IMPROVED SHELL-STREAM GAS TURBINE ENGINE

DE602021042547T2Active Publication Date: 2025-11-19ROLLS ROYCE PLC
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Patent Information

Application Number
DE602021042547
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-09
Filing Date
2021-09-23
Publication Date
2025-11-19
Estimated Expiration
2041-09-23

AI Technical Summary

Technical Problem

Conventional turbofan gas turbine engines face performance degradation due to the use of bypass air or compressor off-takes for heat exchanger cooling, leading to reduced specific thrust, increased fuel consumption, and decreased surge margin.

Method used

Positioning a heat exchanger module upstream of the fan assembly in the inlet duct, utilizing intake air for cooling, which allows all intake air to contribute to propulsive thrust and enables efficient heat rejection without external ducts, thereby enhancing engine efficiency and versatility.

Benefits of technology

The solution results in a more efficient turbofan engine with reduced propulsive efficiency loss, lower temperature heat rejection capability, and a more compact design by eliminating external cooling ducts, while maintaining heat exchanger capacity.

✦ Generated by Eureka AI based on patent content.
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Description

Field of the Disclosure

[0001] The present disclosure relates to a turbofan gas turbine engine and particularly to a turbofan gas turbine engine having an inlet mounted heat exchanger.Background to the Disclosure

[0002] A conventional turbofan gas turbine engine uses heat exchangers to cool a variety of fluids including inter alia air, fuel and oil. Typically, such heat exchangers use bypass air or an air offtake from the compressor as the cooling medium. The heat exchanger itself may be positioned in the bypass duct or externally to the engine with the corresponding ducting.

[0003] The use of bypass air or a compressor offtake stream as the cooling medium in a heat exchanger will adversely affect the performance of the engine, for example by reducing specific thrust or increasing specific fuel consumption. Alternatively, or additionally, such off takes can adversely affect engine performance, for example by reducing surge margin.

[0004] In a further alternative conventional arrangement, an airflow to provide the cooling medium in a heat exchanger may be drawn separately from the airflow through the gas turbine engine. For example, in an airframe application the airflow providing the cooling medium may be drawn from an air intake or duct separate from the engine.

[0005] EP 3 165 451 A1 discloses a gas turbine engine having a nose cone, a fan for delivering air into a bypass duct as a bypass flow, and into a core engine to be delivered to a compressor. The nose cone includes a vent to receive air and deliver the air across a heat exchanger, which receives a fluid to be cooled. The air from the vents is delivered to an outlet downstream of the heat exchanger, such that a majority of the air being delivered to the outlet becomes part of the bypass flow.

[0006] Qi Li et al., "Compact heat exchangers : A review and future applications for a new generation of high temperature solar receivers", Renewable and Sustainable Energy Reviews, Elseviers Science v.15 n.9 (July 2011) pp. 4855 to 4875, provides a review on performances of compact heat exchangers (CHEs), including well-established devices, some relative newcomers to the market and also designs still being tested in the laboratory. The structures of the CHEs are briefly introduced, and their heat transfer enhancement mechanisms, as well as their advantages and limitations, are summarized. Then, different heat transfer enhancement technologies in CHEs are compared and their thermo-hydraulic performances are analyzed on the basis of available correlations for heat transfer and friction factor developed by various investigators quoted in the open literature. Finally, the technologies that may fit the specifications for a new generation of solar receiver, which is a critical component of the Concentrated Solar Power (CSP) system, are proposed.

[0007] GB 2 525 971 A discloses a heat exchanger comprising a duct through which a first fluid (e.g., a coolant such as ram air) may flow, and one or more vanes disposed within the duct and configured to disrupt the flow of the first fluid through the duct. Each vane comprises one or more flow channels through which a second fluid (e.g., a fluid to be cooled, such as engine coolant) may flow so as to transfer heat between the first fluid flowing through the duct and the second fluid flowing through the one or more flow channels. The flow channels within the vanes are separated from the duct by a channel wall such that fluid cannot flow between the duct and the flow channels.

