DOUBLE-SIDED FLUIDIC OSCILLATOR JET
20240278263 ยท 2024-08-22
Inventors
Cpc classification
F28F13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
B05B1/08
PERFORMING OPERATIONS; TRANSPORTING
F28F13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B05B1/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A double-sided fluidic oscillator, includes a primary feedback loop unit, a secondary feedback loop unit with two outlet and one inlet, and a common mixing chamber. Two perpendicular oscillator jets operating at different oscillation frequencies produce perpendicular and bi-stable pulsating flow oscillations, simultaneously. The proposed design of the fluidic oscillator is a double-sided fluidic oscillator. Also, disclosed is a method of achieving an enhanced heat and mass transfer by better mixing due to the wide sweeping pattern over a target surface using the double-sided fluidic oscillator.
Claims
1. A fluidic oscillator, comprising: a primary feedback loop unit; a secondary feedback loop unit; at least one outlet and a single inlet; a single and common mixing chamber; and at least two perpendicular oscillator jets operating at different oscillation frequencies, producing perpendicular and bi-stable pulsating flow oscillations, simultaneously, wherein switching of fluid occurs between the primary and secondary feedback loop units for achieving sweeping jet patterns.
2. The fluidic oscillator of claim 1, wherein the at least two perpendicular oscillator jets also provide biaxial sweeping jet patterns with vertical (top-bottom) and horizontal (left-right) sweeping range of oscillations, thereby increasing a cooling area coverage.
3. The fluidic oscillator of claim 1, wherein the primary feedback loop unit comprises at least two feedback loops.
4. The fluidic oscillator of claim 1, wherein the secondary feedback loop unit comprises at least two feedback loops.
5. The fluidic oscillator of claim 1, further comprising a chevron-shaped design nozzle at the outlet, which assists in achieving a turbulent outlet sweeping pattern, thereby augmenting heat transfer over a target surface.
6. The fluidic oscillator of claim 1, wherein the fluidic oscillator comprises two inlets, resulting in two incoming fluids from the two different inlets entering the common mixing chamber which negates the Coanda effect and thereby creates a steady fluid flow.
7. The fluidic oscillator of claim 1, wherein the fluidic oscillator is a double-sided fluidic oscillator.
8. A method of achieving a wide sweeping pattern and augmenting heat transfer over a target surface using a double-sided fluidic oscillator, the method comprising the steps of: switching of fluid between primary and secondary feedback loop units for achieving a biaxial sweeping jet pattern along the target surface; allowing a fraction of the mass fluid flow rate to enter the secondary feedback loop, wherein the primary feedback loop unit produces a horizontal sweeping pattern, and the secondary feedback loop unit produces a vertical sweeping pattern, thereby providing the biaxial sweeping jet patterns via the primary and secondary feedback loop units operating at different frequencies.
9. The method of claim 8, wherein the primary feedback loop unit comprises atleast two feedback loops.
10. The method of claim 8, wherein the secondary feedback loop unit comprises atleast two feedback loops.
11. The method of claim 8, wherein the double-sided fluidic oscillator comprises two inlets, resulting in two incoming fluids from the two different inlets entering the common mixing chamber which negates the Coanda effect and thereby creates a steady fluid flow.
12. The fluidic oscillator of claim 1, wherein a fraction of mass flow rate of the fluid further enters into the secondary feedback loop unit which produces a vertical sweeping pattern providing a cooling area at the at least one outlet.
13. The fluidic oscillator of claim 1, wherein a side wall of the primary feedback loop unit meets a bottom wall of the primary feedback loop unit at a 90 degree angle.
14. The fluidic oscillator of claim 1, wherein a side wall of the secondary feedback loop unit meets a bottom wall of the secondary feedback loop unit at a 90 degree angle.
15. The fluidic oscillator of claim 1, wherein the common mixing chamber and the primary feedback loop unit are in a same plane and the common mixing chamber extends into the same plane towards an at least one channel of the primary feedback loop unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The manner in which the above-recited features of the present invention is understood in detail, a more particular description of the invention, briefly summarized above, may be had by reference to embodiments, some of which are illustrated in the appended drawings. It is to be noted, however, that the appended drawings illustrate only typical embodiments of this invention and are therefore not to be considered limiting of its scope, for the invention may admit to other equally effective embodiments.
[0020]
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[0027]
[0028] The foregoing and other objects, features and advantages of the present invention, as well as the invention itself, will be more fully understood from the following description of preferred embodiments, when read together with the accompanying drawings.
