The present disclosure relates to apparatus and systems for noise abatement for air blowers and to methods of making and using the same.
Blowers (air blowers) are used for cooling and ventilation, and operate by drawing in environmental air, cleaning the air of contaminants, and then providing the cleaned air to equipment (e.g., electric motors) or to a local environment, depending on the particular application. Blowers include moving parts, such as impeller blades. The movement of such parts, which sometimes move relative to static portions of the blowers, such as a housing, results in the formation of noise. Sounds emitted by equipment, such as blowers, contributes to noise pollution. It would be desirable to abate the noise of blowers.
Some embodiments of the present disclosure include an air blower. The air blower includes an intake housing having an inlet. The inlet is positioned to receive air into the air blower. An impeller is positioned to draw the air through the intake housing and into the impeller. An outlet is positioned to receive air from the impeller and expel the air from the air blower. A flow modulator tube assembly is positioned to receive the air from the intake housing and to direct the air to the impeller. The flow modulator tube assembly includes a plurality of vanes positioned within a shell. The vanes extend axially along a length of the shell and define a plurality of modulated air flow paths through the flow modulator tube assembly. A sound damper is positioned within the intake housing. The flow modulator tube assembly is positioned to direct at least some sound traveling therethrough to the sound damper, and wherein the sound damper absorbs at least some of the sound directed thereto. The flow modulator tube assembly and the sound damper attenuate sound emanating from the air blower during operation of the air blower.
Some embodiments of the present disclosure include a method of attenuating sound emanating from an air blower. The method includes directing at least some sound within the air blower through a flow modulator tube assembly that is positioned within an intake housing of the air blower. The flow modulator tube assembly includes a plurality of vanes positioned within a shell. The vanes extend axially along a length of the shell and define a plurality of modulated flow paths through the flow modulator tube assembly. The method includes directing at least some of the sound from the flow modulator tube assembly to a sound damper that is positioned within the intake housing of the air blower. The sound damper absorbs at least some of the sound.
Some embodiments of the present disclosure include a system including an air blower. The air blower includes an intake housing having an inlet positioned to receive air into the air blower, an impeller positioned to draw the air through the intake housing and into the impeller, and an outlet positioned to receive air from the impeller and expel the air from the air blower. A flow modulator tube assembly is positioned to receive the air from the intake housing and direct the air to the impeller. The flow modulator tube assembly includes a plurality of vanes positioned within a shell that extend axially along a length of the shell and define a plurality of modulated air flow paths through the flow modulator tube assembly. A sound damper is positioned within the intake housing. The flow modulator tube assembly is positioned to direct at least some sound traveling therethrough to the sound damper, and the sound damper absorbs at least some of the sound directed thereto. The flow modulator tube assembly and the sound damper attenuate sound emanating from the air blower during operation of the air blower. The outlet of the air blower is fluidly coupled with equipment for cooling the equipment or is fluidly coupled with a local environment for providing ventilation to the local environment.
So that the manner in which the features and advantages of the systems, apparatus, and methods may be understood in more detail, a more particular description may be had by reference to the embodiments which are illustrated in the appended drawings that form a part of this specification. It is to be noted, however, that the drawings illustrate only various exemplary embodiments and are therefore not to be considered limiting of the disclosed concepts as it may include other effective embodiments as well.
Systems, apparatus, and methods according to present disclosure will now be described more fully with reference to the accompanying drawings, which illustrate various exemplary embodiments. Concepts according to the present disclosure may, however, be embodied in many different forms and should not be construed as being limited by the illustrated embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough as well as complete and will fully convey the scope of the various concepts to those skilled in the art and the best and preferred modes of practice.
Certain aspects of the present disclosure include apparatus, systems, and methods for noise abatement in equipment, such as air blowers. As used herein, “noise abatement” refers to the elimination or reduction of noise. For example, a piece of equipment may emit noise at a first intensity (decibels) during operation of the piece of equipment without the noise abatement features disclosed herein incorporated into the piece of equipment. After incorporation of the noise abatement features disclosed herein into the piece of equipment, the piece of equipment may emit noise at a second intensity (decibels) during operation of the piece of equipment, wherein the second intensity is less than the first intensity. In some embodiments, the apparatus, systems, and/or methods for noise abatement disclosed herein function to dampen the noise produced by the equipment. During propagation of sound, sound waves can be reflected, refracted, and/or attenuated by the noise abatement features disclosed herein. The apparatus, systems, and/or methods for noise abatement disclosed herein may be incorporated into equipment including, but not limited to air blowers.
