TOWER CONFIGURATION GRAVIMETRIC BLENDER AND RECEIVER FOR USE THEREWITH
20190084779 ยท 2019-03-21
Inventors
Cpc classification
B29B7/72
PERFORMING OPERATIONS; TRANSPORTING
B29B7/603
PERFORMING OPERATIONS; TRANSPORTING
G01G13/00
PHYSICS
B29C48/288
PERFORMING OPERATIONS; TRANSPORTING
International classification
G01G13/00
PHYSICS
Abstract
A gravimetric blender includes a plurality of receivers, each receiver having a single tube therewithin extending from a resin material/vacuum drawn stream inlet to a receiver outlet.
Claims
1. A gravimetric blender comprising: a) an upstanding conduit; b) a vacuum pump having a suction inlet communicating with the interior of the conduit; c) at least one receiver connected to the conduit and supported thereby, for vacuum draw through the receiver connection and the receiver via the conduit by the pump.
2. The gravimetric blender of claim 1 wherein the receiver further comprises: a) a hollow body having a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet; b) a tubular member connecting and extending between the inlet and the vacuum outlet; and c) an actuator housed within the tubular member and connected thereto d) a closure member connected to the actuator and moving upon energization of the actuator to close the vacuum outlet.
3. The gravimetric blender of claim 2 further comprising a plug within the tubular member, connected to the actuator and facing the inlet, for deflecting granular resin material entering the body via the inlet as carried by the vacuum stream.
4. The gravimetric blender of claim 2 wherein the closure member is a plate.
5. The gravimetric blender of claim 2 further comprising a valve at the granular resin material outlet, the valve closing upon draw of vacuum within the receiver and opening in response to weight of granular resin material within the receiver upon halting of vacuum draw within the receiver.
6. The gravimetric blender of claim 5 wherein the valve is a flap valve.
7. The gravimetric blender of claim 2 wherein the actuator is an air cylinder.
8. The gravimetric blender of claim 1 wherein the conduit is vertical.
9. The gravimetric blender of claim 8 wherein the receiver is vertically supported by the conduit.
10. A receiver for delivery therefrom of granular resin material carried thereinto by a pressurized air or vacuum powered stream, consisting of: a) a hollow body having a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet; b) a tubular member connecting and extending between the inlet and the vacuum outlet; and c) an actuator housed within the tubular member and connected thereto d) a closure member connected to the actuator and moving upon energization of the actuator to close the vacuum outlet.
11. A receiver for delivery therefrom of granular resin material carried thereinto by a pressurized air or vacuum powered stream, comprising: a) a hollow body having a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet; b) a tubular member connecting and extending between the inlet and the vacuum outlet; and c) an actuator housed within the tubular member and connected thereto d) a closure member connected to the actuator and moving upon energization of the actuator to close the vacuum outlet.
12. The receiver of claim 11 further comprising a plug within the tubular member, connected to the actuator and facing the inlet, for deflecting granular resin material entering the body via the inlet as carried by the vacuum stream.
13. The receiver of claim 11 wherein the closure member is a plate.
14. The receiver of claim 11 further comprising a valve at the granular resin material outlet, the valve closing upon draw of vacuum within the receiver and opening in response to weight of granular resin material within the receiver upon halting of vacuum draw within the receiver.
15. The receiver of claim 14 wherein the valve is a flap valve.
16. The receiver of claim 11 wherein the actuator is an air cylinder.
17. In a receiver for delivery therefrom of granular resin material carried thereinto by a pressurized air or vacuum powered stream, having a hollow body with a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet, the improvement comprising: a) a tubular member connecting and extending between the inlet and the vacuum outlet; b) an actuator housed within the tubular member and connected thereto; and c) a closure member connected to the actuator and moving upon energization of the actuator to close the vacuum outlet.
18. In a receiver for delivery therefrom of granular resin material carried thereinto by a pressurized air or vacuum powered stream, having a hollow body with a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet, the improvement comprising a single tubular member connecting and extending between the inlet and the vacuum outlet.
19. In a receiver for delivery therefrom of granular resin material carried thereinto by a pressurized air or vacuum powered stream, having a hollow body with a granular resin material/vacuum stream inlet, a vacuum outlet and a granular resin material outlet, the improvement consisting of a single tubular member connecting and extending between the inlet and the vacuum outlet.
