The present disclosure relates to systems and methods for coating agricultural cores and, in particular, to systems and methods for coating agricultural cores with flexible films.
It is known to coat a fertilizer pellet with film. However, a need exists for improved systems and methods for coating pellets with fertilizer and other agricultural compounds that can be run generally continuously, and especially in situations where there is less than a 100% core fill rate.
Carriers are provided for supporting a plurality of agricultural cores on a plurality of core supports for coating by a flexible film. The plurality of core supports may include a pedestal for supporting a respective agricultural core and a core periphery region having a plurality of bridge elements which couple the pedestal to the connecting structure between the plurality of core supports. The carriers may include a vacuum system that independently communicates a partial vacuum to an aperture in each respective pedestal and a plurality of apertures in the core periphery region of a respective core support between the bridge elements.
In an exemplary embodiment of the present disclosure, a system is provided for coating agricultural cores with a flexible film. The system may comprise a carrier having an exterior face including a connecting structure and a plurality of core supports recessed relative to the connecting structure. Each core support may include a pedestal sized and shaped to support one of the agricultural cores to be coated. The pedestal may include an aperture of a first fluid conduit. A plurality of bridges may extend between the pedestal and the connecting structure of the exterior face of the carrier, and the plurality of bridges may be separated by a plurality of apertures of a second fluid conduit. A vacuum system may be in fluid communication with the first fluid conduit and the second fluid conduit. The plurality of bridges may connect the connecting structure and the pedestal such that when an agricultural core is not positioned on the pedestal the flexible film is capable of conforming to the shape of the pedestal, the plurality of bridges, and the connecting structure. A top surface of the pedestal may be below a top surface of the connecting structure. Each of the plurality of bridges may have a top surface extending above the top surface of the connecting structure, or each of the plurality of bridges may have a top surface positioned completely lower than the top surface of the connecting structure. The pedestal may include a concave section surrounded by an outer shelf. The concave section may include the aperture of the first fluid conduit. The carrier may include a base having a plurality of recesses and a plurality of inserts. Each of the plurality of inserts may be positioned in a respective one of the plurality of recesses. Each of the plurality of inserts may include the pedestal and bridges of the respective core supports. The system may utilize biodegradable film. The system may comprise a plurality of elongated film securing apertures.
In another exemplary embodiment of the present disclosure, a method of simultaneously coating a plurality of agricultural cores with a flexible film is provided. The method may comprise the steps of supporting a first integer number of the plurality of agricultural cores on a first carrier having an exterior face including a connecting structure and a second integer number of core supports recessed relative to the connecting structure, each core support may include a pedestal sized and shaped to support one of the agricultural cores to be coated and a plurality of bridges which may extend between the pedestal and the connecting structure of the exterior face, the second integer number being greater than the first integer number. The method involves positioning a flexible film over the first integer number of agricultural cores, coating an upper portion of each of the first integer number of agricultural cores with a first number of pieces of the flexible film broken off of the overall flexible sheet film, and conforming a remainder of the flexible sheet film to the pedestal and plurality of bridges of a third integer number of core supports of the carrier, the third integer number being equal to the first integer number subtracted from the second integer number. The flexible film may be treated to increase a formability of the flexible film, which treatment may include heating. Biodegradable film may be used. The upper portion of each of the first integer number of agricultural cores with the first number of pieces of the flexible sheet film broken off of the overall flexible sheet film may include the steps of applying a partial vacuum to a plurality of apertures positioned between the plurality of bridges of each core support and around a periphery of the first number of agricultural cores supported on each core support of the first number of core supports. The flexible sheet film may be stretched to a breaking point to separate the first number of pieces of the flexible sheet film from the overall sheet film. The step of conforming the remainder of the flexible sheet film to the pedestal and the plurality of bridges of the third integer number of core supports of the carrier may include the steps of applying a partial vacuum to a plurality of apertures positioned between the plurality of bridges of each core support of the third number of core supports and applying a partial vacuum to an aperture in the pedestal of each core support of the third number of core supports. The flexible film may be secured to a film support by a plurality of elongated film securing apertures. The film support may be at a different level, higher or lower, than the plate that holds the cores. The step of removing the remainder of the flexible film from the carrier subsequent to the first number of pieces of the flexible film being broken off of the overall flexible sheet film may include portions of the flexible film being positioned over the connecting structure and portions conformed to the pedestals and the plurality of bridges of the third integer number of core supports.
