Information
-
Patent Grant
-
6450680
-
Patent Number
6,450,680
-
Date Filed
Tuesday, April 18, 200024 years ago
-
Date Issued
Tuesday, September 17, 200222 years ago
-
Inventors
-
Original Assignees
-
Examiners
- Cooley; Charles E.
- Sorkin; David
Agents
- Wolf, Greenfield & Sacks, P.C.
-
CPC
-
US Classifications
Field of Search
US
- 366 114
- 366 141
- 366 189
- 366 196
- 366 315
- 366 316
- 366 317
- 366 331
- 366 285
- 366 286
-
International Classifications
-
Abstract
The powder mixing apparatus comprises a circular section cylindrical body having a longitudinal axis that is substantially horizontal, the body being leakproof and having two disk-shaped walls and an annular wall, the apparatus having a disk placed coaxially inside said body, the edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade for guiding said powder during rotation of said disk to a transfer orifice passing through said disk so as to enable at least a portion of the powder contained in one compartment to pass into the other compartment on each revolution of the disk, said blades being angularly offset, a horizontal drive shaft secured to the center of said disk serving to rotate said disk, and motor means serving to drive said drive shaft.
Description
The present invention relates to apparatus for mixing powder.
BACKGROUND OF THE INVENTION
More specifically, but not exclusively, the present invention relates to apparatus for mixing powder that is specially adapted to processing radioactive powder, such as plutonium dioxide (PuO
2
). Such powder mixing apparatus must not only comply with constraints concerning the uniformity, grain size, and isotopic composition of the powder while also ensuring that no segregation occurs, it must also comply with constraints concerning safety and criticality that are inherent to the fissile nature of the radioactive powder.
OBJECTS AND SUMMARY OF THE INVENTION
The powder mixing apparatuses that have been proposed in the past do not enable both of those conditions to be complied with effectively.
To achieve this object, the present invention provides powder mixing apparatus, comprising:
a cylindrical body of circular section and of substantially horizontal longitudinal axis, which body is leakproof and has two disk-shaped walls and one annular wall, said body being provided with at least one filling orifice situated at the top of said body and with at least one emptying orifice opening out into the bottom of said body;
a disk placed coaxially inside said body, the edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade that is substantially in contact at least with the disk-shaped wall adjacent to said blade, said blade serving to guide said powder during rotation of said disk to a radially inner end segment of said blade adjacent to a transfer orifice passing through said disk so as to enable at least a portion of the powder to pass from one compartment to the other on each revolution of the disk, said blades being angularly offset;
a horizontal drive shaft secured to the center of said disk to rotate said disk; and
motor means for rotating said drive shaft.
This solution using a bladed disk placed in a cylindrical body and provided with transfer orifices makes it possible to homogenize the powder contained in the cylindrical body in very effective manner by mixing.
When the present invention is used with radioactive powder, it is essential in order to comply with criticality constraints, to make provision for the width of the annular wall of the cylindrical body to be smaller than a value set by safety and criticality constraints. In this way, a “flat” type cylindrical body is obtained presenting a circular section that is relatively large relative to its axial or longitudinal dimension.
The mass of powder contained in the powder mixing apparatus must be known, both in order to obtain batches of similar mass and also to restrict said mass so as to obtain good mixing, which is a function of the total volume of the cylindrical body serving as the mixing reservoir.
Another object of the present invention is thus to enable the mass of the cylindrical body that serves as the powder reservoir to be measured continuously, in particular during the filling stage, so as to interrupt powder feed once the proper filling level has been reached.
This object is achieved by the fact that the powder mixing apparatus further comprises a rigid frame and a system, such as a load cell, for weighing the cylindrical body by suspension, the system comprising a deformable element connected to said frame and from which the cylindrical body is suspended. Under such circumstances, it will be understood that variation in the length of the deformable element represents variation in the weight of the cylindrical body, in particular while it is being filled with powder.
Another object of the present invention is to satisfy safety constraints associated with seismic risks so as to provide powder mixing apparatus that presents freedom of movement that is controlled and limited.
To achieve this object, provision is made for the powder mixing apparatus further to comprise an assembly mounted on said frame to guide the cylindrical body in vertical translation. This guide assembly allows the cylindrical body to move in vertical translation to a limited and controlled extent, while strictly limiting the movement of the cylindrical body in all other directions (horizontal movements and rotations).