Some embodiments of the present disclosure include apparatus, systems, and methods for the abatement of noise produced by air blowers, also referred to as extracting blowers. The noise abatement apparatus, systems, and methods disclosed herein may be used in air blowers that supply air to equipment or local environments. As used herein, a “local environment” is a discrete, at least partially enclosed space. For example, the local environment may be a residence, a building, a mobile enclosure or other facility or interior space thereof. Air blowers can be used for cooling and ventilation, in sand blasting booths, and other applications. Air blowers operate to intake atmospheric air, which may include liquid and solid particles, and to separate the liquid and solid particles from the atmospheric air to generate clean air. Air blowers can be used in a variety of industries to provide cooling air to personnel, structures and equipment. In some embodiments, the air supplied is cooling air (i.e., the air is supplied to cool, for example, a piece of equipment or an environment). For example, and without limitation, in some embodiments the noise abatement apparatus, systems, and methods disclosed herein are used in air blowers that supply cooling air to electric motors for cooling the motors. However, the noise abatement apparatus, systems, and methods disclosed herein are not limited to use with air blowers that supply cooling air to electric motors, and may be used in other air blower applications as well. In some embodiments, the noise abatement apparatus, systems, and methods disclosed herein are used in an extracting blower in accordance with U.S. Pat. No. 6,648,935. For example, an extracting blower in accordance with U.S. Pat. No. 6,648,935 may be retrofitted and/or modified to include the noise abatement apparatus and/or systems disclosed herein, or an extracting blower otherwise in accordance with U.S. Pat. No. 6,648,935 may include the noise abatement apparatus and/or systems disclosed herein.
With reference to
The movement of the blades of the impeller 102 within impeller housing 110, and the movement of inlet air through air intake housing 104 and impeller housing 110 produces noise. Blower 100 includes multiple noise abatement components that reduce the noise emanating from blower 100, relative to the noise that would emanate from the blower if the blower did not include the noise abatement components. The noise abatement components of blower 100 include: (1) a non-linear (e.g., circuitous or serpentine) air inlet flow path (not shown) of intake air into inlet 108 and from inlet 108 to impeller 102; (2) flow modulator tube assembly 114; and (3) sound damper 116. The structure and operation of each of these noise abatement components will be described in more detail below with reference to
With reference to
With reference to
Impeller blades 130 include one or more features that improve efficiency of blower 100 and reduce noise produced by blower 100. For example, impeller blades 130 include backward-inclined blades, as shown in
With references to both
The noise abatement components of blower 100 significantly reduce the amount of unwanted sound emanating from the blower 100. The operation of blowers, as well as the equipment that the blowers are providing air to, produces both airborne and structure-borne sounds. That is, the flow of air into the blower produces sounds, and the movement and vibration of portions of the blower, such as the impeller, also produces sounds. The noise abatement components of blower 100 effectively reduce the amount of noise that would otherwise emanate from the blower, while still providing sufficient air to equipment or environments.
The propagation of sound in and through air blower 100 will now be discussed with reference to
Additionally, the directionality of the modulated flow paths 128 of the flow modulator tube assembly 114 direct the sound that propagates therethrough along a path to impact with sound damper 116. In
Additionally, the non-linear flow path discussed with reference to
The sound abatement components disclosed herein, separate or combined, provide effective noise abatement for blower 100, while also providing ample air, such as for cooling of electric motors to maintain the motor at acceptable operating temperatures.
As shown in
Some exemplary embodiments will now be described.
Embodiment 1. An air blower, the air blower comprising: an intake housing comprising an inlet, the inlet positioned to receive air into the air blower; a impeller, the impeller positioned to draw the air through the inlet and into the impeller; an outlet, the outlet positioned to receive air from the impeller and expel the air from the air blower; a flow modulator tube assembly positioned to receive the air from the intake housing and direct the air to the impeller, wherein the flow modulator tube assembly comprises a plurality of vanes positioned within a shell, the vanes extending axially along a length of the shell, wherein the vanes define a plurality of modulated air flow paths through the flow modulator tube assembly; and a sound damper positioned within the intake housing, wherein the flow modulator tube assembly is positioned to direct at least some sound traveling therethrough to the sound damper, and wherein the sound damper absorbs at least some of the sound directed thereto; wherein the flow modulator tube assembly and the sound damper attenuate sound emanating from the air blower during operation of the air blower.
Embodiment 2. The air blower of embodiment 1, wherein the intake housing and the flow modulator tube assembly are arranged relative to one another to define a non-linear flow path of the air from the intake housing into the flow modulator tube assembly.
Embodiment 3. The air blower of embodiment 1 or 2, wherein sound exiting the flow modulator tube assembly into the intake housing is directed away from the inlet.
Embodiment 4. The air blower of any of embodiments 1 to 3, wherein the inlet is at a 90-degree angle relative to the entrance of the flow modulator tube assembly.
Embodiment 5. The air blower of any of embodiments 1 to 4, further comprising one or more baffles positioned within the intake housing to deflect air, deflect sound, or combinations thereof.
Embodiment 6. The air blower of any of embodiments 1 to 5, wherein the vanes straighten the flow of the air and the propagation of sound through the flow modulator tube assembly.
Embodiment 7. The air blower of any of embodiments 1 to 6, wherein the vanes divide the air and sound into multiple, separate paths.
Embodiment 8. The air blower of any of embodiments 1 to 7, wherein the sound damper comprises foam, metal, or combinations thereof.
Embodiment 9. The air blower of any of embodiments 1 to 8, wherein the sound damper comprises stainless steel wool.
