This disclosure relates to flow conditioning devices having integrated flow conditioning elements.
“Flow conditioning” refers to the use of specialized hardware within a duct to alter one or more flow properties of a fluid flowing within the duct. This fluid may be a liquid or gas, and the duct may be any type of closed-channel conduit, such as a pipe, duct, manifold, tube or the like. The flow properties affected by the aforementioned flow conditioning hardware may include flow velocity (i.e., flow speed and direction), laminar vs. turbulent flow, vorticity, swirl, etc.
While it is known to use certain hardware such as hole array plates, straightening vanes and turning vanes in the fluid flow path within ducts, the customary approach is to manufacture ducts and flow conditioning hardware as separate components, and to install the flow conditioning hardware in the ducts only as and where needed. This is because of the complex geometry of the hole arrays or vanes, making it difficult or impossible to manufacture the duct and the flow conditioning hardware together, such as by injection molding or extrusion. Instead, the customary approach for utilizing such flow conditioning hardware is to manufacture the hole arrays or vanes as part of a separate plate or very short tube section which carries the holes or vanes, and then to install such plates or short tube sections where needed in the flow path.
However, the potential exists for misalignments and leaks between the ducts and the plates or tube sections that carry the flow conditioning hardware. Also, there is cost in terms of parts and labor associated with assembling these components together (along with gaskets, fasteners, etc.), as well as costs (including downtime) associated with repairs when the components are misaligned and leaking.
According to one embodiment, a flow conditioning device includes a body portion having first and second ends and an interior surface defining a channel extending from the first end to the second end, and one or more flow conditioning elements disposed within the channel, wherein each of the one or more flow conditioning elements is integrally formed with the interior surface of the body portion. The body portion and the one or more flow conditioning elements may be formed of the same material, and may be formed by an additive manufacturing process. For example, material may be added in thin layers, layer by layer, to create the unique shape of the body portion having the unique flow conditioning element(s) and/or channel(s). The flow conditioning device may further include a sensor embedded at a position within the body portion and/or within at least one of the one or more flow conditioning elements, wherein the sensor is placed at the position during the additive manufacturing process.
The channel may have a non-straight centerline and may be configured for confined passage of a fluid therethrough. Each of the one or more flow conditioning elements may be a respective flow straightening tube, a flow straightening vane, a hole array plate, a turning vane, a swirling vane or a helical ridge formed along a respective longitudinal segment of the interior surface. The channel may have a bend therein and each of the one or more flow conditioning elements may be disposed proximate the bend in the form of a respective turning vane.
The body portion may have a generally tubular shape, and the generally tubular shape may be substantially non-straight. The flow conditioning device may be configured as one of an air delivery system, an HVAC duct, a brake cooling duct, a coolant hose, a mass airflow sensor, an exhaust duct, a muffler, and an oil line.
The channel may define a main inlet at the first end and a main outlet at the second end, with the interior surface further defining an auxiliary channel within the body portion. The auxiliary channel may have an auxiliary inlet at one end thereof separate from the main inlet and a mixing port at another end thereof, wherein the mixing port may be disposed in fluid communication with the channel at a location flow-wise between the main inlet and the main outlet.
According to another embodiment, a flow conditioning device includes: a body portion having first and second ends and an interior surface defining a channel extending from the first end to the second end; and one or more flow conditioning elements disposed within the channel and being integrally formed with the interior surface, wherein each of the one or more flow conditioning elements is a respective flow straightening tube, a flow straightening vane, a hole array plate, a turning vane, a swirling vane or a helical ridge formed along a respective longitudinal segment of the interior surface. In this embodiment, the body portion and the one or more flow conditioning elements are formed by an additive manufacturing process.
The body portion and the one or more flow conditioning elements may be formed of the same material. The channel may have a bend therein and each of the one or more flow conditioning elements may be disposed proximate the bend in the form of a respective turning vane. The body portion may have a generally non-straight tubular shape, wherein the channel may have a non-straight centerline. The channel may define a main inlet at the first end and a main outlet at the second end, with the interior surface further defining an auxiliary channel within the body portion; in this configuration, the auxiliary channel may have an auxiliary inlet at one end thereof separate from the main inlet and a mixing port at another end thereof, wherein the mixing port is disposed in fluid communication with the channel at a location flow-wise between the main inlet and the main outlet.