In another embodiment for a system for coating agricultural cores with a flexible film, the system may comprise a carrier having an exterior face including a connecting structure and a plurality of core supports recessed relative to the connecting structure. Each core support may include a central region to support the respective agricultural core. The central region may include an aperture of a first fluid conduit. A core periphery region may surround the respective agricultural core. The core periphery region may include a plurality of apertures of a second fluid conduit. A vacuum system may be in fluid communication with the first fluid conduit and the second fluid conduit. The vacuum system may control an application of a partial vacuum to the first fluid conduit independent of an application of a partial vacuum to the second fluid conduit. The vacuum system may permit the application of the partial vacuum to the second fluid conduit to stretch and break the flexible film. The vacuum system may permit the application of the partial vacuum to the first fluid conduit when the respective core support is positioned to receive an agricultural core. The flexible film may be secured to a film support by a plurality of elongated film securing apertures.
In another embodiment, a system for coating agricultural cores with a flexible film is provided. The system may comprise a carrier having a plurality of core supports connected by a connecting structure. A first film support may be positioned along a first side of the connecting structure, and a second film support may be position along a second side of the connecting structure, opposite the first side of the connecting structure. The first film support and the second film support may include a plurality of elongated film securing apertures. A vacuum system may be in fluid communication with the plurality of elongated film securing apertures in the first film support and the second film support. The vacuum system may control an application of a partial vacuum to the plurality of elongated film securing apertures to hold the flexible film relative to the carrier. The system may have a core support that includes a central region to support the respective agricultural core, and the central region may include an aperture of a first fluid conduit. The vacuum system may control an application of a partial vacuum to the first fluid conduit independent of the application of the partial vacuum to the plurality of elongated apertures in the first film support and the second film support. Each core support may include a core periphery region surrounding the central region, and the core periphery region may include a plurality of apertures of a second fluid conduit. The vacuum system may control an application of a partial vacuum to the second fluid conduit independent of the application of the partial vacuum to the first fluid conduit.
The above-mentioned and other features and advantages of this disclosure, and the manner of attaining them, will become more apparent and will be better understood by reference to the following description of exemplary embodiments taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplification set out herein illustrate exemplary embodiments of the present disclosure and such exemplifications are not to be construed as limiting the scope of the present disclosure in any manner.
For the purposes of promoting an understanding of the principles of the present disclosure, reference is now made to the embodiments illustrated in the drawings, which are described below. The embodiments disclosed herein are not intended to be exhaustive or limit the present disclosure to the precise form disclosed in the following detailed description. Rather, the embodiments are chosen and described so that others skilled in the art may utilize their teachings. Therefore, no limitation of the scope of the present disclosure is thereby intended. Corresponding reference characters indicate corresponding parts throughout the several views.
The terms “couples”, “coupled”, “coupler” and variations thereof are used to include both arrangements wherein the two or more components are in direct physical contact and arrangements wherein the two or more components are not in direct contact with each other (e.g., the components are “coupled” via at least a third component), but yet still cooperate or interact with each other).
In some instances, throughout this disclosure and in the claims, numeric terminology, such as first, second, third, and fourth, is used in reference to various components or features. Such use is not intended to denote an ordering of the components or features. Rather, numeric terminology is used to assist the reader in identifying the component or features being referenced and should not be narrowly interpreted as providing a specific order of components or features.
Disclosed herein are various systems and methods for positioning agricultural cores or coating agricultural cores with a flexible film. Exemplary agricultural cores are illustrated in
As used herein the terms “agricultural core” and “core”, used interchangeably, mean a solid having one or more agriculturally beneficial substances which promote plant growth, promote desired plant characteristics, and/or reduce detrimental influence of the environment on a desired plant. Exemplary agriculturally beneficial substances include fertilizers, herbicides, insecticides, fungicides, plant growth regulators, surfactants, shelf-life extenders, micronutrients, macronutrients, liming materials, and inert ingredients, if any. Exemplary micronutrients include iron (Fe), boron (B), chlorine (CI), manganese (Mn), zinc (Zn), copper (Cu), molybdenum (Mo), nickel (Ni). Exemplary macronutrients include nitrogen (N), phosphorus (P), potassium (K), calcium (Ca), sulfur (S), magnesium (Mg), carbon (C), oxygen (O), and hydrogen (H).
