APPARATUS FOR CONTINUOUS GRAVIMETRIC METERING OF POURABLE MATERIAL
20210123791 · 2021-04-29
Inventors
Cpc classification
G01G13/02
PHYSICS
G01G13/026
PHYSICS
International classification
G01G13/02
PHYSICS
B65G53/46
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An apparatus (1) for continuous gravimetric metering of pourable material comprises a housing (2) comprising a first and a second spaced wall (5,6), a charging port (7) through the first wall (5), and a discharging port (8) through the first wall (5) displaced from the charging port (7) and a primary air port (10) with a primary outlet opening (9) through the second wall (6) opposite to the discharging port (8). In the second wall (6) a secondary air port (12) is provided with a secondary outlet opening (11) having a substantially smaller outlet area than the primary outlet opening (9) and being displaced from the primary outlet opening in opposite direction to the rotational direction of the rotor (3) and being arranged opposite to the discharging port (8), and where the primary and secondary air ports (10,12) are connected to a compressed air supply.
Claims
1. Apparatus for continuous gravimetric metering of pourable material, such as a fuel material, preferably comprising coal, comprising: a housing comprising a first and a second mutually spaced wall, a charging port through said first wall, a discharging port through one of said walls displaced from said charging port and at essentially same radius as said charging port with respect to a predetermined vertical axis, a primary air port through the other wall opposite to said discharging port, said primary air port having a primary outlet opening and being connected to a compressed air supply; a rotor mounted in and sealed to said housing for rotation about said predetermined vertical axis including a plurality of pockets extending therethrough at spaced locations separated by a rotor partition wall having a thickness t, said pockets having a pocket opening front edge as seen in the rotational direction of the rotor and said pockets forming a first ring of pockets along the same radius as said charging and discharging ports, a circular measuring path being defined between the charging port and the discharging port, the pockets receiving material via the charging port and material being emitted through said discharging port during the rotation of the rotor; drive means configured for rotating said rotor in a rotational direction; speed indication and control means configured for controlling the rotational speed of said rotor; load-measuring means configured for measuring the weight of the material traveling along the measuring path characterized in that the other wall of the housing comprises a secondary air port having one or more secondary outlet openings including a first secondary outlet opening and being connected to a compressed air supply, the secondary outlet opening(s) of the secondary air port having an secondary outlet opening front edge and a total outlet area being substantially smaller than that of the primary outlet opening and being displaced from the primary outlet opening of the primary air port in opposite direction to the rotational direction of the rotor and being arranged opposite to said discharging port.
2. Apparatus according to claim 1, wherein the total outlet area of the secondary outlet opening(s) is 0.1% to 25%, such as 0.1% to 20%, 0.5% to 15%, 1% to 15%, 1% to 10% 1.5% to 10%, 1.5% to 7%, 2% to 7%, 3% to 5% of the outlet area of the primary outlet opening.
3. Apparatus according to any of the preceding claims, wherein the front edge of the secondary outlet opening is displaced at least a rotational angle X.sub.min of the rotor from the primary outlet opening, X.sub.min being defined as ¼ or ⅓×(360°/number of pockets in a pocket ring)
4. Apparatus according to any of the preceding claims, wherein the secondary outlet opening is displaced less than an angle of rotation X.sub.max of the rotor from the primary outlet opening, X.sub.max being defined as 5×(360°/number of pockets in a pocket ring).
5. Apparatus according to any of the preceding claims, wherein the displacement of the secondary outlet opening in respect to the primary outlet opening and the thickness t of the rotor partition walls are dimensioned so that when the secondary outlet opening is completely covered by a partition wall the pocket opening front edge of a pocket opening is within the primary outlet opening as seen in a vertical projection.
6. Apparatus according to any of the preceding claims, wherein the first secondary outlet opening of the secondary air port is oblong and extends towards the primary outlet opening of the primary port
7. Apparatus according to any of the preceding claims, wherein the primary air port and the secondary air port are configured as a single air port being provided with two separate and mutually spaced outlet openings in the form of the primary outlet opening and the first secondary outlet opening.
8. Apparatus according to any of the preceding claims, wherein the primary air port and the secondary air port are separate air ports, such as air ports formed by separate tubes or hoses, the air ports being optionally separated by a common port partition wall.
9. Apparatus according to any of the preceding claims, wherein the first wall is an upper wall and the second wall is a lower wall.
10. Apparatus according to claim 10, wherein the discharging port is provided in the first wall, i.e. the upper wall.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0036] An embodiment of the invention will be described in more detail in the following with regard to the accompanying figures. The figures show one way of implementing the present invention and are not to be construed as being limiting to other possible embodiments falling within the scope of the attached claim set.