BRIEF DESCRIPTION OF THE DRAWINGS
Other characteristics and advantages of the present invention will appear on reading the following description made with reference to the accompanying drawings, given purely by way of non-limiting example, and in which:
FIG. 1
is a longitudinal section view of a preferred embodiment of powder mixing apparatus of the present invention;
FIG. 2
is a cross-section view on direction II—II of
FIG. 1
;
FIG. 3
is a partially transparent view on a larger scale of the powder mixing apparatus shown in
FIG. 2
that comprises a cylindrical body suitable for being filled with powder;
FIG. 4
is a view on a larger scale of zone IV in
FIG. 1
;
FIG. 5
is a partially transparent diagrammatic view of the cylindrical body in projection from its front face;
FIG. 6
is a fragmentary section view on direction VI—VI of
FIG. 5
showing the connection zone between the disk and one of the blades;
FIG. 7
is a view on a larger scale of a detail VII of
FIG. 5
;
FIG. 8
is a cross-section view on line VIII—VIII of
FIG. 5
;
FIG. 9
is a fragmentary view on a larger scale and in projection of a transfer orifice as seen along direction IX in
FIG. 8
;
FIG. 10
is a diagrammatic side view of the dynamic linkage between the cylindrical body and the frame of the powder mixing apparatus;
FIG. 11
is a diagrammatic perspective view showing the mechanical links between the cylindrical body and the frame of the powder mixing apparatus; and
FIGS. 12
to
15
show the physical structure of some of the mechanical links represented in FIG.
11
.
MORE DETAILED DESCRIPTION
In the accompanying figures, overall reference
20
designates the powder mixing apparatus of the present invention, which apparatus essentially comprises a frame
21
and a cylindrical body
22
serving as a mixing reservoir for the powder to be mixed and/or homogenized.
The cylindrical space of the body
22
is subdivided into two cylindrical compartments V
1
and V
2
of substantially equal volume by means of a bladed disk
23
coaxial with the body
22
and of structure that is described in detail below.
The bladed disk
23
is rotated by means of a motor
24
fixed to the frame
21
and a transmission system between the motor
24
and a horizontal drive shaft
25
which is secured to the disk
23
so as to enable the bladed disk
23
to be rotated. For reasons explained below, the motor
24
has an upwardly directed vertical outlet shaft and the transmission system comprises in succession at least one universal joint
26
, advantageously two universal joints
26
, and an angle take-off system
27
connected to the drive shaft
25
.
In the present invention, sealing means are also provided between the cylindrical body
22
and the drive shaft
25
, in particular where the drive shaft
25
passes through the wall of the cylindrical body.
It is also necessary to provide sealing means between the inside of the cylindrical body
22
and its surroundings, e.g. by means of static annular gaskets
28
and
28
′, as can be seen in
FIGS. 1 and 4
.
As shown in
FIG. 4
, the cylindrical body
22
is open on its rotary axis Ox on the transmission-shaft side in order to make it possible to link the drive shaft
25
to the bladed disk. A cylindrical sleeve
22
1
serves to house the drive shaft
25
and also serves to extend the rear wall in the form of an open disk of the cylindrical body
22
(with an interposed sealing gasket
28
′) to the casing of the angle take-off
27
.
In
FIGS. 2 and 3
, reference symbols N
1
and N
2
represent respectively the minimum level and the maximum level for filling the cylindrical body
22
that forms the mixing reservoir of the apparatus
20
of the present invention. Advantageously, these levels N
1
and N
2
lie beneath the center O of the circular section of the cylindrical body because powder is transferred from one compartment to another above this center, as explained below.
As explained above, the vertical bladed disk
23
subdivides the inside volume of the cylindrical body
22
into two cylindrical compartments V
1
and V
2
of equal capacity.
According to another essential characteristic of the present invention, when used with radioactive powder, the configuration of the cylindrical body
22
is “subcritical” corresponding to the cylindrical body having a maximum thickness that is allowable given the safety and criticality constraints which, together with the maximum volume of the fill to be mixed (volume less than half the volume of the cylindrical body
22
), gives rise to the cylindrical body
22
having a large diameter. The cylindrical body thus presents “flat” symmetry.
