectional configuration of said
tube at predetermined locations therealong between predetermined first and
second extreme positions,
wherein, when said tube is in said first extreme configuration, said plurality
of electromagnets are not operated, and said tube is in a fully open, at rest
position, thereby permitting flow therethrough

and when said tube is in said second extreme position, said plurality of
electromagnets are operated so as to force opposing wall portions of said tube
radially inward, thereby to reduce the cross-sectional area of said tube so as to
constrict fluid flow therealong.
16. Flow control apparatus substantially as herein described, particularly with
reference to the accompanying drawings.

Flow control apparatus (10) for controlling the flow of a fluid in a conduit
said apparatus comprising :
magnetic apparatus (11) arranged in association with a working fluid flow;
and
apparatus (12, 13) for selectably applying varying electromagnetic fields
(15) to said magnetic apparatus at a plurality of discrete locations therealong,
thereby to drive said magnetic apparatus in a selected manner and thus to
change the dynamic state of the working fluid flow accordingly.

Documents:

1376-cal-1998-granted-abstract.pdf

1376-cal-1998-granted-claims.pdf

1376-cal-1998-granted-correspondence.pdf

1376-cal-1998-granted-description (complete).pdf

1376-cal-1998-granted-drawings.pdf

1376-cal-1998-granted-examination report.pdf

1376-cal-1998-granted-form 1.pdf

1376-cal-1998-granted-form 2.pdf

1376-cal-1998-granted-form 3.pdf

1376-cal-1998-granted-pa.pdf

1376-cal-1998-granted-reply to examination report.pdf

1376-cal-1998-granted-specification.pdf


Patent Number 226407
Indian Patent Application Number 1376/CAL/1998
PG Journal Number 51/2008
Publication Date 19-Dec-2008
Grant Date 17-Dec-2008
Date of Filing 04-Aug-1998
Name of Patentee Q-CORE LTD
Applicant Address P.O. BOX 3, ARIEL
Inventors:
# Inventor's Name Inventor's Address
1 ZVI BEN SHALOM 1/3 SAVYONIM STREET, ARIEL 44837
PCT International Classification Number F16K 31/06
PCT International Application Number N/A
PCT International Filing date
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 NA