In embodiments, flexible film 162 is a thermoformable flexible film. In embodiments, the softening temperature of the thermoformable flexible film is at least 10 degrees Celsius lower than the melting temperature of the core to be coated. In one embodiment, the softening temperature of the thermoformable flexible film is between about 60 degrees Celsius and 120 degrees Celsius. In embodiments, the flexible film includes multiple layers. In other embodiments, the flexible film is a single layer.
Exemplary flexible films include films including a single polymer such as polyethylene, polypropylene, polystyrene, polyethylene terephthalate, polyester, nylon, cellophane, polyacrylate, polyvinyl chloride, polyvinylidene chloride, polycarbonate, thermoplastic polyurethane, fully and partially hydrolyzed polyvinyl alcohol, ethylene-vinyl acetate copolymer, acrylonitrile-butadiene-styrene copolymer, biodegradable or compostable polymer such as polylactic acid, polybutylene succinate, polycaprolactone, polyhydroxyalkanoate, copolyester, cellulosic polymer, starch polymer. Further exemplary films include films composed of a blend of the polymers mentioned herein. Still further exemplary films include films composed of a single polymer or a blend of polymers and a filler that is known in the field to improve the performance of the film. Exemplary fillers include plasticizers, impact modifiers, mineral fillers, water-soluble fillers and pigments. Still further exemplary films include biodegradable films of a single component or a blend of components. Exemplary biodegradable films are films derived from renewable biomass sources, such as vegetable fats and oils, starch such as corn starch, plant based cellulose, lactic acid, straw, woodchips and/or food waste.
In embodiments, suitable exemplary films include films having a thermal shrinkage of less than about 5% at about 120° C. in both the machine direction (MD) (i.e., horizontal to the flow of the film, as shown in
Referring to
Each of plurality of core supports 104 includes a pedestal 108 on which a respective core is supported. The pedestal includes an outer shelf 122 and a concave region 124 positioned within shelf 122 (see
Each of the plurality of core supports 104 further includes an outer shelf 106 having a top surface 120 which is raised relative to connecting structure 102. Outer shelf 106 and pedestal 108 are connected by a plurality of bridge elements 110 which are separated by a plurality of apertures 132 (see
As illustrated, each bridge element 110 includes a ramp surface 126 which spans from a top surface of outer shelf 122 of pedestal 108 and a top surface 120 of outer shelf 106. In embodiments, bridge element 110 may have a non-linear contour and/or may be offset from one or both of the top surface of outer shelf 122 of pedestal 108 and top surface 120 of outer shelf 106.
In an alternative embodiment (see
Referring to
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Referring to
Exemplary vacuum systems include one or more vacuum pumps, one or more valves, one or more fluid conduits, and combinations thereof. In embodiments, vacuum system 170 is able to independently apply a partial vacuum to fluid conduit 134 and to fluid conduits 136; thereby controlling which regions of core support 104 are under a partial vacuum. An advantage, among others, of having the ability to selectively apply a partial vacuum to different regions of core support 104 is increased efficiency in the operation and operational cost of vacuum system 170.
Referring to
Referring to
In practice, a majority of the plurality of core supports 104 will have cores 160 supported thereon and a minority of the plurality of core supports 104 will have cores 160 missing. Thus, when flexible film 162 is removed, flexible film 162 is a sheet of material with holes corresponding to the locations of pieces 174 which had adhered to cores 160 supported by the majority of the plurality of core supports 104 and portions generally conforming to the shape of outer shelf 106, bridge elements 110, and pedestal 108 of core supports 104 with missing cores 160.