20. The gravimetric blender of claim 1 wherein the vacuum pump is at an upper end of the conduit.
21. The gravimetric blender of claim 2 wherein the conduit is vertical, the vacuum pump connects to the conduit at the top of the conduit, and the receiver is vertically supported by the conduit.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0050] Referring to the drawings in general and particularly to
[0051] A vacuum source, preferably a vacuum pump, is designated generally 20 and sits atop vertically oriented conduit 12 as illustrated in
[0052] Receivers 14 are each secured to vertically oriented conduit 12 by receiver support fittings 22 which are preferably generally hollow and cylindrical in shape, as illustrated in
[0053] Referring particularly to
[0054] Located within and fixed to each tube 25 in a receiver 14 is an air cylinder 30 which is desirably also fixed by a pin or other connection to an associated plug 28. At the bottom of each receiver 14 is a resin material outlet 32 via which resin material collected within receiver 14 may empty out of receiver 14, flowing downwardly into hopper 16 located directly below receiver 14. Such flow of material is depicted schematically in
[0055] The end of each tube 25 opposite from inlet end 26 defines an air/vacuum passageway or outlet 34 from tube 25 into vertically oriented conduit 12.
[0056] Air cylinder 30 includes a shaft 36. When air cylinder 30 is actuated, shaft 36 extends outwardly from cylinder 30 thereby forcing a plate 38, which is fixed to the end of shaft 36, against the outlet end 34 of tube 25, thereby closing tube 25 and halting draw of vacuum within receiver 14.
[0057] Connected to each receiver 14 close to the lower portion thereof is a cone, sometimes referred to as a cone cover 52. Cone cover 52 precludes any upward escape of resin material from hopper 16, as resin material flows downwardly into hopper 16 from receiver 14. (If hopper 16 is reasonably full, the granular material tends to bounce upwardly or diagonally upon falling downwardly out of receiver 14 and striking granular material already in hopper 16.) Additionally, cone cover 52 limits spread of dust throughout the processing facility.
[0058] Referring to
[0059] As best illustrated in
[0060] Inlet tube portion 24 enters receiver 14 laterally through cylindrical portion 70 of receiver 14 as illustrated in
[0061] Secured to the upper end of vertically oriented conduit 12 or the Tower is a tower cylindrical fitting designated generally 74 and illustrated in
[0062] On the top extremity of each of the two tower risers 42 that form vertically oriented conduit 12 are the pair of horizontal flanges 80 that together form a larger horizontal plate 82; the two parts 202, 204 of horizontal flanges 80 are coplanar. The two horizontal flanges 80 contact one another, as risers 42 are bolted or screwed together, to form a horizontal plate 82, which effectively forms a flat, planar mounting surface for a tower cylindrical fitting 74. Nut and bolt combinations that retain tower cylindrical fitting 74 on horizontal plate 82 are shown but not numbered in
[0063] Tower cylindrical fitting 74 has an open bottom into which a dust filter 76 fits as illustrated in
[0064] The vacuum draw, as that term is used herein, refers to air drawn by vacuum pump 20 under sufficient level of vacuum to carry granular resin material from a storage bin (not shown) through a conduit (not shown) to inlet end 26 of inlet tube portion 24 of tube 25 and into receiver 14. The vacuum draw is sufficient to maintain dump flap 56 closed against the weight of resin material within receiver 14 until such time as air cylinder 30 is actuated to push plate 38 against tubular fitting 58 to close tubular fitting 58, thereby preventing vacuum draw from vertically oriented conduit 12 reaching receiver 14. Once valve plate 38 has closed against tubular fitting 58 to close the opening to tubular fitting 58, vacuum no longer exists within receiver 14 and any resin material therein flows downwardly. The weight of any resin material in receiver 14 overcomes any force applied by dump flap 56, opening dump flap 56 with the resin material flowing downwardly into hopper 16 immediately below receiver 14.
