Thin plate apparatus for removing debris from water
09707496 ยท 2017-07-18
Inventors
Cpc classification
B01D29/66
PERFORMING OPERATIONS; TRANSPORTING
Y02W10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D29/6484
PERFORMING OPERATIONS; TRANSPORTING
B01D29/684
PERFORMING OPERATIONS; TRANSPORTING
B01D29/6484
PERFORMING OPERATIONS; TRANSPORTING
B01D29/684
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D33/29
PERFORMING OPERATIONS; TRANSPORTING
B01D29/66
PERFORMING OPERATIONS; TRANSPORTING
B01D33/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A product that is an apparatus for removing debris from water containing such debris using a perforated plate, a backer plate, and a skimmer, positioned adjacent the back of the perforated plate to provide a means of removing debris from the perforated plate without scraping the debris from the perforated plate, the skimmer bar and the backer plate being synchronized in their movement.
Claims
1. A thin plate apparatus for removing solid debris from water containing such debris, said apparatus comprising: a support frame consisting of two, parallel, spaced-apart vertical supports, said vertical supports being rigidly affixed to each other by rigid cross members; said vertical supports each having a near end and a distal end, the distal end of, each vertical support having a lateral support arm attached thereto; each said lateral support arm having a downwardly depending set of posts, said post being parallel to each other, said posts having attached thereto, a mounting plate, said mounting plate having an inside surface; each mounting plate having a centered opening therein, said center openings having one end of a common rotating shaft inserted therein; there is mounted near the inside surface of each mounting plate, a square-tracked pulley and mounted on each such pulley, a drive chain comprised of rigid link bars being joined to each other such that each link bar pivotally interacts with adjacent link bars to form two adjacent drive chains that are attached to each other in a spaced-apart configuration by a plurality of rigid skimming bars, each said rigid skimming bar having a corrugated distal edge and mounted on each corrugated distal edge, a soft, resilient skimming material; there being mounted near the distal end and between the vertical supports, a corrugated perforated plate, said corrugated perforated plate having distal horizontal edges and a vertical distal edge and being configured to accept said rigid skimming bars, and having a back, and a plurality of such perforations therein in which the size of the perforations is calculated based on the formula:
2. The thin plate apparatus as claimed in claim 1 in which the thin plate apparatus is equipped with water supply mechanisms that are arranged against the back surface of the corrugated perforated plate and which are coordinated such that they move in a vertical direction with the movement of the moveable solid effector plate.
3. The thin plate apparatus as claimed in claim 1 in which the thin plate apparatus is equipped with water supply mechanisms in which the water supply mechanisms are located within the moveable solid effector plate.
4. The thin plate apparatus as claimed in claim 1 in which the thin plate apparatus is equipped with water supply mechanisms that are arranged adjacent the back surface of the perforated plate such that there is gap between the water supply mechanism and the back surface of the perforated plate.
5. The thin plate apparatus as claimed in claim 1 wherein the perforated plate is manufactured from metal.
6. In combination, a moveable solid effector plate mounted against the back of a flat perforated plate, said moveable solid effector plate having a back surface, a top end, and a front surface, the front surface of the moveable solid effector plate touching the perforated plate, said moveable solid effector plate being movable up and down in essentially a vertical motion in predetermined coordination with skimmer bars.
7. A rigid skimming bar, said rigid skimming bar having a corrugated distal edge and mounted on each corrugated distal edge, a soft, resilient skimming material.
8. A moveable solid effector plate, said effector plate having lift provided by a lift and release mechanism, said lift and release mechanism comprising a lower pivotable support arm having near end and a distal end, the near end being pivotably mounted to a support frame, the distal being pivotally mounted to a dampener means, said dampener means having a distal end, the dampener means being pivotally attached to the back surface of the moveable solid effector plate.
9. In combination, a thin plate apparatus equipped with a water supply mechanism that is arranged against the back surface of a corrugated perforated plate and which is coordinated such that said water supply mechanism moves in a vertical direction with the movement of a moveable solid effector plate.
10. In combination, a thin plate apparatus equipped with a water supply mechanism that is contained within the corrugated perforated plate.