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DETAILED DESCRIPTION OF AN EMBODIMENT
[0043] The apparatus 1 according to the invention for continuous gravimetric metering of pourable material illustrated in
[0044] The rotor 3 comprises a number of rotor pockets 13 extending therethrough at spaced locations separated by a rotor partition wall 14 having a thickness t. The rotor pockets 13 form a first ring 32 of pockets on essentially the same radius in respect to the axis of rotation as the charging port 7 of the housing and the discharging port 8 of the housing. The pockets receive material via the charging port 8 and material is emitted through the discharging port. Each pocket has a pocket opening 37 and a pocket opening front edge 38.
[0045] A primary outlet opening 9 of a primary air port 10 extends through the second/lower wall 6 and a first secondary outlet opening 11 of a secondary air port 12 extends through the second/lower wall 6 opposite to and in line with the discharging port 8. The first secondary outlet opening 11 of the secondary air port 12 has a second outlet opening front edge 36 and a total outlet area considerably smaller than that of the primary outlet opening and is displaced from the primary outlet opening in opposite direction to the rotational direction R of the rotor 3. In other words, the first secondary outlet opening is arranged in front of the primary outlet opening as seen in the rotational direction R of the rotor 3, see
[0046] The first secondary outlet opening 11 of the secondary air port 12 is displaced a distance from the primary outlet opening 9 of the primary air port 10 in the present example being about at least ⅓×(360/number of pockets in a ring of pockets), in the present case the number of pockets in the first pocket ring 32 being 36 pockets.
[0047] The primary air port 10 and the secondary air port 12 are connected to a supply of compressed air configured to supply compressed air to the primary and secondary air port 10,12 through a supply line 26. The secondary air port 12 is separated from the primary air port 10 by a partition wall 31, as shown in
[0048] The rotor 3 of the apparatus is arranged in the housing between the first/upper wall 5 and the second/lower wall 6. As mentioned, the rotor 3 comprises a plurality of rotor pockets 13 extending through the rotor at spaced locations along the same radius as the charging port 7 and the discharging port 8, thereby forming a first ring 32 of rotor pockets, the rotor pockets 13 being mutually separated by rotor partitions walls 14 having a thickness t. The pockets of the first ring 32 of rotor pockets have essentially the shape of sectors of an annulus and are separated by the essentially radially extending rotor partition walls 14.
[0049]
[0050]
[0051] The second ring 33 of pockets can have essentially the shape of a sector of an annulus and be mutually separated by pocket partition walls, preferably being radially extending partition walls and being preferably circumferentially spaced apart from the rotor pockets of the first rotor by for instance approximately ½×(360°/number of pockets in the ring of pockets), whereby a partition wall of the second ring of pockets is arranged essentially midway between two partition walls of a pocket of the first ring 33 of pockets. Further, the second/lower wall 6 of the apparatus comprises an additional primary outlet opening 34 and an additional first secondary outlet opening 35 spaced apart from the additional primary outlet opening in the opposite direction of the rotation direction R of the rotor 3, the first secondary outlet opening being considerably smaller than the primary outlet opening.
[0052] A circular measuring path is defined between the charging port 7 and the discharging port 8. During rotation of the rotor in the rotational direction R shown in
[0053] The weight of the material in the rotor pockets 13 between the pocket at the charging port 7 and the pocket at the discharging port 8 generates a load moment around a pivot axis P extending through the center of the charging port 7 and the discharging port 8, as shown in
[0054] The apparatus also comprises a drive motor 23 for driving the axle 4 of rotation of the rotor 3, the drive motor being preferably a infinitely variable drive motor.
[0055] The amount of material discharged from the apparatus is controlled by controlling the rotational speed of the rotor by means of the motor 23
LIST OF REFERRAL NUMBERS
[0056] 1 Apparatus
[0057] 2 Housing
[0058] 3 Rotor
[0059] 4 Axle of rotation
[0060] 5 First/upper wall
[0061] 6 Second/lower wall
[0062] 7 Charging port
[0063] 8 Discharging port
[0064] 9 Primary outlet opening
[0065] 10 Primary air port
[0066] 11 First secondary outlet opening
[0067] 12 Secondary air port
[0068] 13 Rotor pocket
[0069] 14 Rotor partition wall
[0070] 15 Material receiving area
[0071] 16 Material discharging area
[0072] 17 Bearing
[0073] 18 Bearing
[0074] 19 Upper structure
[0075] 20 Leg
[0076] 21 Third suspension
[0077] 22 Load cell
[0078] 23 Motor
[0079] 24 First suspension
[0080] 25 Second suspension
[0081] 26 Supply line
[0082] 27 First elastic coupling
[0083] 28 Outlet port of upper structure
[0084] 29 Second elastic coupling
[0085] 30 Inlet port of upper structure
[0086] 31 Partition wall
[0087] 32 First ring of pockets
[0088] 33 Second ring of pockets
[0089] 34 Additional primary outlet opening
[0090] 35 Additional first secondary outlet opening
[0091] 36 Secondary outlet opening front edge
[0092] 37 Pocket opening
[0093] 38 Pocket opening front edge
[0094] A Axis of rotation
[0095] t Thickness of rotor partition walls
[0096] MP Measuring path
[0097] R Rotation direction
[0098] P Pivot axis