HIGH EFFICIENCY CONICAL MILLS
20190009278 ยท 2019-01-10
Assignee
Inventors
- Wilf SANGUESA (Waterloo, Ontario, CA)
- Barry WATSON (Waterloo, Ontario, CA)
- Jeff VERBERNE (Guelph, Ontario, CA)
- Sean WATSON (Kitchener, Ontario, CA)
Cpc classification
B02C2023/165
PERFORMING OPERATIONS; TRANSPORTING
B02C18/062
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Screens for conical mills and an improved gearbox and housing for such conical mills are shown and described. The screens are frusto-conically-shaped and include a tapered sidewall with a plurality of openings in the sidewall that may be of uniform size. Each opening is separated from adjacent openings by spacing distances which are shorter at the top of the tapered sidewall and longer at the bottom of the tapered sidewall to thereby reduce the residence time of the powder being milled at the top of the tapered sidewall and to increase the residence time of the powder being milled at the bottom of the tapered sidewall.
Claims
1. A screen for a mill, the screen comprising: a tapered sidewall having a wider top and a narrower bottom, the sidewall including a plurality of openings of a uniform size, each opening separated from adjacent openings by spacing distances, the spacing distances at the top of the sidewall being less than the spacing distances at the bottom of the sidewall.
2. The screen of claim 1 wherein an open area percentage provided by the openings in the sidewall is greater at the top of the sidewall than at the bottom of the sidewall.
3. The screen of claim 1 wherein the sidewall is frusto-conically shaped.
4. The screen of claim 1 wherein the openings have a shape selected from the group consisting of round, square and rectangular.
5. The screen of claim 1 wherein the sidewall at each opening includes an inwardly extending rasp or dimple
6. The screen of claim 1 wherein the sidewall includes a total surface area interrupted by the openings, the sidewall also comprising an upper section, an upper middle section, a lower middle section and a lower section, the openings in the upper section provide an open area percentage ranging from about 30% to about 50% of the total surface area of the sidewall in the upper section, the openings in the upper middle section provide an open area percentage ranging from about 25% to about 45% of the total surface area of the sidewall in the upper middle section, the openings in the lower middle section provide an open area percentage ranging from about 20% to about 40% of the total surface area of the sidewall in the lower middle section, and the openings in the lower section provide an open area percentage ranging from about 15% to about 35% of the total surface area of the sidewall in the lower section.
7. The screen of claim 1 wherein the sidewall includes a total surface area interrupted by the openings that cumulatively provide an open area percentage, and wherein the open area percentage is about 40% at the top of the sidewall, the open area percentage is about 25% at the bottom of the sidewall and the openings disposed between the top and the bottom of the sidewall provide an open area percentage ranging from less than 40% to greater than 25%.
8. A mill comprising: a housing accommodating a frusto-conically shaped screen comprising a tapered sidewall having a wider top and a narrower bottom, the sidewall including a plurality of openings of a uniform size, each opening separated from adjacent openings by a spacing distance, the spacing distances at the top of the sidewall being less than the spacing distances at the bottom of the sidewall, the sidewall accommodating an impeller mounted coaxially within the sidewall, the impeller having a lower base disposed at the bottom of the sidewall and connected to an output shaft that extends through the bottom of the sidewall, the base connected to at least one milling member that extends from the top to the bottom of the sidewall, the output shaft connected to an output gear, the output gear enmeshed with an input gear, the input gear connected to an input shaft, the input shaft connected to a motor, wherein the input gear is fabricated from non-metallic composite materials.
9. The conical mill of claim 8 wherein at least part of the output shaft, the input gear and at least part of the input shaft are disposed within a gearbox, the gear box sealably connected to the housing, and wherein the gearbox includes no lubricant.
10. The mill of claim 8 wherein an open area percentage provided by the openings is greater at the top of the sidewall than at the bottom of the sidewall.
11. The mill of claim 8 wherein the sidewall is frusto-conically shaped.
12. The mill of claim 8 wherein the openings have a shape selected from the group consisting of round, square and rectangular.
13. The mill of claim 8 wherein the sidewall at each opening includes an inwardly extending rasp or dimple
14. The mill of claim 8 wherein the sidewall includes a total surface area interrupted by the openings, the sidewall also comprising an upper section, an upper middle section, a lower middle section and a lower section, the openings in the upper section provide an open area percentage ranging from about 30% to about 50% of the total surface area of the sidewall in the upper section, the openings in the upper middle section provide an open area percentage ranging from about 25% to about 45% of the total surface area of the sidewall in the upper middle section, the openings in the lower middle section provide an open area percentage ranging from about 20% to about 40% of the total surface area of the sidewall in the lower middle section, and the openings in the lower section provide an open area percentage ranging from about 15% to about 35% of the total surface area of the sidewall in the lower section.
15. The mill of claim 8 wherein the sidewall includes a total surface area interrupted by the openings that cumulatively provide an open area percentage, and wherein the open area percentage is about 40% at the top of the sidewall, the open area percentage is about 25% at the bottom of the sidewall and the openings disposed between the top and the bottom of the sidewall provide an open area percentage ranging from less than 40% to greater than 25%.
16. A method for size-reducing a flowable solid material, the method comprising: providing a mill comprising a housing that accommodates a screen between a top and a bottom of the housing, the screen comprising a frusto-conically shaped sidewall having a wider top and a narrower bottom, the sidewall including a plurality of openings of a uniform size, each opening separated from adjacent openings by spacing distances, the spacing distances between the openings at the top of the sidewall being less than the spacing distances at the bottom of the sidewall, the sidewall accommodating an impeller mounted coaxially within the sidewall, the impeller comprising at least one milling member that extends parallel to the sidewall and from the bottom to the top of the sidewall, rotating the impeller, delivering the flowable solid material through the top of the housing and through the top of the sidewall, pressing the flowable solid material through the openings in the sidewall to produce size-reduced material, and collecting the size-reduced material.
