The present invention relates to an environmental control system. In particular, the invention relates to a diffuser of a ram air fan assembly for an environmental control system for an aircraft.
An environmental control system (ECS) aboard an aircraft provides conditioned air to an aircraft cabin. Conditioned air is air at a temperature, pressure, and humidity desirable for aircraft passenger comfort and safety. At or near ground level, the ambient air temperature and/or humidity is often sufficiently high that the air must be cooled as part of the conditioning process before delivered to the aircraft cabin. At flight altitude, ambient air is often far cooler than desired, but at such a low pressure that it must be compressed to an acceptable pressure as part of the conditioning process. Compressing ambient air at flight altitude heats the resulting pressurized air sufficiently that it must be cooled, even if the ambient air temperature is very low. Thus, under most conditions, heat must be removed from air by the ECS before the air is delivered to the aircraft cabin. As heat is removed from the air, it is dissipated by the ECS into a separate stream of air that flows into the ECS, across heat exchangers in the ECS, and out of the aircraft, carrying the excess heat with it. Under conditions where the aircraft is moving fast enough, the pressure of air ramming into the aircraft is sufficient to move enough air through the ECS and over the heat exchangers to remove the excess heat.
While ram air works well under normal flight conditions, at lower flight speeds, or when the aircraft is on the ground, ram air pressure is too low to provide enough air flow across the heat exchangers for sufficient heat removal from the ECS. Under these conditions, a fan within the ECS is employed to provide the necessary airflow across the ECS heat exchangers. This fan is called a ram air fan.
As with any system aboard an aircraft, there is great value in an improved ram air fan that includes innovative components, such as a diffuser, designed to improve the operational efficiency of the ram air fan, reduce its weight, or reduce noise generated by the aircraft.
The present invention is a diffuser for a ram air fan assembly. The diffuser includes a perforated cone, an inlet ring seal, and an outlet ring seal. The perforated cone has a frustoconical shape symmetrical about an axis of the diffuser. The inlet ring seal is attached to, and axially disposed about, a first end of the perforated cone. The inlet ring seal includes a fan housing connection having a cylindrical shape. The outlet ring seal is attached to, and axially disposed about, a second end of the perforated cone. An average external diameter of the second end is greater than an average external diameter of the first end such that the perforated cone extends away from the inlet ring seal and radially outward from the axis of the diffuser.
The present invention is a diffuser for a ram air fan that helps direct a flow of air from a ram air fan rotor in such a way as to diffuse the fan air flow, enhance flow efficiency, and reduce ram air fan noise.
As illustrated in
In operation, ram air fan assembly 10 is installed into an environmental control system aboard an aircraft and connected to the fan inlet, the bypass inlet, and the fan outlet. When the aircraft does not move fast enough to generate sufficient ram air pressure to meet the cooling needs of the ECS, power is supplied to motor stator 26 by wires running from terminal box 46, through wire transfer tube 54, inner housing 20, and bearing housing 14. Energizing motor stator 26 causes rotor 24 to rotate about the axis of rotation for ram air fan assembly 10, rotating connected journal bearing shaft 34 and thrust shaft 28. Speed sensor 58 measures the rate of rotation of journal bearing shaft 34. Fan rotor 42 and inlet shroud 44 also rotate by way of their connection to thrust shaft 28. Journal bearings 40 and thrust bearings 32 provide low friction support for the rotating components. As fan rotor 42 rotates, it moves air from the fan inlet, through inlet housing 20, past fan struts 22 and into the space between fan housing 12 and outer housing 18, increasing the air pressure in outer housing 18. As the air moves through outer housing 18, the air flows past diffuser 50 and inner housing 20, where the air pressure is reduced due to the shape of diffuser 50 and the shape of inner housing 20. Once past inner housing 20, the air moves out of outer housing 18 at the fan outlet. Check valve 56 remains closed to prevent air moving out of outer housing 18 and into the bypass inlet. Components within bearing housing 14 and fan housing 12, especially thrust bearings 32, journal bearings 40, motor stator 26, and motor rotor 24; generate significant heat and must be cooled. Cooling air is provided by motor bearing cooling tube 52 which directs a flow of cooling air to inner housing 20. Inner housing 20 directs flow of cooling air to bearing housing 14, where it flows past components in bearing housing 14 and fan housing 12, cooling the components. Once the aircraft moves fast enough to generate sufficient ram air pressure to meet the cooling needs of the ECS, check valve 56 opens, and ram air is directed into plenum 48 from the bypass inlet. The ram air passes into outer housing 18 at plenum 48 and moves out of outer housing 18 at the fan outlet.