11. In combination, a plurality of rigid skimmer bars and a corrugated perforated plate being configured to accept said rigid skimming bars, said corrugated perforated plate having a plurality of such perforations therein in which the size of the perforations is calculated based on the formula:
12. A flat perforated plate having coarse screen components comprising solid vertical bars, wherein the solid vertical bars are independently spaced on a front surface of the flat perforated plate.
13. In combination, a corrugated perforated plate, said corrugated perforated plate having near horizontal edges and a distal vertical edge and being configured to accept rigid skimming bars, having a plurality of such perforations therein in which the size of the perforations is calculated based on the formula:
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(20) For purposes of this invention, the term hydropression effect is used to denote the basis on which the invention is superior to prior art devices. Hydropression is the term coined by the inventors herein to describe the effect of the thin flat plate fluid dynamics, as applied to this invention and this method, i.e. perforated plate/ultra screening of solids from water. The hydropression effect is essentially a fluid mechanics transport effect. To create this effect, a thin flat plate is placed perpendicularly into a flowing fluid, and in this case, water. Positive pressure is created on the front of the plate and negative pressure is created on the back of the plate. An effector plate (described infra) on the back (negative pressure side of the plate) of the screen and a skimmer on the front side of the screen (positive), move in unison to create a pressure differential. This differential creates a deflected water flow that pushes debris up the screen and makes it available for collection by a skimmer or similar apparatus. The debris is then discharged and removed from the water channel.
(21) Turning to
(22) Also shown in
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(27) The size of the openings for the perforated plates of this invention is calculated by the formula
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wherein the thickness of the perforated plate does not exceed of an inch.
(29) In operation, and for illustration purposes, the flow of wastewater is from left to right in
(30) The skimming bar 8 does not scrape the front of the perforated plate 9, but instead skims just short of the surface of the perforated plate 9 to remove the solids.
(31) It has been discovered that the backwash 14 actually rolls the solid materials into a ball, which balls are separated from the openings 15 by the backwash 14 and float towards the upper surface of the waste water and then are moved along by the skimming bar 8 until the solids reach the top where they are moved off into a recovery device and disposed of.
(32) Turning now to a second embodiment of this invention, there is shown in
(33) The purpose of the corrugation is at least three-fold, that is, the corrugation provides more surface area than does a flat plate; the corrugation creates more rigidity and therefore, stability of the plate, and it provides a basis for placing additional components into the apparatus to arrive at more benefits, all of which will be explained infra.
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(35) Turning now to another embodiment of this invention which is a coarse screen in combination with a fine screen used as the perforated plate, the perforated plate 23 is shown in
(36) The perforated plate 23 is comprised of thin screen plate 24 and coarse screen bars 25, in which the thin screen plates 24 are connected together at the downside 26 by welding or by using a fastener 27 (only one example shown). As can be observed from
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(38) At the leading edge 28 of the thin screens 24 (perforated plate material), and positioned between the leading edges 28 of the thin screens 24, are metal bars 29 which are vertically held between the leading edges 28 to form the coarse screen 25. These bars 29 constitute a coarse screen 25. There is also a component 30, which is a metal bar that is used to maintain the correct distances between the fine screens 24 and to provide stability to device. The thin screen/coarse screen is not easily manufactured, and the use of the bars 30 help ease the manufacturing process.
(39) The coarse screen 25 screens out cloth, paper, wood and other larger sized particles from the water flow before those materials encounter the thin screens 23 and therefore prevent early clogging of the thin screens 23.
(40) In use, these fine screen/coarse screens are substituted in the apparatus for the perforated plates set forth and described above.
(41) Turning now to another embodiment of this invention, there is shown in
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(43) With regard to the use of water in conjunction with the perforated plates of this invention, attention is directed to
(44) Also contemplated within the scope of this invention is to provide corrugated water supply nozzles 38 that are located in the effector plate 21, shown in
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(46) As noted Supra, in this configuration of nozzles operates in the same manner, by forcing water against the back surface of the perforated plate 20 to create an enhance hydropression effect.
(47) In yet another embodiment of this invention, there is shown in
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(50) The perforated plates of this invention can be manufactured from any water impermeable building material and that can be, for example, wood, plastic, webbed textile, mesh, netting, or metal, wherein for this invention, preferred is metal.