A filling orifice
22
a
enables powder to be introduced into the cylindrical body
22
via its top portion, while an emptying orifice
22
b
opening out into the bottom of the cylindrical body
22
co-operates with an emptying valve
29
to enable the powder to be removed after it has been homogenized.
The diameter of the bladed disk
23
is equal to the inside diameter of the cylindrical body
22
so as to obtain practically leakproof contact that isolates the front and back compartments V
1
and V
2
respectively. Some clearance does indeed exist between the bladed disk and the cylindrical body in order to allow them to move relative to each other, so the clearance does not completely prevent powder from leaking, however the amount of powder that does leak remains small enough to avoid interfering with mixing.
Reference is made below to
FIGS. 5
to
9
while describing the structure of the bladed disk
23
constituting the internal moving member of the cylindrical body
22
that forms the powder reservoir.
On each of its front and back faces
23
1
and
23
2
respectively, the bladed disk
23
has two blades
30
placed symmetrically to each other about the center O, with the four blades
30
being regularly offset at 90° intervals.
In cross-section (
FIG. 5
) each blade
30
is in the shape of a comma or an eyelash, extending essentially radially from the peripheral edge of the disk
23
where it has practically leakproof contact with the annular wall of the cylindrical body, towards the axis of rotation (Ox) as far as a circular central zone
23
a
of the disk
23
of radius that is preferably less than or equal to one-fourth of the radius of the disk
23
.
Each blade
30
is essentially L-shaped, comprising a rod that constitutes the substantially radial segment
30
a
, which segment is curved, and a radially inner end segment
30
b
which forms the base of the L-shape.
Each blade
30
is associated with a transfer orifice
31
passing through the central zone
23
a
of the disk
23
and of cross-section that is substantially rectangular. According to a particularly advantageous characteristic of the present invention, the radially inner end segment
30
b
of each blade extends along a portion of the edge of said corresponding transfer orifice
31
. As shown in
FIG. 5
, the radially inner end segment
30
b
of each blade is preferably U-shaped, extending along a portion of the edge of said corresponding transfer orifice
31
belonging to three of the four sides of the section of said orifice. Thus, when a blade
30
is rotated out from the mass of powder, it entrains a unit volume of powder which will escape completely into the other compartment. This is made possible because, when the blade
30
is in its high position, the corresponding transfer orifice
31
lies above the center O of the disk
23
, with the maximum level of powder being below O, and the radially inner end segment
30
b
forms a pierced bowl delivering to the other side of the disk all of said unit volume of powder that has slid along the substantially radial segment
30
a
as said blade
30
rises.
In this way, during rotation of the disk
23
, the blades
30
entrain the powder which slides under gravity along each substantially radial segment
30
a
towards the corresponding transfer orifice
31
, thereby enabling a portion of the powder to be transferred from one compartment to the other.
The above-described guidance of the powder is made possible by the blades
30
having respective side edges
30
c
(
FIG. 6
) and respective radially outer end edges
30
d
(
FIG. 7
) that are chamfered in shape so as to provide practically leakproof contact with the walls of the cylindrical body
22
, respectively with the corresponding disk-shaped wall and with the annular wall.
Naturally, some other number of blades
30
could be provided on each face
23
1
and
23
2
of the bladed disk
23
, providing there is at least one blade
30
on each of its two faces.
The mass of powder transferred from one compartment to the other on each half-revolution of the disk
23
depends on the number and the section of the transfer orifices
31
. If the transferred mass is equivalent to ⅛
th
of the total mass after one-half revolution of the disk, then the number of interfaces created in the medium is 8. After one complete revolution (2 cycles), this number is 8
2
. In this way, the number of interfaces that is established between the two initial fills loaded respectively into each of the two compartments V
1
and V
2
increases exponentially: mixing is thus performed by “quartering” which makes it possible to achieve a very high number of interfaces quickly, i.e. the powder is thoroughly mixed so as to obtain a composition that is uniform in terms of grain size and isotope content while preventing segregation from occurring.
As mentioned above, the powder mixing apparatus of the present invention is also specially adapted to make it possible to measure the mass of the powder-filled cylindrical body
22
on a continuous basis, and in particular while the body is being filled with powder.
This makes it easy to determine the instant at which it is necessary to stop feeding it with powder via the filling orifice
22
a
because the powder has reached the nominal level N
1
.