[0065] A hinge 84 has one portion 92 secured to the side of tower cylindrical fitting 74 as illustrated in
[0066] Also secured to plate 72 on the underside thereof but spaced therefrom is a blowback unit 78 of the type disclosed in the U.S. Pat. Nos. 8,070,844; and 9,387,996. When plate 72 is in the horizontal position, lying across the top of tower cylindrical fitting 74, blow-back unit 78 is spaced close to but away from dust filter 76. Upon actuation of blowback unit 78, when vacuum pump 20 has been shut down, blowback unit 78 emits a powerful downwardly directed blast of air which knocks the collected dust and fines out of filter 76, whereupon the dust and fines fall downwardly through vertically oriented conduit 12, as illustrated in
[0067] Referring primarily to
[0068] Referring to
[0069] Referring to
[0070] Each hopper support assembly 102 includes a feeder 18 with feeder 18 including a feed tube 104 desirably having an auger feed or screw 106 located therewithin as illustrated in
[0071] As shown in
[0072] Plate-like portion 114 of bracket 110 rests on a sandwich-like assembly of three spacer plates numbered 120, 122 and 124 respectively, as shown in
[0073] Operation of the gravimetric blender 10 according to the invention is controlled desirably by a microprocessor 200. Most desirably, the microprocessor communicates with air cylinders 30 and vacuum pump 20 of gravimetric blender 10 wirelessly. Internet communication, Ethernet, Blue Tooth protocol communication and the like are all desirable and acceptable. Also, microprocessor 200 may be hard wired to gravimetric blender 10, if needed.
[0074] During operation of gravimetric blender 10, when a hopper 16 needs material, this is indicated by the weight of hopper 16 as sensed by a load cell 132. Microprocessor 200, receiving a signal from a load cell 132, converts that signal to a sensed weight and compares that weight to the desired weight of the hopper. If microprocessor 200 decides that additional granular resin material or other resin material is required in a given hopper 16, microprocessor 200 actuates vacuum pump 20, followed by actuation of air cylinder 30 if needed, according to the default position chosen for air cylinder 30 and plate 38. (The default setting or position for air cylinder 30 may be with plate 38 positioned against tubular fitting 58, thereby precluding the draw of vacuum within receiver 14 by vacuum pump 20. Alternatively and preferably, the default, or rest, or unactuated position of air cylinder 30 may be with plate 38 removed from contact with tubular fitting 58, as illustrated on the left side of
[0075] When vacuum is drawn and the granular resin/vacuum stream enters receiver 14 via tube 24, the granular resin strikes plug 28, and specifically strikes the deflection surface 54 of plug 28, causing the granular resin material to lose kinetic energy and fall to the bottom of receiver 14 as depicted in
[0076] When microprocessor 200 receives a signal from a load cell 132 indicating that a hopper 16 with which a particular load cell 132 is associated has a sufficient material therein, microprocessor 200 acts (to energize or de-energize air cylinder 30, according to which position of plate 38 has been selected as the default position) so that vacuum is no longer drawn through receiver 14 with which the particular hopper 16 and load cell 132 are associated. No more vacuum is drawn until a load cell 132 associated with a hopper 16 signals that the weight of material within that particular hopper 16 has dropped to such a level that additional material is required in hopper 16. Upon receipt of such a signal, microprocessor 200 actuates or de-actuates air cylinder 30 (according to the default position selected for air cylinder 30 and hence plate 38 with respect to tubular fitting 58), in order that vacuum may be drawn and additional material drawn into receiver 14 via resin material/vacuum stream entering receiver 14 via inlet tube portion 24. Microprocessor 200 permits vacuum to continue to be drawn by maintaining plate 38 in a position removed from tubular fitting 58 until such time as the microprocessor 200 receives a signal from the relevant load cell 132, indicating that the weight of material in the relevant hopper 16 has reached a satisfactory level, whereupon air cylinder 30 urges plate 38 against fitting 58, thereby halting draw of vacuum through the relevant receiver.