Referring to
Referring to
Referring to
Fluid conduit 326A is in fluid communication with a plurality of film securing apertures 332 in top surfaces 314A, 314B of film supports 310A, 310B. Fluid conduit 326A is in fluid communication with valve 324A which is in fluid communication with pump 322A. Valve 324A and pump 322A are operatively coupled to electronic controller 330 and controlled by electronic controller 330. Film 162 is positioned on top surfaces 314A, 314B of film supports 310A, 310B and held in place due to the partial vacuum pulled through film securing apertures 332 by pumps 322A when valves 324A is open. An advantage, among others, of holding the edges of film 162 relative to the central portion of the film above the cores 160 to be coated. Another advantage, among others, of holding the edges of film 162 is to minimize retraction of film 162 in a transverse direction.
In the illustrated embodiment, film securing apertures 332 are elongated along a longitudinal direction of the film supports 310A, 310B. An advantage, among others, of elongating the apertures along the longitudinal direction is that it increases the force holding the film 162 to the film supports 310A, 3106 without increasing a transverse diameter of the apertures. This advantage, over other aperture shapes, such as spherical apertures, allows the film to be more securely attached to the film support. The elongated film securing apertures shown in the Figures, such as in
Fluid conduit 326B is in fluid communication with a plurality of apertures 340 in the central portions of core supports 306 and are positioned to hold cores 160 to core supports 306. Fluid conduit 326B is in fluid communication with valve 324B which is in fluid communication with pump 322B. Valve 324B and pump 322B are operatively coupled to electronic controller 330 and controlled by electronic controller 330. Cores 160 are positioned on top core supports 306 and held in place due to the partial vacuum pulled through apertures 340 by pump 322B when valve 324B is open.
Fluid conduit 326C is in fluid communication with a plurality of apertures 342 in core supports 306 and are positioned between bridges 344 of core supports 306 around the periphery of the cores 160 to stretch film 162 over cores 160. Fluid conduit 326C is in fluid communication with valve 324C which is in fluid communication with pump 322C. Valve 324C and pump 322C are operatively coupled to electronic controller 330 and controlled by electronic controller 330. Film 162 is positioned on top of cores 160 which are held in place by film supports 310A, 3106 and stretched over cores 160 due to the partial vacuum pulled through apertures 342 by pump 322C when valve 324C is open.
Electronic controller 164 includes logic which controls the operation of valves 324A-C (if electronically controlled) and pumps 322A-C. In embodiments, the logic may be software instructions and data stored on memory which is accessible by electrical controller 330 for execution. The term “logic” as used herein includes software and/or firmware executing on one or more programmable processors, application-specific integrated circuits, field-programmable gate arrays, digital signal processors, hardwired logic, or combinations thereof. Therefore, in accordance with the embodiments, various logic may be implemented in any appropriate fashion and would remain in accordance with the embodiments herein disclosed. A non-transitory machine-readable medium comprising logic can additionally be considered to be embodied within any tangible form of a computer-readable carrier, such as solid-state memory, magnetic disk, and optical disk containing an appropriate set of computer instructions and data structures that would cause a processor to carry out the techniques described herein. This disclosure contemplates other embodiments in which electronic controller 330 is not microprocessor-based, but rather is configured to control operation of valves 324A-C, pumps 322A-C, and/or other components of carrier 300 or the system including carrier 300 based on one or more sets of hardwired instructions. Further, electrical controller 330 may be contained within a single device or be a plurality of devices networked together or otherwise electrically connected to provide the functionality described herein.
In other embodiments, individual valves are not controlled by an electronic controller. For example, as mentioned herein, an alternative is to bring fluid passageways in the carrier into fluid communication with the vacuum system based on the position of the carrier relative to a support having openings in fluid communication with the vacuum system. Thus, when a respective fluid passageway in the carrier is aligned with the opening in the support the vacuum system is in fluid communication with the openings in the carrier connected to the fluid passageway and when the respective fluid passageway in the carrier is not aligned with the opening in the support the vacuum system is not in fluid communication with the openings in the carrier connected to the fluid passageway.
Referring to
The central support 346 of core supports 306 and bridges 344 are part of an insert 370 (see
An alternative insert 380 is shown in
Referring to
An advantage, among others, of having bridges 390 of insert 380 lower than support 388 is that a greater distance is provided for film 162 to stretch and break relative to upper surface 354 of plate 302 without contacting bridges 390 when a core is supported by support 388. The distance from upper surface 354 to bridges 390 remains small enough for the film being used that in the absence of a core 160 supported by support 388 the film does not break in the region over bridges 390, but rather conforms to the upper surface of bridges 390 to continue to connect the flexible film 162 over the recess 350 and insert 380 to the remainder of the film lattice.