To this end, the powder mixing apparatus
20
includes a suspension weighing system mounted on the frame
21
and from which the cylindrical body
22
is suspended (see FIGS.
10
and
11
). Advantageously, the suspension weighing system is of the type having a load cell
34
, and it includes a deformable element in the form of a piezoelectric element. This load cell is located substantially in vertical alignment with the center O of the disk
23
, above the cylindrical body
22
.
It will thus be understood that any variation in the mass of the cylindrical body
22
while it is being filled will give rise to lengthening whose amplitude (about 0.5 mm) serves to determine the mass of powder contained in the cylindrical body
22
.
Because the cylindrical body
22
moves in vertical translation while it is being filled, it is necessary for the transmission system between the outlet shaft of the motor
24
and the drive shaft
25
, i.e. for the two universal joints
26
and the angle take-off
27
, to follow the up and down movements of the cylindrical body
22
without impeding them so as to avoid disturbing measurement of the mass of the cylindrical body.
Since the assembly comprising the angle take-off
27
, the drive shaft
25
, and the bladed disk
23
is not deformable, and since it is secured to the cylindrical body
22
, it is the degrees of freedom provided by the two universal joints
26
that allow said assembly to track the movements of the cylindrical body
22
. The universal joints
26
serve to compensate for variations of alignment between the outlet shaft of the motor
24
and the inlet shaft of the angle take-off
27
which is associated with driving the mobile cylindrical body
22
.
In this way, the powder mixing apparatus
20
has a transmission system extending from the motor means which are secured to the frame
21
and going to the drive shaft
25
, where said transmission system is suitable for tracking the movement of the cylindrical body while it is being filled, and/or being emptied, and/or having its disk rotated.
The dynamic linkage between the load cell
34
and firstly the cylindrical body
22
and secondly the frame
21
is shown diagrammatically in
FIG. 10
which also shows the above-described transmission system.
After the cylindrical body
22
has been filled, or possibly while it is being filled, mixing is performed by the bladed disk
23
rotating. As a result, the cylindrical body
22
is subject not only to a limited amount of vertical translation movement in the downward direction, but also to rotation about the vertical axis Oz and to titling motion a horizontal axis Δ parallel to its axis of rotation Ox as described below. In order to ensure that this possible tilting motion does not disturb the mass measurement performed by the load cell
34
, an additional hinge link is provided between the cylindrical body
22
and the frame
21
at the load cell
34
: two ball-and-socket links D and F are provided between the load cell
34
and respectively the frame
21
and the top portion of the cylindrical body
22
, substantially in vertical alignment with the vertical axis of symmetry Oz of the cylindrical body
22
, as can be seen in
FIGS. 10 and 11
.
Because of the mobility of the cylindrical body
22
, albeit mobility that is limited, provision is made for the powder mixing apparatus
20
further to comprise at least one vibrator
35
mounted on said cylindrical body
22
so as to facilitate emptying thereof, thereby minimizing the amount of powder retained on the inside walls of the cylindrical body
22
, both in normal operation and in the event of the disk
23
accidentally being prevented from rotating. As shown in
FIG. 2
, two vibrators
35
are preferably mounted symmetrically on either side of the plane of symmetry (Ox, Oz) of the cylindrical body
22
. In which case, as shown in
FIG. 10
, the link between the emptying valve
29
and the emptying duct
36
, and the links between the filling orifice
22
a
and the filling duct
37
are provided by bellows
38
.
When the powder mixing apparatus
20
of the present invention is used to homogenize a batch of radioactive powder, in particular of plutonium dioxide (PuO
2
), which may be for use in preparing MOX fuel for nuclear power stations, the powder mixing apparatus
20
is naturally located in a glove box in order to isolate it from the surroundings. Nevertheless, that precaution is not sufficient to ensure that the required safety constraints are complied with when they relate to seismic risk, thus making it necessary in this type of application, at least, to provide a suitable mechanical system for limiting possible movement of the cylindrical body
22
relative to the frame
21
so as to prevent the cylindrical body
22
being thrown through the glove box in the event of an earthquake. Because of the need to weigh the cylindrical body
22
, the degrees of freedom of the cylindrical body must be restricted by an additional link which provides guidance in vertical translation. This guidance in vertical translation is performed by an assembly for providing guidance in vertical translation that needs to minimize the disturbance it imparts to weighing due to the friction forces it produces.