According to yet another embodiment, a flow conditioning apparatus for confined passage of a fluid therethrough includes: (i) a body portion having first and second ends and an interior surface defining a channel extending from the first end to the second end; (ii) one or more flow conditioning elements disposed within the channel and being integrally formed with the interior surface, wherein each of the one or more flow conditioning elements is a respective flow straightening tube, a flow straightening vane, a hole array plate, a turning vane, a swirling vane or a helical ridge formed along a respective longitudinal segment of the interior surface; and (iii) wherein the body portion and the one or more flow conditioning elements are formed of the same material by an additive manufacturing process.
In this embodiment, the channel may have a bend therein and each of the one or more flow conditioning elements may be disposed proximate the bend in the form of a respective turning vane. The channel may define a main inlet at the first end and a main outlet at the second end, with the interior surface further defining an auxiliary channel within the body portion. The auxiliary channel may have an auxiliary inlet at one end thereof separate from the main inlet and a mixing port at another end thereof, wherein the mixing port is disposed in fluid communication with the channel at a location flow-wise between the main inlet and the main outlet.
The above features and advantages, and other features and advantages, of the present teachings are readily apparent from the following detailed description of some of the best modes and other embodiments for carrying out the present teachings, as defined in the appended claims, when taken in connection with the accompanying drawings.
Referring now to the drawings, wherein like numerals indicate like parts in the several views, various configurations of a flow conditioning device or apparatus 20, including one or more integrated flow conditioning elements (FCE) 50, are shown and described herein. Note that certain reference numerals in the drawings have subscripts, such as integrated FCEs 50FST, 50TV, 50HR and the like. Subscripts are used in the drawings and in the present description to refer to individual elements or types of elements, while the use of reference numerals without subscripts may refer to the collective group of all such elements and/or to a singular but generic one of such elements. Thus, reference numeral 50FST (with the subscript) refers to a specific integrated FCE or a specific type of integrated FCE, while reference numeral 50 (without the subscript) may refer to all the FCEs, the group of FCEs, or a singular but generic FCE (i.e., any FCE).
The flow conditioning device 20 as disclosed herein provides the advantage of having the duct or body portion 22 and the FCEs 50 integrated as a single unit, such as by additive manufacturing (e.g., 3D printing). This integration avoids the abovementioned issues (and costs) associated with potential misalignments, leaks, assembly and repairs.
The flow conditioning device 20 may further include a sensor 70 embedded at a position 72 within the body portion 22 (e.g., somewhere between the first and second ends 23, 24), and/or embedded within at least one of the one or more FCEs 50. The sensor 70 has a housing portion 74 that is embedded within the body portion 22 and/or within one or more FCEs 50, and a sensing portion 76 which extends into the channel 30 so that it may sense the flow of fluid 19 therein. A wire 78 may extend from the housing portion 74 for carrying a data signal indicative of the sensed condition of the fluid 19, or the sensor 70 may be wireless. A hole (not shown) may be drilled or cut through the body portion 22 so that the sensor 70 may be operatively inserted therein, or the sensor 70 may be placed at the position 72 (e.g., a predetermined position) during the additive manufacturing process.
The configuration of a flow conditioning device 20 illustrated in
The channel 30 running through the body portion 22 may be straight and have a straight centerline 32 as shown in
As illustrated in
In each of the configurations shown (see, for example,
As illustrated in
According to another embodiment, a flow conditioning device 20 includes: a body portion 22 having first and second ends 23, 24 and an interior surface 28 defining a channel 30 extending from the first end 23 to the second end 24; and one or more FCEs 50 disposed within the channel 30 and being integrally formed with the interior surface 28, wherein each of the one or more FCEs 50 is a respective flow straightening tube 50FST, a flow straightening vane 50FSV, a hole array plate 50P, a turning vane 50TV, a swirling vane 50SV or a helical ridge 50HR formed along a respective longitudinal segment 29 of the interior surface 28. In this embodiment, the body portion 22 and the one or more FCEs 50 are formed by an additive manufacturing process, and may be formed of the same material.