[0077] Referring principally to
[0078] Table-like member 126 includes an aperture therethrough which receives a conduit 140 through which resin from hopper 16 may flow downwardly into an aperture in feed tube 104 of feeder 18. The aperture in feed tube 104 is surrounded by a tubular transition member 141 shown in
[0079] Nut and bolt combinations 130 fitting into channel members 128 secure channel members 128 to table-like member 126. Additionally, nut-bolt combinations 134 secure together the sandwich assembly consisting of upper spacer plate 120, middle spacer plate 122, and lower spacer plate 124; these nut and bolt combinations 134 also secure the spacer plates to table-like member 126, as shown in
[0080] With table-like member 126 bearing the weight of hopper 16, the associated hardware retaining hopper 16 in position, and any resin or other material within hopper 16, accurate weight readings respecting resin material in hopper 16 from an associated load cell 132 are assured. As illustrated in
[0081] Load cells 132 are retained in place by upper screws 144 securing the upper portion of load cell 132 to bottom portion 138 of rectangular member 136 which is a portion of table-like member 126 as illustrated in
[0082] As illustrated in
[0083] A u-shaped portion of frame member 142 provides a bottom support for feed tube 104 within which feed screw 106 rotates as feed screw 106 advances granular resin material or other material received from hopper 16 towards a tower bin assembly 40 located at the bottom of vertically oriented conduit 12 where feed screws 106 of feeders 18 converge, as illustrated in
[0084] In this description of the invention, tube 24 has sometimes been referred to as an inlet tube portion of receiver 14 and as having an inlet end 26. In the drawings, inlet tube portion 26 extends only somewhat into receiver 14. While inlet tube segments are shown in the drawings and numbered as 26, it is to be understood that the entire upper portion of the structure defining a part of receiver 14 is tubular in nature; this tubular structure is numbered 25 in the drawings. This tube 25, of which inlet tube portion 26 is a part, extends completely through receiver 14 and terminates at juncture with vertically oriented conduit 12. Tubular fitting 58 forms a part of tube 25 and the juncture of tubular fitting 58 with annular flange 60, where annular flange 60 is within vertically oriented conduit 12 as illustrated in
[0085] While the construction of the juncture of tube 25 with vertically oriented conduit 12 as illustrated in the drawings is the preferred construction, is further within the scope of the invention to provide a plug-in type connection between tube 25 and vertically oriented conduit 12 whereby a receiver 14 requiring a maintenance or replacement may be easily detached from vertically oriented conduit 12. Such plug-in connection can desirably be effectuated by a pair of concentric sleeve like members, one affixed to vertically oriented conduit 12 and the other defining an end of tube 25, with an O-ring or other sealing means between the two concentric tubular members. Other means of attachment, such as threaded fittings, are also within the scope of the invention for connecting receiver 14 to vertically oriented conduit 12 in a matter that receiver 14 is vertically supported by the connection with vertically oriented conduit 12.
[0086] While the invention is most desirably implemented using the load cell/vacuum driven approach to opening and closing receivers 14 as disclosed herein, it is within the scope of the invention to position level sensors 160 within both hoppers 16 and receivers 14, as shown schematically, on the right half, unsectioned portion of
[0087] Tower configuration gravimetric blender 10 may be mounted on a flat stand such as stand 156 illustrated in
[0088] Granular resin material or other material contained within hoppers 16 is conveyed by feeders 18 to a common point as illustrated in
[0089] Unlike conventional, known gravimetric blenders, there is no mixing or blending of components performed by the tower configuration gravimetric blender of the invention. No mixing is required since the amount of material delivered by each of the feeders 18 is precise, due to the accurate weight measured by load cells 132 and microprocessor 200. To the extent any mixing might be required, the screw of the process machine effectuates such mixing in an efficient manner.
[0090] While the invention has been described herein with three receiver 14/hopper 16/feeder 18 combinations being operatively connected to vertically oriented conduit 12, four or more receiver 14/hopper 16/feeder 18 combinations could be connected to vertically oriented conduit 12. Use of conduit extender structure to connect receiver 14 to vertically oriented conduit 12 is within the scope of the invention, especially if more than four receiver 14/hopper 16/feeder 18 combinations are used.
[0091] While the invention and the mode of operation have been described clearly and in more than sufficient detail that one of skill in the art could practice the invention using the teachings of the instant application, and while the claims appended hereto are clear and concise and find full support in the foregoing specification, the invention is not limited to the embodiments described in the foregoing specification or to the literal language of the appended claims. The invention further embraces components, assemblies and methods not disclosed herein but which would perform substantially the same function in substantially the same way to achieve the same result as the apparatus and methods that are the subject of the appended claims.
[0092] In the claims appended hereto, the term comprising is to be interpreted as meaning including, but not limited to, while the phrase consisting of is to be interpreted as meaning having only and no more, and the phrase consisting essentially of is to be interpreted to mean the recited elements of the claim and those other items that do not materially affect the basic and novel characteristics of the claimed invention.