17. The method of claim 16 wherein the sidewall at each opening includes an inwardly extending rasp.
18. The method of claim 16 wherein the sidewall includes a total surface area interrupted by the openings, the sidewall also comprising an upper section, an upper middle section, a lower middle section and a lower section, the openings in the upper section provide an open area percentage ranging from about 30% to about 50% of the total surface area of the sidewall in the upper section, the openings in the upper middle section provide an open area percentage ranging from about 25% to about 45% of the total surface area of the sidewall in the upper middle section, the openings in the lower middle section provide an open area percentage ranging from about 20% to about 40% of the total surface area of the sidewall in the lower middle section, and the openings in the lower section provide an open area percentage ranging from about 15% to about 35% of the total surface area of the sidewall in the lower section.
19. The method of claim 16 wherein the sidewall includes a total surface area interrupted by the openings that cumulatively provide an open area percentage, and wherein the open area percentage is about 40% at the top of the sidewall, the open area percentage is about 25% at the bottom of the sidewall and the openings disposed between the top and the bottom of the sidewall provide an open area percentage ranging from less than 40% to greater than 25%.
20. The method of claim 16 wherein the impeller further comprising a lower base disposed at the bottom of the sidewall of the screen and connected to an output shaft that extends through the bottom of the sidewall, the base connected to at least one milling member that extends from the top to the bottom of the sidewall, the output shaft connected to an output gear, the output gear enmeshed with an input gear, the input gear connected to an input shaft, the input shaft connected to a motor, wherein the input gears are fabricated from non-metallic composite materials.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] For a more complete understanding of the disclosed methods and apparatuses, reference should be made to the embodiments illustrated in greater detail in the accompanying drawings, wherein:
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[0068] The drawings are not necessarily to scale and may illustrate the disclosed embodiments diagrammatically and in partial views. In certain instances, the drawings omit details which are not necessary for an understanding of the disclosed methods and apparatuses or which render other details difficult to perceive. Further, this disclosure is not limited to the particular embodiments illustrated herein.
DETAILED DESCRIPTION OF THE PRESENTLY PREFERRED EMBODIMENTS
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[0071] Each section includes a plurality of openings 54 that may be of a uniform size. However, the spacing distances between the openings 54 vary from the upper section 64 to the lower section 67. The upper section 64 engages to the upper portions of the milling members 71, 72 of the impeller 57, which travel at a faster rotational velocity than lower portions of the milling members 71, 72. Therefore, the upper sections 64 of the screen 50a are exposed to a greater amount of energy from the impeller 57 while the lower section 67 of the screen 50a is exposed to a lower amount of energy from the rotating impeller 57. Generally, the energy delivered by the rotating impeller 57 decreases along the tapered sidewall 51a from the upper section 64 to the bottom section 67. As a result, more openings 54 are required for the upper section 64 in order to reduce the residence time because the flowable material that is being milled in the upper section 64 will be reduced to within the target PSD before the flowable material being milled in the upper middle section 65, lower middle section 66 or lower section 67. In contrast, because the lower section 67 is engaged by the lower portions of the milling members 71, 72 of the impeller 57, which are traveling at the lowest rotational velocity, the flowable material being milled at the lower section 67 is exposed to less energy, and therefore requires a higher residence time to achieve the target PSD. Thus, the lower section 67 has fewer openings 54, longer spacings between openings 54 and a lower open area percentage.
[0072] Accordingly, in
[0073] In the embodiment shown, the angle between the openings 54 for the hole patterns illustrated in
[0074] The open area percentage for the four distinct sections 64, 65, 66, 67 of the screen 50a may range from about 30% to about 50% for the upper section 64, from about 25% to about 45% for the upper middle section 65, from about 20% to about 40% for the lower middle section 66 and from about 15% to about 35% for the lower section 67. However, the open area percentages as well as the spacing distances D.sub.1-D.sub.4 may vary greatly, as will be dependent on the material being milled, the desired PSD, operating conditions and other factors as will be apparent to those skilled in the art. In one non-limiting example, the open area percentages for the sections 64-67 may be 40%, 35%, 30% and 25% respectively.
[0075] Turning to
[0076] Turning to
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[0079] In addition to the captured O-ring 76 sealing the bottom 56 of the impeller 57 against the output shaft 78, the gearbox 80 also includes a seal assembly 84 that further prevents any cross-contamination between the gearbox 80 and the milling chamber 85 provided by the housing 61 (see
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INDUSTRIAL APPLICABILITY
[0081] A conical mill 62, an improved gearbox 80 for a conical mill 62, improved frusto-conical screens 50, 50a, 50b, 50c, 50d, 50e and an improved impeller 57 are disclosed herein and are suitable for use in many pharmaceutical, food, chemical or cosmetics applications.
[0082] The disclosed conical mills 62, with improved screens 50, 50a, 50b, 50c, 50d, 50e, impeller 57 and gearbox 80, may provide any or all of the following benefits: from about 15% to greater than 50% improvement in narrowing PSDs; up to about 50% reduction in heat generation; from about 30% to greater than about 50% in increased capacity or throughput; reduced sound generation by up to 5 dBs; and the ability to clean the conical mill 62 without the need of opening the milling chamber 85 and without exposing the operator to the milled powder or dust.
[0083] While only certain embodiments have been set forth, alternatives and modifications will be apparent from the above description to those skilled in the art. These and other alternatives are considered equivalents and within the spirit and scope of this disclosure and the appended claims.