Modular shaft for disc filter
11135534 · 2021-10-05
Assignee
Inventors
Cpc classification
B01D33/21
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/40
PERFORMING OPERATIONS; TRANSPORTING
B01D2201/0415
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D33/23
PERFORMING OPERATIONS; TRANSPORTING
B01D33/21
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A modular support structure comprising multiple chord or arc modules configured to selectively fixedly engage adjacent modules to define a completed annular support structure configured to support a rotary element of a rotary filter. The modular chord or arc segments may fixedly engaged an adjacent chord or arc segment through a fixing mechanism selected from the group consisting of: fasteners, clamps, pins, bolts, locks, locking mechanisms, key and socket mechanisms, spot welding, welding, adhesives, and other fastening mechanisms configured to engage and disengage adjacent chord or arc modules with ease.
Claims
1. A rotary filter support assembly comprising: a drainage assembly disposed at a drainage end, the drainage end being distally disposed from a second end; multiple support structure modules disposed annularly around an axis of rotation, the support structure modules comprising a first module and an adjacent module, the first module comprising: a first end configured to fixedly engage the drainage assembly; a distal end; an axial arm disposed between the first end and the distal end; and a transverse beam extending outwardly from the axial arm, and configured to extend toward the adjacent module, and wherein a distal end of the transverse beam comprises a solid portion configured to terminate a distal end of a transverse drainage conduit of the transverse beam, and wherein the solid portion is removably connected to a solid portion of the adjacent module.
2. The rotary filter support assembly of claim 1, wherein the first end of the first module is configured to engage the drainage assembly and the solid portion of the distal end of the transverse beam is configured to engage the solid portion of the adjacent module through a first fastening mechanism selected from the group consisting of: fasteners, clamps, pins, locks, locking mechanisms, and key and socket mechanisms.
3. The rotary filter support assembly of claim 2, wherein the distal end of the first module is configured to engage a bearing assembly through a second fastening mechanism.
4. The rotary filter support assembly of claim 1 further comprising multiple transverse beams, wherein a portion of a transverse beam of the multiple transverse beams is the transverse drainage conduit, wherein the axial arm is an axial conduit, and wherein the transverse drainage conduit fluidly communicates with the axial drainage conduit.
5. The rotary filter support assembly of claim 4, wherein the multiple support structure modules further comprise multiple sector guides, wherein a first sector guide is disposed on the transverse beams and a second sector guide is disposed on the axial arm, and wherein the sector guides extend outwardly from the axis of rotation.
6. The rotary filter support assembly of claim 5, wherein disc sectors are disposed between the sector guides.
7. The rotary filter support assembly of claim 4, wherein the transverse drainage conduit further comprises multiple chambers, wherein each of the multiple chambers fluidly communicates with the axial conduit.
8. The rotary filter support assembly of claim 1, wherein the multiple support structure modules comprise between 5 and 36 support structure modules.
9. The rotary filter support assembly of claim 1 further comprising multiple transverse beams disposed in parallel on the axial arm, wherein solid portions of the distal ends of each of the transverse beams are removably connected to solid portions of the adjacent module through a fastening mechanism.
10. A method for installing a rotary filter modular support structure comprising: (a) inserting a support structure module into a rotary filter housing, the support structure module comprising: an axial arm having a first end distally disposed from a second end and a first side distally disposed from a second side, the first side and second side extending between the first end and second end; and transverse beams extending from the first side of the axial arm, wherein a transverse beam extending from the first side of the axial arm has a distal end comprising a solid portion distally disposed from a support end engaged to the first side of the axial arm, and wherein the solid portion of the distal end is configured to terminate a distal end of a transverse drainage conduit of the transverse beam, and wherein the solid portion is removably connectable to a solid portion of a second side of an adjacent support structure module with a fastening mechanism; (b) inserting the adjacent support structure module into the rotary filter housing; (c) engaging the distal end of the transverse beams of the support structure module to the second side of the adjacent support structure module; (d) repeating steps (a)-(c) until the rotary filter modular support structure is assembled.
11. A disc filter modular support structure comprising: a drainage assembly disposed at a drainage end, the drainage end being distally disposed from a second end; multiple support structure modules disposed annularly around an axis of rotation, wherein each support structure module is configured to engage the drainage assembly through a first fastening mechanism, each of the support structure modules comprising: an axial conduit extending between the drainage assembly and the second end; and multiple transverse drainage conduits extending outwardly from the axial conduit toward an adjacent support structure module, wherein the multiple transverse drainage conduits fluidly communicate with the axial conduit, and wherein a distal end of at least one of the multiple transverse drainage conduits comprises a solid portion configured to terminate a distal end of the at least one of the multiple transverse drainage conduits, and wherein the solid portion is removably connected to a solid portion of the adjacent support structure module through a second fastening mechanism, the first and second fastening mechanisms selected from the group consisting of: fasteners, clamps, pins, locks, locking mechanisms, and key and socket mechanisms.