[0008] As used herein, a range "from value X to value Y" or "between value X and value Y", or the likes, denotes an inclusive range; including the bounding values of X and Y. As used herein, the term "axial plane" denotes a plane extending along the length of an engine, parallel to and containing an axial centreline of the engine, and the term "radial plane" denotes a plane extending perpendicular to the axial centreline of the engine, so including all radial lines at the axial position of the radial plane. Axial planes may also be referred to as longitudinal planes, as they extend along the length of the engine. A radial distance or an axial distance is therefore a distance in a radial or axial plane, respectively.Statements of Disclosure

[0009] According to a first aspect of the present disclosure, there is provided a turbofan gas turbine engine in accordance with claim 1 comprising, in axial flow sequence, a heat exchanger module, a fan assembly, a compressor module, and a turbine module, the fan assembly comprising a plurality of fan blades defining a corresponding fan assembly flow area (A FAN ), the heat exchanger module being in fluid communication with the fan assembly by an inlet duct, the heat exchanger module comprising a plurality of hollow, radially-extending vanes arranged in a circumferential array, at least one of the vanes comprising at least one heat transfer element for the transfer of heat energy from a first fluid contained within the or each heat transfer element to an airflow passing over a surface of the or each heat transfer element prior to entry of the airflow into an inlet to the fan assembly, the heat exchanger module having a heat exchanger module flow area A HEX , a swept heat transfer element area (A HTE ) being the wetted surface area of the or all heat transfer elements in contact with the airflow, a Fan to Heat Transfer Element Area parameter F EA being defined as: F EA = A HTE A FAN and the F EA parameter lies in the range of 47 to 132; the heat exchanger module flow area A HEX (118) extends completely over the fan flow area A FAN (138), the or each heat transfer element extends axially along the corresponding vane, the or each heat transfer element is positioned within a corresponding vane, and each vane is configured to allow an air flow passing through the heat exchanger module to pass through the hollow portion of the vane.

[0010] The flow area is to be understood to mean a cross-sectional area of the air flow taken perpendicularly to a central axis of the flow in the flow direction. In other words, for the fan assembly the flow area A FAN corresponds to the cross-sectional area of the fan assembly through which the flow passes.

[0011] The total wetted area (swept heat transfer element area, A HTE ) of the heat transfer elements provides a measure of the quantity of heat energy that it may be possible to reject via the heat exchanger module to the through-flowing air flow. The term wetted area is understood to mean the area of the heat transfer elements that is contacted (or swept) by the fluid constituting the air flow as it passes through the heat exchanger module.

[0012] Since the flow area of the fan assembly scales with engine thrust (larger fan assembly flow area ≡ greater engine thrust), the ratio of swept heat transfer element area to fan assembly flow area provides an indicative measure of the efficiency of the turbofan engine at rejecting heat for a given thrust output.

[0013] In one arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 70m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 132. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 25m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 47.

[0014] Optionally, the F EA parameter lies in the range of 57 to 97.

[0015] In one arrangement of the present disclosure, the heat transfer element may have a construction in which only a primary surface area of the heat transfer element is swept by the fluid making up the air flow as it passes through the heat exchanger module. One example of a heat transfer element construction having only a primary surface area might be a tube heat exchanger.

[0016] In another arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 50m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 94. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 30m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 57.

[0017] Optionally, the F EA parameter lies in the range of 76 to 123.

[0018] In an arrangement of the present disclosure, the heat transfer element may have a construction in which the heat transfer element has both a primary surface area and a secondary surface area, both of which are swept by the fluid making up the air flow as it passes through the heat exchanger module. One example of a heat transfer element construction having both primary and secondary surface areas might be a tube and fin heat exchanger.

[0019] In another arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 65m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 123. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 40m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 76.

[0020] Optionally, the fan diameter D is within the range of 0.3m to 2.0m, preferably within the range 0.4m to 1.5m, and more preferably in the range of 0.7m to 1.0m.

[0021] In one embodiment of the disclosure, the fan diameter is 0.9m.