As noted above in reference to
As shown in
As shown in
In embodiments of the present invention, diffuser 50 directs air flow from fan rotor 42 through ram air fan assembly 10 and, by creating an increasing cross-sectional area into which the air flow from fan rotor 42 can diffuse, reduces air pressure and flow velocity of the air flow resulting in improved flow efficiency from the lower air pressure, and noise reduction from the lower flow velocity and greater length for damping acoustical vibrations. In one embodiment, perforated cone 100 extends away from inlet ring seal 102 and radially outward from the axis of diffuser 50 at an angle of about 5 degrees from the axis of diffuser 50. In another embodiment, perforated cone 100 extends away from inlet ring seal 102 and radially outward from the axis of diffuser 50 at an angle between 4.95 degrees and 5.11 degrees from the axis of diffuser 50.
In other embodiments, diffuser 50 is characterized by a length of perforated cone 100, a diameter of the first end of perforated cone 100, and a diameter of the second end of perforated cone 100. The length (L) of perforated cone 100 is a length of perforated cone 100 in a direction parallel to the axis of diffuser 50, as shown in
In yet other embodiments, diffuser 50 is characterized by a ratio of L to D2. In one embodiment of the present invention, the ratio of L to D2 is about 0.74. In another embodiment, the ratio of L to D2 is no less than 0.740 and no greater than 0.743. This feature ensures that, with D1 determined by a need to fit diffuser 50 to fan housing 12, diffuser 50 extends far enough along the path of air flow from fan housing 12 to control the diffusion of the air flow and provide a sufficient length over which perforated cone 100 and acoustic foam 62 can damp acoustical vibrations.
In any of the embodiments, diffuser 50 may be further characterized by a diameter of fan housing connection 106. The diameter of fan housing connection 106 (D3) is an internal diameter, as illustrated in
In any of the embodiments, diffuser 50 may be further characterized by a diameter of exterior surface 108, a diameter of o-ring channel 110, and a diameter of diffuser rim 112. As illustrated in
A diffuser for a ram air fan assembly that embodies the present invention has a frustoconical perforated cone symmetrical about an axis of the diffuser. The shape of the perforated cone is determined by a specific range of angles with respect to an axis of the diffuser, or a specific ratio of length to diameter of the perforated cone. The shape and size of the perforated cone is determined by a specific range of the length of the perforate cone and specific ranges for diameters at either end. The perforated cone directs a flow of air from a fan rotor within the ram air fan assembly to diffuse the flow and enhance flow efficiency. In addition, the perforations of the perforated cone, in conjunction with acoustic foam, provide for damping of acoustical vibrations.
Novel aspects of diffuser 50, including the angle of perforated cone 100, of the present invention described herein are achieved by substantial conformance to specified geometries. It is understood that edge breaks and curved radii not specifically described herein, but normally employed in the art, may be added to diffuser 50 to enhance manufacturability, ease assembly, or improve durability while retaining substantial conformance to specified geometries.
Alternatively, substantial conformance is based on a determination by a national or international regulatory body, for example in a part certification or parts manufacture approval (PMA) process for the Federal Aviation Administration, the European Aviation Safety Agency, the Civil Aviation Administration of China, the Japan Civil Aviation Bureau, or the Russian Federal Agency for Air Transport. In these embodiments, substantial conformance encompasses a determination that a particular ram air fan diffuser is identical to, or sufficiently similar to, the specified diffuser 50, or that the ram air fan diffuser is sufficiently the same with respect to a part design in a type-certified ram air fan diffuser, such that the ram air fan diffuser complies with airworthiness standards applicable to the specified ram air fan diffuser. In particular, substantial conformance encompasses any regulatory determination that a particular part or structure is sufficiently similar to, identical to, or the same as a specified diffuser 50 of the present invention, such that certification or authorization for use is based at least in part on the determination of similarity.
While the invention has been described with reference to an exemplary embodiment(s), it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment(s) disclosed, but that the invention will include all embodiments falling within the scope of the appended claims.
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Number | Date | Country | |
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20130097997 A1 | Apr 2013 | US |