The subject matter disclosed herein relates to aircraft environmental control. More specifically, the subject disclosure relates to an inlet shroud of a ram air fan for an aircraft environmental control system.
Many types of aircraft use ram air flow for various purposes, such as in cooling systems for the aircraft. For example, the ram air flow may be utilized to remove heat from various aircraft lubrication and electrical systems and/or used to condition aircraft cabin air. When the aircraft is in flight, movement of the aircraft creates a sufficient source of ram air flow which can be used for the purposes described above. When the aircraft is on the ground or is operating at low speeds, a ram air fan is typically utilized to increase air flow to the cooling systems. Such a ram air fan is driven by an electric motor which, in turn, must be cooled by air flowing across it. Cooling flow is drawn at a heat exchanger inlet and across the electric motor to a ram air fan inlet. The flow of cooling air, and thus the performance of the electric motor and ram air fan, is typically limited by a pressure drop from the heat exchanger inlet to the ram air fan inlet. A balance must be achieved between this pressure drop, which can impact heat exchanger performance, and providing sufficient cooling flow to the electric motor and other components of a ram air fan assembly.
According to one aspect of the invention, a ram air fan inlet shroud for a ram air fan assembly is provided. The ram air fan inlet shroud includes a shroud portion extending outwardly from a conical portion. The conical portion provides a transition between a central portion and an inner ram air fan hub interface portion. The conical portion includes a plurality of inner cooling slots having a slot arc length and spaced apart by a slot spacing angle. A ratio of the slot spacing angle to the slot arc length is between about 1.24 and 1.4. The ram air fan inlet shroud also includes a recessed portion located between the inner ram air fan hub interface portion and an outer ram air fan hub interface portion. The recessed portion includes a plurality of outer cooling holes.
According to another aspect of the invention, a ram air fan assembly includes a ram air fan disposed at a fan inlet. The ram air fan includes a ram air fan hub coupled to a plurality of fan blades. A ram air fan motor is operably connected to the ram air fan. The ram air fan assembly also includes a ram air fan inlet shroud disposed proximate to the ram air fan hub. The ram air fan inlet shroud includes a shroud portion extending outwardly from a conical portion. The conical portion provides a transition between a central portion and an inner ram air fan hub interface portion. The conical portion includes a plurality of inner cooling slots having a slot arc length and spaced apart by a slot spacing angle. A ratio of the slot spacing angle to the slot arc length is between about 1.24 and 1.4. The ram air fan inlet shroud also includes a recessed portion located between the inner ram air fan hub interface portion and an outer ram air fan hub interface portion. The recessed portion includes a plurality of outer cooling holes.
According to a further aspect of the invention, a method of installing a ram air fan inlet shroud in a ram air fan assembly is provided. The ram air fan inlet shroud is arranged proximate to a ram air fan hub coupled to a plurality of fan blades. The fan blades are configured to extend at least partially across a ram air fan inlet of the ram air fan assembly. A tie rod is positioned through the ram air fan inlet shroud and the ram air fan hub along a ram air fan centerline within an interior portion of a ram air fan shaft. A plurality of flow paths for a cooling flow in the ram air fan assembly is established including through a plurality of inner cooling slots and outer cooling holes in the ram air fan inlet shroud. The ram air fan inlet shroud also includes a shroud portion extending outwardly from a conical portion. The conical portion provides a transition between a central portion and an inner ram air fan hub interface portion. The conical portion includes the plurality of inner cooling slots having a slot arc length and spaced apart by a slot spacing angle. A ratio of the slot spacing angle to the slot arc length is between about 1.24 and 1.4. The ram air fan inlet shroud further includes a recessed portion located between the inner ram air fan hub interface portion and an outer ram air fan hub interface portion. The recessed portion includes the plurality of outer cooling holes.
The detailed description explains embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
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The RAF 12 includes fan blades 40 that are coupled to a RAF hub 38, where the RAF hub 38 is operably connected to a RAF motor 20 via a RAF shaft 22. The RAF motor 20, located in a motor housing 56, is an electric motor having a rotor 24 rotably located at the RAF shaft 22, and a stator 26 having a plurality of stator windings 28 disposed radially outboard of the rotor 24. The RAF motor 20 also includes one or more journal bearings 30 disposed at the RAF shaft 22. The RAF 12 and RAF motor 20 are typically utilized to urge additional air flow 16 through the RAF inlet 14 when natural airflow 16 into the RAF inlet 14 is not sufficient to meet airflow requirements.
To prevent overheating of the RAF motor 20, particularly the stator windings 28, the journal bearings 30, and one or more thrust bearings 34, a cooling flow 32 is drawn through the motor housing 56 across the RAF motor 20. The cooling flow 32 is drawn through an inlet header 36. The cooling flow 32 proceeds through a plurality of flow paths 50 that include flow across the journal bearings 30, stator windings 28, stator 26, and rotor 24 to remove thermal energy therefrom. The flow paths 50 allow the cooling flow 32 to pass through a plurality of cooling openings 42 in a RAF hub 38 and egress from the RAF motor 20 toward the RAF inlet 14.
The cooling flow 32 is also routed by flow paths 50 in proximity to the thrust bearings 34. Additionally, the cooling flow 32 in the flow paths 50 enters an interior portion 46 of the RAF shaft 22 that includes a tie rod 48 positioned along a ram air fan centerline (CLA). The cooling flow 32 in the flow paths 50 also passes through a plurality of inner cooling slots 60 and outer cooling holes 62 of a RAF inlet shroud 44 toward the RAF inlet 14. The RAF inlet shroud 44 is disposed proximate to the RAF hub 38. In an embodiment, the inner cooling slots 60 are configured to receive of portion of the cooling air 32 that passes through the interior portion 46 of the RAF shaft 22, while the outer cooling holes 62 are configured to receive a portion of the cooling flow 32 that cools the thrust bearings 34.
The cooling flow 32 enters the RAF inlet 14 between the RAF inlet shroud 44 and the fan blades 40 that are coupled to the RAF hub 38 to mix with the airflow 16. The cooling flow 32 is driven generally via a pressure differential between the inlet header 36 and the RAF inlet 14 and the configuration of the flow paths 50.
The RAF inlet shroud 44 of
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While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.