In this other embodiment, the channel 30 may have a bend 34 therein and each of the one or more FCEs 50 may be disposed proximate the bend 34 in the form of a respective turning vane 50TV. The body portion 22 may have a generally non-straight tubular shape 26, and the channel 30 may have a non-straight centerline 32. The channel 30 may define a main inlet 36 at the first end 23 and a main outlet 38 at the second end 24, with the interior surface 26 further defining an auxiliary channel 40 within the body portion 22. In this configuration, the auxiliary channel 40 may have an auxiliary inlet 42 at one end 44 thereof separate from the main inlet 36 and a mixing port 46 at another end 48 thereof, wherein the mixing port 46 is disposed in fluid communication with the channel 30 at a location 39 flow-wise between the main inlet 36 and the main outlet 38.
According to yet another embodiment, a flow conditioning apparatus 20 for confined passage of a fluid 19 therethrough includes: (i) a body portion 22 having first and second ends 23, 24 and an interior surface 28 defining a channel 30 extending from the first end 23 to the second end 24; (ii) one or more FCEs 50 disposed within the channel 30 and being integrally formed with the interior surface 28, wherein each of the one or more FCEs 50 is a respective flow straightening tube 50FST, a flow straightening vane 50FSV, a hole array plate 50P, a turning vane 50TV, a swirling vane 50SV or a helical ridge 50HR formed along a respective longitudinal segment 29 of the interior surface 28; and (iii) wherein the body portion 22 and the one or more FCEs 50 are formed of the same material by an additive manufacturing process.
In this further embodiment, the channel 30 may have a bend 34 therein and each of the one or more FCEs 50 may be disposed proximate the bend 34 in the form of a respective turning vane 50TV. The channel 30 may define a main inlet 36 at the first end 23 and a main outlet 38 at the second end 24, with the interior surface 28 further defining an auxiliary channel 40 within the body portion 22. The auxiliary channel 40 may have an auxiliary inlet 42 at one end 44 thereof separate from the main inlet 36 and a mixing port 46 at another end 48 thereof, wherein the mixing port 46 is disposed in fluid communication with the channel 30 at a location 39 flow-wise between the main inlet 36 and the main outlet 38.
The above description is intended to be illustrative, and not restrictive. While the dimensions and types of materials described herein are intended to be illustrative, they are by no means limiting and are exemplary embodiments. In the following claims, use of the terms “first”, “second”, “top”, “bottom”, etc. are used merely as labels, and are not intended to impose numerical or positional requirements on their objects. As used herein, an element or step recited in the singular and preceded by the word “a” or “an” should be understood as not excluding plural of such elements or steps, unless such exclusion is explicitly stated. Additionally, the phrase “at least one of A and B” and the phrase “A and/or B” should each be understood to mean “only A, only B, or both A and B”. Moreover, unless explicitly stated to the contrary, embodiments “comprising” or “having” an element or a plurality of elements having a particular property may include additional such elements not having that property. And when broadly descriptive adverbs such as “substantially” and “generally” are used herein to modify an adjective, these adverbs mean “for the most part”, “to a significant extent” and/or “to a large degree”, and do not necessarily mean “perfectly”, “completely”, “strictly” or “entirely”. Additionally, the word “proximate” may be used herein to describe the location of an object or portion thereof with respect to another object or portion thereof, and/or to describe the positional relationship of two objects or their respective portions thereof with respect to each other, and may mean “near”, “adjacent”, “close to”, “close by”, “at” or the like.
This written description uses examples, including the best mode, to enable those skilled in the art to make and use devices, systems and compositions of matter, and to perform methods, according to this disclosure. It is the following claims, including equivalents, which define the scope of the present disclosure.