Insert 380 is coupled to plate 302 by either a press fit of lower portion 394 of insert 380 into recess 350, threaded engagement between lower portion 394 of insert 380 and the walls of recess 350, or other suitable connections. Insert 380 further includes a fluid conduit 386 which brings aperture 340 into fluid communication with fluid conduit 326B (see
Each of inserts 370 and 380 are shown with four respective bridges 344, 390. In embodiments, fewer or more bridges may be included. In embodiments, at least two bridges are provided. In embodiments, up to six bridges are provided.
In embodiments, plate 302 and inserts 370, 380 are made of aluminum. In embodiments, a temperature of plate 302 and inserts 370, 380 is maintained below about 54 degrees Celsius.
Referring to
Carrier 510 rotates in a second direction 512. As carrier 510 rotates in direction 512, a flexible film 162 is unwound from a roller 516 and overlaid on cores 160 as described herein and held relative to carrier 510 as described in connection with carrier 300. The flexible film 162 is treated to increase a formability of the flexible film. Exemplary methods of treatment include exposure to radiation, heating, chemical treatment, and other suitable methodologies. In the illustrated embodiment, the flexible film 162 is heated by a heating system 518 and coats the upper portion of cores 160 as described herein in connection with carriers 100, 200, 300, and the excess flexible film 162 is removed. In embodiments, carrier 510 is temperature controlled to assist in the removal of the excess flexible film 162 from the surface of carrier 510. The half coated cores 160 are transferred to a third carrier 520.
Carrier 520 rotates in first direction 506. As carrier 520 rotates in direction 506, a flexible film 162 is unwound from a roller 526 and overlaid on cores 160 as described herein and held relative to carrier 520 as described in connection with carrier 300. The flexible film 162 is heated by a heating system 528, coats the upper portion of cores 160 (which corresponded to the lower portions of cores 160 on carrier 510) as described herein in connection with carriers 100, 200, 300, and the excess flexible film 162 is removed. In embodiments, carrier 510 is temperature controlled to assist in the removal of the excess flexible film 162 from the surface of carrier 510. The fully coated cores 160 are transferred to a fourth carrier 530.
Carrier 530 rotates in second direction 512 and includes a vacuum system which couples the cores 160 to carrier 530. The cores 160 are transferred to a collection system 540. Exemplary collection systems 540 include bins and other suitable receptacles.
Each of carriers 504 and 530 are in fluid communication with a vacuum system that is in fluid communication with the core supports of carriers 504 and 530. In embodiments, a rotational position of the respective carrier 504 and 530 controls when the core supports of the respective carrier 504 and 530 are in fluid communication with the vacuum system. For example, a fluid passageway in the respective carrier which is in fluid communication with a respective core support of the carrier moves as the carrier is rotated and is in fluid communication with the vacuum system when the fluid passageway aligns with an opening in a support to which the carrier is coupled. The opening in the support is in fluid communication with the vacuum system. When the fluid passageway in the carrier is not aligned with the opening in the support, the respective core support is not in fluid communication with the vacuum system. In embodiments, a respective core support is in fluid communication with an angular opening in the support that is in fluid communication with the vacuum source when the respective core support is in a transfer-in zone 550 (see
Referring to
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In embodiments, a spacing between the individual carriers 504, 510, 520, and 530 may be adjusted based on a size of cores 160 or cores 161. An advantage, among other, of the ability to adjust the spacing between the individual carriers 504, 510, 520, and 530 is that lower vacuum levels may be used to transfer cores between the respective carriers due to the reduced spacing between the cores and the carrier to which the cores are to be transferred.
Referring to
Referring to
Returning to
In embodiments, lane dividers are provided in the bottom of the hopper 604 and produce apertures through which the individual cores 160 pass to enter the recesses 616 of carrier 612. Depending on the arrangement of recesses 616 of carrier 612, it may be necessary to run carrier 612 through multiple hoppers 604, each hopper 604 having lane dividers aligned with different rows of recesses 616 in carrier 612. In embodiments, recesses 616 of carrier 612 may be elongated along direction 614 to aid in receiving cores 160.