[0022] Consequently, for the same heat energy loading rejected to the air flow through the heat exchanger, the loss in propulsive efficiency of the turbofan engine is proportionately smaller for a large diameter (for example, approximately 1.5 to 2.0m in diameter) turbofan engine than for a small diameter turbofan engine.

[0023] The fan tip radius, measured between a centreline of the engine and an outermost tip of each fan blade at its leading edge, may be in the range from 95 cm to 200 cm, for example in the range from 110 cm to 150 cm, or alternatively in the range from 155 cm to 200 cm. The fan tip radius may be greater than any of: 110 cm, 115 cm, 120 cm, 125 cm, 130 cm, 135cm, 140 cm, 145 cm, 150 cm, 155 cm, 160 cm, 165 cm, 170 cm, 175 cm, 180 cm, 185 cm, 190 cm or 195 cm. The fan tip radius may be around 110 cm, 115 cm, 120 cm, 125 cm, 130 cm, 135cm, 140 cm, 145 cm, 150 cm, 155 cm, 160 cm, 165 cm, 170 cm, 175 cm, 180 cm, 185 cm, 190 cm or 195 cm. The fan tip radius may be greater than 160 cm.

[0024] The fan tip radius may be in the range from 95 cm to 150 cm, optionally in the range from 110 cm to 150 cm, optionally in the range of from 110 cm to 145 cm, and further optionally in the range from 120 cm to 140 cm.

[0025] The fan tip radius may be in the range from 155 cm to 200 cm, optionally in the range from 160 cm to 200 cm, and further optionally in the range from 165 cm to 190 cm.

[0026] The flow area is to be understood to mean a cross-sectional area of the air flow taken perpendicularly to a central axis of the flow in the flow direction. In other words, for the heat exchanger module the flow area A HEX corresponds to the cross-sectional area of the heat exchanger module through which the flow passes. Likewise, for the fan assembly the flow area A FAN corresponds to the cross-sectional area of the fan assembly through which the flow passes.

[0027] In one arrangement of the present disclosure, not forming part of the claimed invention, the flow area of the heat exchanger module has an annular profile and extends over only a radially outward circumferential portion of the flow area of the fan assembly. In other words, the air flow entering a radially proximal portion of the flow area of the fan assembly does not pass through the heat exchanger assembly and simply enters the fan assembly. In one arrangement, the radially outward circumferential portion of the flow area of the fan assembly amounts to 60% of the flow area of the fan assembly.

[0028] In one embodiment of the disclosure, not forming part of the claimed invention, the heat exchanger module has a fluid path diameter E that is greater than the fan diameter D. In this embodiment, the inlet duct that connects the heat exchanger module to the fan assembly has a diameter than converges from an exit from the heat exchanger module to an entrance to the fan assembly.

[0029] Optionally, the turbofan gas turbine engine further comprises an outer housing, the outer housing enclosing the sequential arrangement of heat exchanger module, fan assembly, compressor module, and turbine module, an annular bypass duct being defined between the outer housing and the sequential arrangement of modules, a bypass ratio being defined as a ratio of a mass air flow rate through the bypass duct to a mass air flow rate through the sequential arrangement of modules, and wherein the bypass ratio is less than 2.0.

[0030] A turbofan engine having a bypass ratio (BPR) of less than approximately 2.0 will have a generally smaller bypass duct (the annular duct surrounding the core gas turbine engine) than a turbofan engine having a BPR greater than approximately 2.0. For a turbofan engine with a BPR greater than, say, 2.0, the correspondingly larger bypass duct volume provides more scope for positioning a heat exchanger within the bypass duct than would be the case for a low BPR turbofan engine.

[0031] Optionally, the fan assembly has two fan stages, at least one of the fan stages comprising a plurality of fan blades defining the fan diameter D.

[0032] In one arrangement, the fan assembly has two fan stages with both fan stages comprising a plurality of fan blades defining the same fan diameter. Alternatively, each of the fan stages may have different fan diameters.