FIGS. 11
to
13
show the assembly for guiding the cylindrical body
22
in vertical translation relative to the frame
21
, said guidance being provided by an association of links (A, B, and C) which restrain the degrees of freedom of the cylindrical body
22
relative to the frame
21
sufficiently to prevent the cylindrical body
22
being thrown against the walls of the glove box in the event of an earthquake, while nevertheless being of a design which minimizes the forces due to friction along any vertical component (i.e. parallel to the axis Oz).
This guide assembly comprises firstly an annular linear link A about the vertical axis Oz, between the cylindrical body
22
and the frame
21
(see FIG.
11
), substantially in vertical alignment with the load cell
34
forming the weighing system.
FIGS. 12 and 13
show structural details of this annular linear link A: a vertical-axis circular-section cylinder
22
c
mounted on the cylindrical body
22
at one of its ends is received slidably, advantageously via a ball bushing
40
, in a cylindrical bore of circular section in an inside sphere
42
. In addition, a link piece
21
a
secured to the frame
21
and having an internal housing of spherical shape constitutes an “outer” sphere cooperating with said inner sphere
42
so as to form a ball-and-socket link.
Thus, the ball bushing
40
minimizes friction forces in the vertical direction between the cylinder
22
c
and the inner sphere
42
so that the cylinder
22
c
can move in translation along the vertical axis Oz located at a distance L from the frame
21
, and it can also rotate about said vertical axis.
The horizontal tilt axis Δ about which the cylindrical body
22
is allowed to tilt passes through the center of the annular linear link A, as can be seen in FIG.
11
.
It will be understood that it is essential to restrict the angular displacement of the cylindrical body
22
about the axis Δ: this pivoting is limited by providing links B and C that can be seen in
FIGS. 11 and 14
to
15
. Each of these links B and C is considered as forming a point link whose normal axis is horizontal and longitudinal, parallel to Ox, and allowing movement in vertical translation between the bottom portion of the cylindrical body
22
and the frame
21
.
To this end, the point links B and C are both implemented as follows: a vertical guide rail
21
b
secured to the frame
21
has a horizontal channel section comprising a web and two parallel flanges forming a vertical rolling track, extending orthogonally to the horizontal longitudinal axis Ox of the cylindrical body
22
.
These point links B and C also comprise respective circular section cylindrical wheels
44
of diameter substantially equal to the width of the rail
21
b
such that the peripheral surface thereof forms an annular rolling surface of axis that is substantially horizontal and parallel to the transverse direction Oy, and suitable for rolling along the above-mentioned rolling part. The cylindrical wheel
44
is advantageously connected to the cylindrical body
22
by a shaft
22
d
having a first end secured to said cylindrical body
22
and a second end forming a ball-and-socket link by means of a ball
46
visible in FIG.
14
and associated with the cylindrical wheel
44
. In this way, the ball
46
allows the wheel
44
to roll in a vertical direction without sliding on the running track of the rail
21
b,
even if the shaft
22
d
is not perpendicular to the web of the rail
21
b,
thereby reducing vertical forces due to friction.
In addition, the point links B and C prevent the cylindrical body
22
from pivoting about the vertical axis Oz, which pivoting could be generated under the dynamic effect of the moving mass of powder while mixing is taking place tending to pivot the cylindrical body
22
about the axis Δ, because of the reaction force F (
FIG. 15
) exerted by the running track on the wheel
44
.
Because of rotation about the axis Oz and because of the cylindrical body
22
tilting about the axis Δ, the wheel
44
in each of the two point links B and C can be caused to move in translation by sliding laterally in the transverse horizontal direction Oy. This limited translation is made possible by an assembly clearance of a few millimeters between the web of the rail
21
b
and the rear edge of the side wall of the wheel
44
constituting the annular rolling surface.
It should be observed that because the above-mentioned clearance is relatively small, the links B and C are considered as being point links and not as annular linear links.
In operation, pivoting of the cylindrical body
22
about the axis Δ is assumed to be small in amplitude such that the wheels
44
never come into abutment against the web of the rail
21
b
in either of the links B and C. In addition, this sliding of the wheel
44
gives rise to a transverse force which opposes movement of the cylindrical body
22
along the direction Oy, without disturbing weight measurement since this friction does not act along the vertical axis Oz.