12. The disc filter modular support structure of claim 11, wherein the multiple support structure modules further comprise multiple sector guides, wherein a first sector guide is disposed on the transverse drainage conduits and a second sector guide is disposed on the axial conduit, and wherein the sector guides extend outwardly from the axis of rotation.
13. The disc filter modular support structure of claim 12, wherein disc sectors are disposed between the sector guides.
14. The disc filter modular support structure of claim 11, wherein the multiple support structure modules comprise between 5 and 36 support structure modules.
15. The disc filter modular support structure of claim 11, wherein the transverse drainage conduits each further comprise multiple chambers, wherein each of the multiple chambers fluidly communicates with the axial conduit of the support structure module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing will be apparent from the following more particular description of exemplary embodiments of the disclosure, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, with emphasis instead being placed upon illustrating the disclosed embodiments.
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DETAILED DESCRIPTION OF THE INVENTION
(13) The following detailed description of the preferred embodiments is presented only for illustrative and descriptive purposes and is not intended to be exhaustive or to limit the scope and spirit of the invention. The embodiments were selected and described to best explain the principles of the invention and its practical application. One of ordinary skill in the art will recognize that many variations can be made to the invention disclosed in this specification without departing from the scope and spirit of the invention.
(14) Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of various features and components according to the present disclosure, the drawings are not necessarily to scale and certain features may be exaggerated in order to better illustrate embodiments of the present disclosure, and such exemplifications are not to be construed as limiting the scope of the present disclosure in any manner.
(15) References in the specification to “one embodiment,” “an embodiment,” “an exemplary embodiment,” etc., indicate that the embodiment described may include a particular feature, structure, or characteristic, but every embodiment may not necessarily include the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to affect such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
(16) Although specific terms are used in the following description for the sake of clarity, these terms are intended to refer only to the particular structure of the embodiment selected for illustration in the drawings, and are not intended to define or limit the scope of the disclosure.
(17) The singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. Numerical values should be understood to include numerical values that are the same when reduced to the same number of significant figures and numerical values that differ from the states value by less than the experimental error of conventional measurement technique of the type described in the present application to determine the value.
(18) All ranges disclosed herein are inclusive of the recited endpoint and are independently combinable (for example, the range “40 degrees to 60 degrees” is inclusive of the endpoints, 40 degrees and 60 degrees, and all intermediate values.
(19) As used herein, approximating language may be applied to modify any quantitative representation that may vary without resulting in a change in the basic function to which it is related. Accordingly, a value modified by a term or terms, such as “about” and “substantially,” may not be limited to the precise values specified. The modifier “about” should also be considered as disclosing the range defined by the absolute values of the two endpoints. For example, the expression “from about 2 to about 4” also discloses the range “from 2 to 4.”
(20) It should be noted that many of the terms used herein are relative terms. For example, the terms “upper” and “lower” are relative to each other in location, i.e. an upper component is located at a higher elevation than a lower component in a given orientation, but these terms can change if the device is flipped. The terms “inlet' and “outlet” are relative to a fluid flowing through them with respect to a given structure, e.g. a fluid flows through the inlet into the structure and flows through the outlet out of the structure. The terms “upstream” and “downstream” are relative to the direction in which a chips or water flow or a signal moves through various components, i.e. the signal encounters an upstream component prior to encountering the downstream component.
(21) The terms “top” and “bottom” or “base” are used to refer to locations/surfaces where the top is always higher than the bottom/base relative to an absolute reference, i.e. the surface of the Earth. The terms “upwards” and “downwards” are also relative to an absolute reference; an upwards flow is always against the gravity of the Earth.
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(23) As more clearly depicted in
(24) An exemplary modular support structure 120 comprises multiple support structure modules 125. Each module 125 has a first end 142 and a distal end 143. It will be understood that this disclosure relates to modular support structures for rotary filters generally and that the embodiments described herein are provided by way of example and are not intended to limit the claims. A rotary filter comprising support structure modules 125 configured to be assembled and disassembled faster than conventional pre-assembled cast, welded, or fabricated rotary filter shafts or support structures are considered to be within the scope of this disclosure.