[0033] According to another aspect of the present disclosure, there is provided a method of operating a turbofan gas turbine engine in accordance with claim 7, the gas turbine engine comprising, in axial flow sequence, a heat exchanger module, an inlet duct, a fan assembly, a compressor module, and a turbine module, the fan assembly comprising a plurality of fan blades defining a corresponding fan area (A FAN ) , and the heat exchanger module having a heat exchanger module flow area A HEX , and wherein the method comprises the steps of: (i) providing the fan assembly, the compressor module, and the turbine module; and (ii) positioning the heat exchanger module in fluid communication with the fan assembly by the inlet duct with the heat exchanger module flow area A HEX extending completely over the fan flow area A FAN , a swept heat transfer element area (A HTE ) being the wetted surface area of the or all heat transfer elements in contact with the airflow, a Fan to Heat Transfer Element Area parameter F EA being defined as: F EA = A HTE A FAN and the F EA parameter lies in the range of 47 to 132; (iii) providing the heat exchanger module with a plurality of radially-extending vanes arranged in a circumferential array, at least one of the vanes comprising at least one heat transfer element with the or each heat transfer element extending axially along the corresponding vane, the or each heat transfer element is positioned within a corresponding vane, and each vane is configured to allow an air flow passing through the heat exchanger module to pass through the hollow portion of the vane; (iv) operating the engine such that an airflow passing over a surface of the or each heat transfer element prior to entry of the airflow into an inlet to the fan assembly transfers heat energy from the first fluid contained within the or each heat transfer element to the airflow.

[0034] The total wetted area (swept heat transfer element area, A HTE ) of the heat transfer elements provides a measure of the quantity of heat energy that may be rejected via the heat exchanger module to the through-flowing air flow. The term wetted area is understood to mean the area of the heat transfer elements that is contacted (or swept) by the fluid constituting the air flow as it passes through the heat exchanger module.

[0035] Since the flow area of the fan assembly scales with engine thrust (larger fan assembly flow area ≡ greater engine thrust), the ratio of swept heat transfer element area to fan assembly flow area provides an indicative measure of the efficiency of the turbofan engine at rejecting heat for a given thrust output.

[0036] In one arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 70m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 132. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 25m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 47.

[0037] Optionally, the F EA parameter of step (iii) lies in the range of 57 to 97.

[0038] In one arrangement of the present disclosure, the heat transfer element may have a construction in which only a primary surface area of the heat transfer element is swept by the fluid making up the air flow as it passes through the heat exchanger module. One example of a heat transfer element construction having only a primary surface area might be a tube heat exchanger.

[0039] In another arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 50m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 94. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 30m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 57.

[0040] Optionally, the F EA parameter of step (iii) lies in the range of 76 to 123.

[0041] In an arrangement of the present disclosure, the heat transfer element may have a construction in which the heat transfer element has both a primary surface area and a secondary surface area, both of which are swept by the fluid making up the air flow as it passes through the heat exchanger module. One example of a heat transfer element construction having both primary and secondary surface areas might be a tube and fin heat exchanger.

[0042] In another arrangement, a turbofan engine has a heat exchanger module having a swept heat transfer element area (A HTE ) of 65m 2< with a fan area (A FAN ) of 0.53m 2< . In this configuration the corresponding F EA parameter is approximately 123. Alternatively, the swept heat transfer element area (A HTE ) may be approximately 40m 2< with a fan area (A FAN ) of 0.53m 2< resulting in a F EA parameter of approximately 76.

[0043] A conventional turbofan engine typically uses an engine offtake flow, for example from a compressor stage or from the bypass flow, to provide cooling flow to the heat exchanger. Such conventional arrangements result in a loss of propulsive flow and a consequent reduction in overall engine efficiency.

[0044] In contrast, in a turbofan engine according to the present disclosure, the location of the heat exchanger in an inlet duct upstream of the fan assembly means that the engine is able to use all of the intake air to provide propulsive thrust. This means that a turbofan engine according to the present disclosure can be more efficient than a conventional turbofan engine while providing the same level of heat exchanger capacity.