Embodiment 10. The air blower of any of embodiments 1 to 9, wherein at least some of sound is reflected from the sound damper within the intake housing.
Embodiment 11. A method of attenuating sound emanating from an air blower, the method comprising: directing at least some sound within the air blower through a flow modulator tube assembly that is positioned within an intake housing of the air blower, wherein the flow modulator tube assembly comprises a plurality of vanes positioned within a shell, the vanes extending axially along a length of the shell, and wherein the vanes define a plurality of modulated flow paths through the flow modulator tube assembly; and directing at least some of the sound from the flow modulator tube assembly to a sound damper that is positioned within the intake housing of the air blower, wherein the sound damper absorbs at least some of the sound.
Embodiment 12. The method of embodiment 11, wherein an intake housing of the air blower and the flow modulator tube assembly are arranged to define a non-linear flow path of air from the inlet to the entrance of the flow modulator tube assembly.
Embodiment 13. The method of embodiment 11 or 12, wherein sound exiting the flow modulator tube assembly is directed away from the inlet.
Embodiment 14. The method of any of embodiments 11 to 13, further comprising positioning one or more baffles within the air intake housing to deflect air, sound, or combinations thereof.
Embodiment 15. A system for providing cooling or ventilation, the system comprising: an air blower, the air blower comprising an intake housing comprising an inlet, the inlet positioned to receive air into the air blower; a impeller, the impeller positioned to draw the air through the inlet and into the impeller; an outlet, the outlet positioned to receive air from the impeller and expel the air from the air blower; a flow modulator tube assembly positioned to receive the air from the intake housing and direct the air to the impeller, wherein the flow modulator tube assembly comprises a plurality of vanes positioned within a shell, the vanes extending axially along a length of the shell, wherein the vanes define a plurality of modulated air flow paths through the flow modulator tube assembly; and a sound damper positioned within the intake housing, wherein the flow modulator tube assembly is positioned to direct at least some sound traveling therethrough to the sound damper, and wherein the sound damper absorbs at least some of the sound directed thereto; wherein the flow modulator tube assembly and the sound damper attenuate sound emanating from the air blower during operation of the air blower; wherein the outlet of the air blower is fluidly coupled with equipment or a local environment to provide air into the equipment or a local environment.
Embodiment 16. The system of embodiment 15, wherein the intake housing and the flow modulator tube assembly are arranged relative to one another to define a non-linear flow path of the air from the inlet into the flow modulator tube assembly.
Embodiment 17. The system of embodiment 15 or 16, wherein sound exiting the flow modulator tube assembly into the intake housing is directed away from the inlet.
Embodiment 18. The system of any of embodiments 15 to 17, wherein the inlet is at a 90-degree angle relative to the entrance of the flow modulator tube assembly.
Embodiment 19. The system of any of embodiments 15 to 18, further comprising one or more baffles positioned within the intake housing to deflect air, deflect sound, or combinations thereof.
Embodiment 20. The system of any of embodiments 15 to 19, wherein the vanes straighten the flow of the air and the propagation of sound through the flow modulator tube assembly.
Embodiment 21. The system of any of embodiments 15 to 20, wherein the vanes divide the air and sound into multiple, separate paths.
Embodiment 22. The system of any of embodiments 15 to 21, wherein the sound damper comprises foam, metal, or combinations thereof.
Embodiment 23. The system of any of embodiments 15 to 22, wherein the sound damper comprises stainless steel wool.
Embodiment 24. The system of any of embodiments 15 to 23, wherein at least some of the sound is reflected from the sound damper within the intake housing.
Embodiment 25. A method of attenuating sound emanating from an air blower and equipment or a local environment, the method comprising: directing at least some sound through a flow modulator tube assembly that is positioned within an intake housing of the air blower, wherein the flow modulator tube assembly comprises a plurality of vanes positioned within a shell, the vanes extending axially along a length of the shell, and wherein the vanes define a plurality of modulated flow paths through the flow modulator tube assembly; and directing at least some of the sound from the flow modulator tube assembly to a sound damper that is positioned within the intake housing of the air blower, wherein the sound damper absorbs at least some of the sound, wherein the sound is sound generated by the air blower, sound generated by the equipment, or sound emanating from the local environment.
Embodiment 26. The method of embodiment 25, wherein the intake housing of the air blower and the flow modulator tube assembly are arranged to define a non-linear flow path of air from the inlet to the entrance of the flow modulator tube assembly.
Embodiment 27. The method of embodiment 25 or 26, wherein sound exiting the flow modulator tube assembly is directed away from the inlet.
Embodiment 28. The method of any of embodiments 25 to 27, further comprising positioning one or more baffles within the air intake housing to deflect air, sound, or combinations thereof.
Although the present embodiments and advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the disclosure. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the disclosure, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present disclosure. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.
The present application claims the benefit of U.S. Provisional Patent Application No. 62/941,119, entitled “NOISE ABATEMENT FOR AIR BLOWERS”, filed on Nov. 27, 2019, the entirety of which is incorporated herein by reference.
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Number | Date | Country | |
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Number | Date | Country | |
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62941119 | Nov 2019 | US |