ELEMENT LIST
[0029] 1Common inlet [0030] 2Double outlet [0031] 3Common mixing chamber [0032] 4Primary right feedback loop [0033] 5Primary left feedback loop [0034] 6Secondary top feedback loop [0035] 7Secondary bottom feedback loop
DETAILED DESCRIPTION
[0036] The present invention relates to the field of fluidic oscillators, and more particularly to designing a double-sided fluidic oscillator jet.
[0037] The principles of the present invention and their advantages are best understood by referring to
[0038] The present invention deals with a modified angled fluidic oscillator producing a double-oscillating jet. A primary feature of the double sided perpendicular fluidic oscillator is to provide biaxial sweeping jet patternsa horizontally sweeping jet along the target curved surface via a primary oscillating jet, and a vertically sweeping along the target surface axis, via a secondary oscillating jet. In accordance with an embodiment of the present invention, the proposed fluidic oscillator comprises four feedback loops, two outlets, a common mixing chamber, and an inlet.
[0039] The present invention focuses on jet flow cooling, and particularly towards the sweeping jet technique using a modified angled fluidic oscillator (double fluidic oscillator jet). The proposed double fluidic oscillator jet provides simultaneously, two perpendicular sweeping jets vertically (up-down motion) and horizontally oscillating (left-right motion) at different frequencies. The invention involves the addition of secondary feedback loops along with primary feedback loops. The working principle involves that a fraction of the mass fluid flow rate enters into the secondary feedback loops which leads to producing a vertical sweeping pattern providing more cooling area at exits with a common mixing chamber. The primary feature of the proposed double oscillating jetis to provide biaxial sweeping jet patterns including a horizontally sweeping jet along the target curved surface (primary oscillating jet), and a secondary oscillating jet vertically sweeping along the target surface axis. The primary jet sweeping horizontally, meanwhile, the secondary jet sweeping vertically.
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[0042] Accordingly, to overcome the drawbacks faced by fluidic oscillators in the past, the present invention proposes the addition of atleast one primary feedback loop and atleast one secondary feedback loop for the fluidic oscillator.
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[0047] In accordance with an embodiment of the present invention, the operating frequencies on the primary jet (high frequency oscillation) and secondary jet (low frequency oscillation), are determined based on the mass fluid flow fraction in each jet. For the same mass flow rate, the single jet oscillates in one direction covering smaller region and a less turbulent flow field compared to the double oscillating jets. In contrast, the proposed double-sided oscillating jet is capable of achieving biaxial sweeping jet outlet via the addition of two feedback loop units and one outlet (normal to the existing feedback loops and outlet). These additional feedback loops with an extra outlet support the movement of the sweeping jet biaxially, thereby covering a broader surface area, creating a more efficient mixing area. The proposed double-fluidic oscillator jet provides two perpendicular sweeping jets vertically (oscillating up-down) and horizontally oscillating (left-right) simultaneouslyat different frequencies. The oscillating frequencies depend on the geometry and flow rates. The resulting output jet is a more turbulent outlet due to the resulting sweeping pattern and based on the mass flow fraction of each jet, the primary and the secondary oscillating jet frequencies are determined.
[0048] The biaxially sweeping jet coverage covers a wider area of jet impingements compared to the steady and conventional oscillating jet and as a result provides more enhanced heat transfer, mass transfer and mixing performance.
[0049] A computational fluid dynamic analysis is performed to support the feature of the double sweeping pattern, wherein both the primary and secondary oscillations were clearly observed which provided a higher cooling area coverage with vertical (top-bottom) and horizontal (left-right) sweeping range of oscillations covering a wider area of jet impingement comparing to single oscillating and steady jets. A number of computational fluid dynamics (CFD) simulations are performed to test the operation of the proposed double side fluid oscillator.
[0050] Efficiency of the proposed double-oscillating jet may be enhanced, by introducing a separate inlet which directly feeds into the feedback loops of the secondary jet. The proposed oscillator jet may be used in industrial applications such as in enhancing heat transfer and mass transfer, as well as for the electronic cooling of mass transfer industries.
[0051] It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the inventions. Thus, it is intended that the present invention covers the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents. The disclosures and the description herein are intended to be illustrative and are not in any sense limiting the invention, defined in scope by the following claims. Many changes, modifications, variations and other uses and applications of the subject invention will become apparent to those skilled in the art after considering this specification and the accompanying drawings, which disclose the preferred embodiments thereof. All such changes, modifications, variations and other uses and applications, which do not depart from the spirit and scope of the invention, are deemed to be covered by the invention, which is to be limited only by the claims which follow.