[0045] In addition, the engine offtake flow used in a conventional turbofan engine for providing a cooling feed flow to a heat exchanger will have a considerably higher temperature than the intake air flow entering the engine. This in turn limits the temperature at which heat can be rejected to the heat exchanger to temperature that are greater than that of the corresponding engine offtake flow.

[0046] The positioning of the heat exchanger upstream of the fan assembly means that the cooling air flow entering the heat exchanger has a temperature that is lower than any engine offtake flow, for example a bleed flow from a compressor stage or the bypass flow. Consequently, in a turbofan engine according to the present disclosure it becomes possible to reject heat to the heat exchanger flow at a lower temperature than can be achieved with any prior art arrangement described above. This makes the turbofan engine according to the present disclosure more versatile than conventional turbofan engines.

[0047] Alternatively, a conventional turbofan engine application may employ a heat exchanger separate to the turbofan engine itself but with an airframe intake air nozzle and exhaust air nozzle. In such an arrangement, there will be aerodynamic losses associated with the separate intake and exhaust nozzles.

[0048] In contrast, the turbofan engine of the present arrangement allows all heat rejection to be made to the incoming engine intake air stream. This enables any intake and exhaust ducts external to the engine to be eliminated. Any efficiency losses resulting from the presence of the heat exchanger module in the intake flow to the engine will be considerably lower than the losses associated with any intake and exhaust ducts external to the engine. This makes the turbofan engine of the present disclosure more efficient than a conventional turbofan engine while providing the same level of heat exchanger capacity.

[0049] The skilled person would appreciate that enabling all heat rejection to be made to the incoming engine intake air stream may allow the elimination of all cooling ducts in the machine body external to the turbofan engine, thus reducing drag produced by the machine body. Further, the skilled person would appreciate that Having an integrated heat exchanger in the turbofan engine may create a more compact engine installation, which may in turn simplify the installation of the turbofan engine on a machine body.Brief Description of the Drawings

[0050] There now follows a description of an embodiment of the disclosure, by way of nonlimiting example, with reference being made to the accompanying drawings in which: Figure 1 shows a schematic part-sectional view of a turbofan gas turbine engine according to the prior art; Figure 2 shows a schematic part-sectional view of a turbofan gas turbine engine according to a first embodiment of the disclosure; Figure 3 shows a schematic part-sectional view of a turbofan gas turbine engine according to a second embodiment not forming part of the claimed invention; Figure 4 shows a perspective schematic view of the heat exchanger module of the turbofan engine of Figure 2 showing the circumferential array of vanes forming the heat exchanger module; and Figure 5 shows a perspective schematic part-sectional view of one of the vanes of the heat exchanger module of Figure 4.

[0051] It is noted that the drawings may not be to scale. The drawings are intended to depict only typical aspects of the disclosure, and therefore should not be considered as limiting the scope of the disclosure. In the drawings, like numbering represents like elements between the drawings.Detailed Description

[0052] Figure 1 illustrates a conventional turbofan gas turbine engine 10 having a principal rotational axis 9. The engine 10 comprises an air intake 12 and a two-stage propulsive fan 13 that generates two airflows: a core airflow A and a bypass airflow B. The gas turbine engine 10 comprises a core 11 that receives the core airflow A. The engine core 11 comprises, in axial flow series, a low-pressure compressor 14, a high-pressure compressor 15, combustion equipment 16, a high-pressure turbine 17, an intermediate-pressure turbine 18, a low-pressure turbine 19 and a core exhaust nozzle 20. A nacelle 21 surrounds the gas turbine engine 10 and defines a bypass duct 22 and a bypass exhaust nozzle 18. The bypass airflow B flows through the bypass duct 22. The fan 13 is attached to and driven by the low-pressure turbine 19 via a shaft 26.

