Peller blade with a flap
10882593 ยท 2021-01-05
Inventors
Cpc classification
F03D1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/168
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63H1/28
PERFORMING OPERATIONS; TRANSPORTING
F04D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
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
International classification
Abstract
A peller device with a flap is an apparatus used to enhance the capabilities and efficiency of water circulation and aeration systems. The apparatus is configured to act as both a propeller and an impeller as necessary for a particular water circulation requirement. A flap is an addition to the blade tip which propels a fluid by pushing against the fluid, thus enabling the peller to function as a propeller. In addition, the flap facilitates the generation of a sucking force so the peller can also function efficiently as an impeller. The peller assembly can be encased in circular housings having a vertical axis in which the peller assembly is mounted for rotation on the central axis of the housing. The peller assembly is formed with a hub and a plurality of blades symmetrically positioned around the hub. The flap of the apparatus is attached to the base of the peller assembly.
Claims
1. A peller blade with a flap comprises: a blade body; a flap body; the blade body comprises a leading edge, a trailing edge, a pressure face, a suction face, a root, and a tip; the flap body comprises a fixed edge and a free edge; the fixed edge being mounted along the trailing edge; the fixed edge being positioned adjacent to the pressure face; the free edge being positioned offset from the pressure face; a first angle between the pressure face and the flap body being less than a second angle between the suction face and the flap body; a cross-sectional area of the blade body tapering from the tip to the root; the pressure face being a concave helicoidal surface; and the suction face being a convex helicoidal surface.
2. The peller blade with a flap as claimed in claim 1 comprises: a curvature path of the blade body traversing from the root to the tip; and the flap body being configured to follow the curvature path of the blade body.
3. The peller blade with a flap as claimed in claim 1 comprises: a first hydrodynamic surface; the first hydrodynamic surface traversing from the pressure face, across the first angle, and to the flap body; and the first hydrodynamic surface being configured to smooth out the first angle.
4. The peller blade with a flap as claimed in claim 1 comprises: a second hydrodynamic surface; the second hydrodynamic surface traversing from the suction face, across the second angle, and to the flap body; and the second hydrodynamic surface being configured to smooth out the second angle.
5. The peller blade with a flap as claimed in claim 1 comprises: the flap body further comprises an attachment slot; the attachment slot traversing along the fixed edge; and the attachment slot being engaged by the trailing edge.
6. A peller blade with a flap comprises: a blade body; a flap body; the blade body comprises a leading edge, a trailing edge, a pressure face, a suction face, a root, and a tip; the flap body comprises a fixed edge, a free edge, and an attachment slot; the fixed edge being mounted along the trailing edge; the fixed edge being positioned adjacent to the pressure face; the free edge being positioned offset from the pressure face; a first angle between the pressure face and the flap body being less than a second angle between the suction face and the flap body; the attachment slot traversing along the fixed edge; the attachment slot being engaged by the trailing edge; a cross-sectional area of the blade body tapering from the tip to the root; the pressure face being a concave helicoidal surface; and the suction face being a convex helicoidal surface.
7. The peller blade with a flap as claimed in claim 6 comprises: a curvature path of the blade body traversing from the root to the tip; and the flap body being configured to follow the curvature path of the blade body.
8. The peller blade with a flap as claimed in claim 6 comprises: a first hydrodynamic surface; the first hydrodynamic surface traversing from the pressure face, across the first angle, and to the flap body; and the first hydrodynamic surface being configured to smooth out the first angle.
9. The peller blade with a flap as claimed in claim 6 comprises: a second hydrodynamic surface; the second hydrodynamic surface traversing from the suction face, across the second angle, and to the flap body; and the second hydrodynamic surface being configured to smooth out the second angle.
10. A peller blade with a flap comprises: a blade body; a flap body; the blade body comprises a leading edge, a trailing edge, a pressure face, a suction face, a root, and a tip; the flap body comprises a fixed edge and a free edge; the fixed edge being mounted along the trailing edge; the fixed edge being positioned adjacent to the pressure face; the free edge being positioned offset from the pressure face; a first angle between the pressure face and the flap body being less than a second angle between the suction face and the flap body; a curvature path of the blade body traversing from the root to the tip; the flap body being configured to follow the curvature path of the blade body; a cross-sectional area of the blade body tapering from the tip to the root; the pressure face being a concave helicoidal surface; and the suction face being a convex helicoidal surface.
11. The peller blade with a flap as claimed in claim 10 comprises: a first hydrodynamic surface; the first hydrodynamic surface traversing from the pressure face, across the first angle, and to the flap body; and the first hydrodynamic surface being configured to smooth out the first angle.
12. The peller blade with a flap as claimed in claim 10 comprises: a second hydrodynamic surface; the second hydrodynamic surface traversing from the suction face, across the second angle, and to the flap body; and the second hydrodynamic surface being configured to smooth out the second angle.
13. The peller blade with a flap as claimed in claim 10 comprises: the flap body further comprises an attachment slot; the attachment slot traversing along the fixed edge; and the attachment slot being engaged by the trailing edge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(8) All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
(9) The present invention is a peller device with a flap that is used to enhance the capabilities and efficiency of water circulation and aeration systems. The present invention is configured to act as both a propeller and an impeller as necessary for a particular water circulation requirement. The present invention comprises a blade body 1 and a flap body 8, as shown in
(10) The general configuration of the aforementioned components allows the present invention to efficiently and effectively push or pull water or other fluids particularly in low head, high production water circulation and aeration systems. The blade body 1 comprises a leading edge 2, a trailing edge 3, a pressure face 4, a suction face 5, a root 6, and a tip 7. The leading edge 2 relates to the section of the blade body 1 that, in the preferred usage of the present invention, precedes the trailing edge 3, pressure face 4, suction face 5, root 6, and tip 7 through the fluid. The trailing edge 3 denotes the section of the blade body 1 which, in the preferred usage of the present invention, follows the leading edge 2, pressure face 4, suction face 5, root 6, and tip 7 through the fluid. The pressure face 4, as shown in
(11) The arrangement of the components of the present invention enables enhanced blade efficiency in propeller and impeller units. The fixed edge 9 is mounted along the trailing edge 3, as shown in
(12) In order to generate appropriate forces, the present invention requires appropriately curved surfaces that result in conversion of rotational energy into translational energy. To achieve this, the pressure face 4 may be a concave helicoidal surface, as shown in
(13) The blade body 1 may further take on a variety of shapes that the flap body 8 will have to adapt to. To this end, a curvature path of the blade body 1 may traverse from the root 6 to the tip 7, as shown in
(14) It may be desirable in many circumstances to provide a blade body 1 which is optimized for rotational speed and thus requires minimization of blade width. To achieve this, a cross-sectional area of the blade body 1 may taper from the tip 7 to the root 6, as shown in
(15) Often, sharp angles inhibit the present invention from operating optimally. To prevent this, the present invention may further comprise a first hydrodynamic surface 14, as shown in
(16) Rigid angles may similarly impede the present invention from optimal operation. To prevent this, the present invention may further comprise a second hydrodynamic surface 15, as shown in
(17) The present invention may be made more convenient during setup phases of operation through the separation of vital components. To achieve this, the flap body 8 may further comprise an attachment slot 11, as shown in
(18) Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.