Thus, guidance is obtained for the cylindrical body
22
in vertical translation that prevents it from being thrown against the wall of the glove box in the event of an earthquake, since in normal operation such guidance in vertical translation allows the cylindrical body
22
only two degrees of freedom relative to the frame
21
, i.e. translation along the axis Oz and pivoting about the axis A parallel to the axis Ox.
In the event of an earthquake, these two degrees of freedom are restricted:
translation along the axis Oz is limited firstly by the load cell
34
. Thereafter, even if the load cell breaks, the design of the annular linear link A is such that the cylinder
22
c
would slide under the effect of gravity in the inner sphere
42
until the cylindrical body
22
came into abutment against said inner sphere
42
, which is itself prevented from moving in translation relative to the frame
21
, such that further downward vertical translation of the cylindrical body
22
would then be prevented; and
pivoting of the cylindrical body
22
about the axis Δ (pivoting about an axis parallel to the axis Ox) is limited by the way in which the almost point links B and C are made. If the cylindrical body
22
should tilt through an abnormally large angle about the axis Δ, then the wheel
44
of the link B or C would come into abutment against the web of the associated rail
21
b.
It should be observed that in order to keep forces via the links B and C in the plane (Ox, Oy) to a constant minimum level, it is necessary to balance the assembly comprising the transmission system and the cylindrical body
22
in such a manner that its center of gravity G is always situated in the plane (Oy, Oz) even when the level to which the cylindrical body
22
is filled varies.
In particularly advantageous manner, at least two powder mixing apparatuses
20
as described above can be used for implementing a method of cooling a powder on leaving a furnace, such as a calciner used in the last step of reprocessing nuclear fuel, and for making up the powder into batches, the method comprising the following steps:
a) said motor means
24
of each powder mixing apparatus
20
are controlled to rotate the disk
23
of each powder mixing apparatus;
b) said outlet of the furnace is connected to the filling orifice
22
a
of the cylindrical body
22
of a first powder mixing apparatus;
c) powder is filled into the cylindrical body
22
of the first powder mixing apparatus in controlled manner, advantageously while said disk is rotating;
d) the outlet of said furnace is transferred to the filling orifice
22
a
of the body of a second powder mixing apparatus before the cylindrical body
22
of said first powder mixing apparatus has been half-filled; and
e) said body of said first powder mixing apparatus is emptied into at least one receptacle while the cylindrical body
22
of said second powder mixing apparatus is being filled in controlled manner, with the method returning to step c) for the second powder mixing apparatus.
In a preferred characteristic of the present invention, the controlled filling of each cylindrical body
22
is performed by measuring the weight of said cylindrical body
22
while it is being filled by means of said suspension weighing system, while rotation of said disk
23
continuously mixes said powder.
In this way, a changeover is achieved from a continuous flow of powder (PuO
2
at the outlet from the calciner) to a discontinuous flow (alternate emptying of the cylindrical bodies
22
of one of two (or more) powder mixing apparatuses, at the outlet of which batches of powder are obtained having characteristics that are very similar).
Claims
- 1. Powder mixing apparatus, comprising:a cylindrical body of circular section and of substantially horizontal longitudinal axis, which body is leakproof and has two substantially parallel disk-shaped walls and one uninterrupted annular wall intersecting both said disk shaped walls at an inside diameter, said body being provided with at least one filling orifice situated at a top of said body disposed above the longitudinal axis and with at least one emptying orifice opening out into the bottom of said body disposed below the longitudinal axis; a disk having an outside diameter substantially equal to the inside diameter of the annular wall and being placed coaxially inside said body, the edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade that is substantially in contact at least with the disk-shaped wall adjacent to said blade, said blade serving to guide said powder during rotation of said disk to a radially inner end segment of said blade adjacent to a corresponding transfer orifice passing through said disk so as to enable at least a portion of the powder to pass from one compartment to the other on each revolution of the disk, said blades being angularly offset; a horizontal drive shaft secured to the center of said disk to rotate said disk; and motor means for rotating said drive shaft.