In embodiments, a top portion of conveyor 610 is positioned proximate to carrier 504 to transfer the cores 160 from carrier 612 to carrier 504. In other embodiments, carrier 612, once filled, is transitioned to a horizontal conveyor section for transfer of cores 160 to carrier 504.
Referring to
Cores 160 rest on a support 660 which is positioned below plates 652. Support 660 has a first portion 662 positioned below hopper 604 with a first separation from plates 652 when plates 652 move overtop of portion 662 of support 660. Support 660 further has a second portion 664 positioned below the transfer zone 550 of carrier 504 with a second separation from plates 652 when plates 652 move overtop of portion 664 of support 660. First portion 662 of support 660 is connected to second portion 664 of support 660 through a third, transition portion (not shown) that changes the separation between support 660 and plates 652 from the first separation to the second separation. In embodiments, the transition portion has a ramp profile from the first portion 662 to the second portion.
As illustrated in
Referring to
Referring to
Cores 160 rest on a support 710 which is positioned below plates 652. Support 710 has a first portion 712 positioned below hopper 604 with a first separation from plates 652 when plates 652 move overtop of portion 712 of support 710. Support 710 further has a second portion 714 positioned below the transfer zone 550 of carrier 504 with a second separation from plates 652 when plates 652 move overtop of portion 714 of support 710. First portion 712 of support 710 is connected to second portion 714 of support 710 through a third, transition portion (not shown) that changes the separation between support 660 and plates 652 from the first separation to the second separation. In embodiments, the transition portion has a ramp profile from the first portion 662 to the second portion.
Support 710 is a moveable support, such as a belt, which is moved by a drive wheel 720. In embodiments, support 710 moves in direction 614, but at one of a higher or lower speed than the movement of plates 652 in direction 614. An advantage, among others, of running support 710 at a higher or lower speed than plates 652 is that cores 160 may be jostled and positioned in apertures 656 against a wall of the apertures 656. A further advantage, among others, of running support 710 at a lower speed than plates 652 is that an incline of plates 652 relative to horizontal proximate transfer zone 550 may be reduced since the lower speed will continue to retard cores against a back edge of apertures 656. In other embodiments, support 710 moves in direction 615, opposite to direction 614.
In embodiments, support 710 is smooth. In other embodiments, support 710 is textured.
As illustrated in
Referring to
Referring to
In various embodiments, core lifter 802 may include a stationary or moveable member configured to raise the cores 161 within recesses 810. Referring to
Referring to
Referring to
The carriers disclosed herein may be used to coat a plurality of agricultural cores with a flexible film. In an exemplary embodiment, a method of simultaneously coating a plurality of agricultural cores with a flexible film is provided. The method including supporting a first integer number of the plurality of agricultural cores on a first carrier having an exterior face including a connecting structure and a second number of core supports recessed relative to the connecting structure. Each core support including a pedestal sized and shaped to support one of the agricultural cores to be coated and a plurality of bridges which extend between the pedestal and the connecting structure of the exterior face. The second integer number being greater than the first integer number. The method further including positioning a flexible film over the first integer number of agricultural cores and coating an upper portion of each of the first integer number of agricultural cores with a first number of pieces of the flexible film broken off of the overall flexible sheet film. The method further including conforming a remainder of the flexible sheet film to the pedestal and plurality of bridges of a third integer number of core supports of the carrier such that the flexible sheet conformed to the third number of core supports is removed with the remainder the overall flexible film positioned over the connecting structure. The third integer number being equal to the first integer number subtracted from the second integer number. For example, if the carrier included 20 core supports and 20 cores were present then the third integer number would be zero. In another example, if the carrier included 20 core supports and 15 cores were present then the third integer number would be 5.
While this invention has been described as having exemplary designs, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains.
Filing Document | Filing Date | Country | Kind |
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PCT/US2019/058112 | 10/25/2019 | WO | 00 |
Number | Date | Country | |
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62829448 | Apr 2019 | US | |
62754341 | Nov 2018 | US |