(25) In the exemplary embodiment shown in
(26) In the depicted embodiment, each of the axial arms 127 is an axial conduit 127.sub.a configured to convey filtrate 156 (
(27) It will be understood that in other exemplary embodiments, not all exemplary modules 125 need to have the same elements. It is contemplated that an exemplary modular support structure 120 may comprise two or more different types of support structure modules 125 (compare
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(29) The radially outer side 182 of the transverse beams 123 are chords in a reference circle 145. Two disc sectors 160 can affix to each transverse beam 123. When fully assembled, the arrangement of transverse beams 123 and disc sectors 160 create a series of filter discs 110 disposed along the length L of the modular support structure 120. In the depicted embodiment, each the radially outer side 182 of the transverse beams 123 in each reference circle 145 create a heptagon within the reference circle 145. However, nothing in this disclosure should be construed as limiting the shape of the profile of the transverse beams 123 of a fully constructed modular support structure 120. For example, the profile of the transverse beams 123 of a fully constructed modular support structure 120 may generally resemble a geometric shape, including a regular geometric shape, such as but not limited to a triangle, quadrilateral, pentagon, hexagon, octagon, nonagon, decagon, and circle. In other exemplary embodiments, the profile of the transverse beams 123 of a fully constructed modular support structure 120 may resemble an irregular geometric shape.
(30) A series of sector guides 140 may extend generally radially from the modular support structure 120. In the depicted embodiment, a first sector guide 140.sub.a extends from the axial conduit 127.sub.a and a second sector guide 140.sub.b extends from each the transverse drainage conduit 123.sub.a on each module 125. As more clearly seen in
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(32) During operation, filtrate 156 can flow from the slurry and through a disc sector 160 before entering a transverse drainage conduit 123.sub.a. The transverse drainage conduit 123.sub.a extends from the axial conduit 127.sub.a and fluidly communicates with the axial conduit 127.sub.a. As a module 125 rotates upwardly toward and past the line of horizontal bisection H (
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(35) The crane 172 may have a first cable 171 and a second cable 173 engaged to a module 125. In the depicted installation configuration, the first cable 171 and the second cable 173 may be on separate parallel tracks and thereby rotate the module 125 into position above a existing opening 175 (
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(40) An exemplary rotary filter support assembly comprises: a drainage assembly 113 disposed at a drainage end 112, the drainage end 112 being distally disposed from a second end 130, multiple support structure modules 125 disposed annularly around an axis of rotation R, the support structure modules 125, 125′, 125″ comprising a first module 125 and an adjacent module 125′, the first module 125 comprising: a first end 142 configured to fixedly engage the drainage assembly 113, a distal end 143, an axial arm 127 disposed between the first end 142 and the distal end 143, and a transverse beam 123 extending outwardly from the axial arm 127, and configured to extend toward the adjacent module 125′, and wherein a distal end 136 of the transverse beam 123 is configured to fixedly engage the adjacent module 125′.
(41) The first end 142 of the first module 125 can be configured to engage the drainage assembly 113 and the distal end 136 of the transverse beam 123 can be configured to engage the adjacent module 125′ through a fastening mechanism selected from the group consisting of: fasteners, clamps, pins, locks, locking mechanisms, key and socket mechanisms, spot welding, welding, and adhesives.
(42) An exemplary method for installing a rotary filter modular support 120 structure comprises: (a) inserting a support structure module 125 into a rotary filter housing 154, the support structure module 125 comprising: an axial arm 127 having a first end 128 distally disposed from a second end 129 and a first side 134 distally disposed from a second side 137, the first side 134 and second side 137 extending between the first end 128 and second end 129, and transverse beams 123 extending from the first side 128 of the axial arm 127, wherein a transverse beam 123 extending from the first side 134 of the axial arm 127 has a distal end 136 distally disposed from a support end 139 engaged to the first side 134 of the axial arm 127, and wherein the distal end 136 is configured to engage a second side 137 of an adjacent support structure module 125′ with a fastening mechanism. (b) inserting the adjacent support structure module 125′ into the rotary filter housing 154, (c) engaging the distal end 136 of the transverse beams 123 of the support structure module 125 to the second side 137′ of the adjacent support structure module 125′, (d) repeating steps (a)-(c) until the rotary filter modular support structure 120 is assembled.
(43) An exemplary disc filter modular support structure 120 comprises: a drainage assembly 113 disposed at a drainage end 112, the drainage end 112 being distally disposed from a second end 130; multiple support structure modules 125, 125′, 125″ disposed annularly around an axis of rotation R, wherein each support structure module 125 is configured to engage the drainage assembly 113 through a fastening mechanism, each of the support structure modules 125, 125′, 125″ comprising: an axial conduit 127.sub.a extending between the drainage assembly 113 and the second end 130, and multiple transverse drainage conduits 123.sub.a extending outwardly from the axial conduit 127.sub.a toward the adjacent support structure module 125′, wherein the multiple transverse drainage conduits 123.sub.a fluidly communicate with the axial conduit 127.sub.a, and wherein a distal end 136 of at least one of the multiple drainage conduits 123.sub.a is configured to fixedly engage the adjacent support structure module 125′ through the fastening mechanism, the fastening mechanism selected from the group consisting of: fasteners, clamps, pins, locks, locking mechanisms, key and socket mechanisms, spot, welds, welds, and adhesives.
(44) While this invention has been particularly shown and described with references to exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention encompassed by the appended claims.