- 2. Apparatus according to claim 1, wherein said blades are substantially L-shaped, said radially inner end segment forming the base of the L-shape and extending along a portion of the edge of said corresponding transfer orifice.
- 3. Apparatus according to claim 2, wherein each of said blades has a substantially radial segment which constitutes the upright of the L-shape and which is curved.
- 4. Apparatus according to claim 2, wherein said transfer orifices are substantially rectangular in section, said radially inner end portions of the blades being U-shaped, extending along a portion of the edge of said corresponding transfer orifice belonging to three of the sides of the section of said orifice.
- 5. Apparatus according to claim 1, wherein, on each of its faces, said disk carries two blades which are placed symmetrically relative to each other, the four blades being angularly offset regularly at 90° intervals.
- 6. Apparatus according to claim 1, wherein each blade extends substantially radially from the edge of said disk where it is substantially in contact with said annular wall of the cylindrical body, to a central zone of the disk of radius that is less than or equal to one-fourth the radius of said disk.
- 7. Apparatus according to claim 1, further comprising sealing means between said cylindrical body and said drive shaft.
- 8. Apparatus according to claim 1, further comprising a rigid frame and a suspension weighing system for weighing said cylindrical body, the weighing system comprising a deformable element connected to said frame and having said cylindrical body suspended therefrom, variation in the length of said deformable element representing variation in the weight of said cylindrical body.
- 9. Apparatus according to claim 8, further comprising a transmission system extending from said motor means which are secured to said frame to said drive shaft, said transmission system being suitable for tracking the movement of the cylindrical body while it is being filled, and/or emptied, and/or while the disk is rotating.
- 10. Apparatus according to claim 9, wherein said transmission system includes at least one universal joint.
- 11. Apparatus according to claim 10, wherein said motor means comprise a vertical outlet shaft, and wherein said transmission system further comprises an angle take-off system between said universal joint and said drive shaft.
- 12. Apparatus according to claim 8, her comprising respective ball-and-socket links between said frame and said deformable element and, also between said deformable element and said cylindrical body.
- 13. Apparatus according to claim 8, further comprising at least one vibrator mounted on said cylindrical body in order to facilitate emptying thereof.
- 14. Apparatus according to claim 8, wherein said deformable element is a piezoelectric element.
- 15. Apparatus according to claim 8, further comprising a guide assembly for guiding said cylindrical body in vertical translation and mounted on said frame.
- 16. Apparatus according to claim 15, wherein said guide assembly comprises an annular linear link having a vertical axis disposed between said cylindrical body and said frame, said annular linear link being substantially in alignment with said deformable element.
- 17. Apparatus according to claim 16, wherein said guide assembly further comprises at least one point link with an axis that is normally horizontal between the bottom portion of ad cylindrical body and said frame.
- 18. Apparatus according to claim 17, wherein said guide assembly has two point links disposed symmetrically on either side of the vertical plane of symmetry of the cylindrical body and containing its longitudinal horizontal axis.
- 19. Powder mixing apparatus, comprising:a cylindrical body of circular section and of substantially horizontal longitudinal axis, which body is leakproof and has two disk-shaped walls and one annular wall, said body being provided with at least one filling orifice situated at the top of said body and with at least one emptying orifice opening out into the bottom of said body; a disk placed coaxially inside said body, edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade that is substantially in contact at least with the disk-shaped wall adjacent to said blade, said blade serving to guide said powder during rotation of said disk to a radially inner end segment of said blade adjacent to a corresponding transfer orifice passing through said disk so as to enable at least a portion of the powder to pass from one compartment to the other on each revolution of the disk, said blades being angularly offset; a horizontal drive shaft secured to the center of said disk to rotate said disk; motor means for rotating said drive shaft; a rigid frame and a suspension weighing system for weighing said cylindrical body, the weighing system comprising a deformable element connected to said frame and having said cylindrical body suspended therefrom, variation in the length of said deformable element representing variation in the weight of said cylindrical body; and a guide assembly for guiding said cylindrical body in vertical translation and mounted on said frame; wherein said glide assembly comprises an annular linear link having a vertical axis disposed between said cylindrical body and said frame, said annular linear link being substantially in alignment with said deformable element; wherein said annular linear link comprises a cylinder having a substantially vertical axis, fixed at its top end to said cylindrical body, and slidably mounted in a cylindrical bore inside a sphere, and a link piece secured to said frame and presenting a spherical inner housing co-operating with said sphere to form a ball-and-socket joint.
- 20. Apparatus according to claim 19, wherein said annular linear link further comprises a ball bushing disposed between said cylinder and said sphere so as to minimize friction forces in the vertical direction.
- 21. Powder mixing apparatus, comprising:a cylindrical body of circular section and of substantially horizontal longitudinal axis, which body is leakproof and has two disk-shaped walls and one annular wall, said body being provided with at least one filling orifice situated at the top of said body and with at least one emptying orifice opening out into the bottom of said body; a disk placed coaxially inside said body, the edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade that is substantially in contact at least with the disk-shaped wall adjacent to said blade, said blade serving to guide said powder during rotation of said disk to a radially inner end segment of said blade adjacent to a corresponding transfer orifice passing through said disk so as to enable at least a portion of the powder to pass from one compartment to the other on each revolution of the disk, said blades being angularly offset; a horizontal drive shaft secured to the center of said disk to rotate said disk; motor means for rotating said drive shaft; a rigid frame and a suspension weighing system for weighing said cylindrical body, the weighing system comprising a deformable element connected to said frame and having said cylindrical body suspended therefrom, variation in the length of said deformable element representing variation in the weight of said cylindrical body; and a guide assembly for guiding said cylindrical body in vertical translation and mounted on said frame; wherein said guide assembly comprises an annular linear link having a vertical axis disposed between said cylindrical body and said frame, said annular linear link being substantially in alignment with said deformable element; wherein said guide assembly further comprises at least one point link with an axis that is normally horizontal between the bottom portion of said cylindrical body and said frame; wherein said at least one point link comprises a vertical guide rail secured to said frame and of channel-section, having a web and two parallel flanges forming a vertical running track orthogonal to said horizontal longitudinal axis of said cylindrical body, and a cylindrical wheel of circular section whose diameter is substantially equal to the width of said rail such that its peripheral surface forms an annular running surface having an axis that is substantially horizontal and orthogonal to said horizontal longitudinal axis, and suitable for running on said running track, said cylindrical wheel being connected to said cylindrical body via a link shaft with a first end that is secured to said cylindrical body.
- 22. Apparatus according to claim 21, wherein a second end of said link shaft forms a ball-and-socket link with said cylindrical wheel.
- 23. Apparatus according to claim 21, wherein transverse clearance exists between the web of said guide rail and said cylindrical wheel so as to allow said cylindrical body to move a certain angular displacement about an additional horizontal longitudinal axis passing through the ball-and-socket joint of said annular linear link.
- 24. Powder mixing apparatus, comprising:a cylindrical body of circular section and of substantially horizontal longitudinal axis, which body is leakproof and has two disk-shaped walls and one annular wall, said body being provided with at least one filling orifice situated at the top of said body and with at least one emptying orifice opening out into the bottom of said body; a disk placed coaxially inside said body, the edge of said disk being substantially in contact with the annular wall so as to subdivide said body into two cylindrical compartments of substantially equal volume, said disk being provided on each of its faces with at least one blade that is substantially in contact at least with the disk-shaped wall adjacent to said blade, said blade serving to guide said powder during rotation of said disk to a radially inner end segment of said blade adjacent to a corresponding transfer orifice passing through said disk so as to enable at least a portion of the powder to pass from one compartment to the other on each revolution of the disk, said blades being angularly offset; a horizontal drive shaft secured to the center of said disk to rotate said disk; motor means for rotating said drive shaft; a rigid frame and a suspension weighing system for weighing said cylindrical body, the weighing system comprising a deformable element connected to said frame and having said cylindrical body suspended therefrom, variation in the length of said deformable element representing variation in the weight of said cylindrical body; and a guide assembly for guiding said cylindrical body in vertical translation and mounted on said frame.
Priority Claims (1)
Number |
Date |
Country |
Kind |
99 05020 |
Apr 1999 |
FR |
|
US Referenced Citations (13)
Foreign Referenced Citations (4)
Number |
Date |
Country |
51 945 79 |
Apr 1981 |
AU |
1 801 414 |
May 1970 |
DE |
2 341 357 |
Sep 1977 |
FR |
06007660 |
Jan 1994 |
JP |