[0053] In use, the core airflow A is accelerated and compressed by the low-pressure compressor 14 and directed into the high-pressure compressor 15 where further compression takes place. The compressed air exhausted from the high-pressure compressor 15 is directed into the combustion equipment 16 where it is mixed with fuel and the mixture is combusted. The resultant hot combustion products then expand through, and thereby drive, the high-pressure, intermediate-pressure, and low-pressure turbines 17, 18, 19 before being exhausted through the nozzle 20 to provide some propulsive thrust. The high-pressure turbine 17 drives the high-pressure compressor 15 by a suitable interconnecting shaft 27. The low-pressure compressor 14 drives the intermediate-pressure turbine 18 via a shaft 28.

[0054] Note that the terms "low-pressure turbine" and "low-pressure compressor" as used herein may be taken to mean the lowest pressure turbine stages and lowest pressure compressor stages (i.e. not including the fan 13) respectively and / or the turbine and compressor stages that are connected together by the interconnecting shaft 26 with the lowest rotational speed in the engine. In some literature, the "low-pressure turbine" and "low-pressure compressor" referred to herein may alternatively be known as the "intermediate-pressure turbine" and "intermediate-pressure compressor". Where such alternative nomenclature is used, the fan 13 may be referred to as a first, or lowest pressure, compression stage.

[0055] Other turbofan gas turbine engines to which the present disclosure may be applied may have alternative configurations. For example, such engines may have an alternative number of fans and / or compressors and / or turbines and / or an alternative number of interconnecting shafts. By way of further example, the gas turbine engine shown in Figure 1 has a split flow nozzle 20, 23 meaning that the flow through the bypass duct 22 has its own nozzle 23 that is separate to and radially outside the core engine nozzle 20. However, this is not limiting, and any aspect of the present disclosure may also apply to engines in which the flow through the bypass duct 22 and the flow through the core engine 11 are mixed, or combined, before (or upstream of) a single nozzle, which may be referred to as a mixed flow nozzle. One or both nozzles (whether mixed or split flow) may have a fixed or variable area.

[0056] The geometry of the turbofan gas turbine engine 10, and components thereof, is defined by a conventional axis system, comprising an axial direction (which is aligned with the rotational axis 9), a radial direction (in the bottom-to-top direction in Figure 1), and a circumferential direction (perpendicular to the page in the Figure 1 view). The axial, radial and circumferential directions are mutually perpendicular.

[0057] Referring to Figure 2, a turbofan gas turbine engine according to a first embodiment of the disclosure is designated generally by the reference numeral 100. The turbofan gas turbine engine 100 comprises in axial flow sequence, a heat exchanger module 110, a fan assembly 130, a compressor module 140, and a turbine module 150.

[0058] In the present arrangement, the fan assembly 130 comprises two fan stages 131, with each fan stage 131 comprising a plurality of fan blades 132. In the present arrangement each fan stage 131 has the same fan diameter 136, with the respective plurality of fan blades defining a fan diameter of 0.9m. In an alternative arrangement, the two fan stages 131 may have different fan diameters 136 each defined by the corresponding plurality of fan blades 132. As previously mentioned, the fan diameter (D) 136 is defined by a circle circumscribed by the leading edges of the respective plurality of fan blades 132.

[0059] The heat exchanger module 110 comprises a plurality of heat transfer elements 112. The heat exchanger module 110 is in fluid communication with the fan assembly 130 by an inlet duct 160. The heat exchange module 110 has an axial length 115 of 0.4m, this being 0.4 times the fan diameter of 0.9m.

[0060] The inlet duct 160 extends between a downstream-most face of the heat transfer elements and an upstream-most face of the fan assembly. In the present arrangement, the inlet duct 160 is linear. However, in other arrangements the inlet duct 160 may be curved or convoluted.

[0061] The inlet duct 160 has a fluid path length 164 of 3.6m, this being 4.0 times the fan diameter of 0.9m. The fluid path length 164 extends along a central axis 162 of the inlet duct 160.

[0062] As outlined earlier, the heat exchanger module 110 has a flow area (A HEX ) 118. The heat exchanger module flow area 118 is the cross-sectional area of the heat exchanger module 110 through which an air flow 104 passes before being ingested by the fan assembly 130. In the present arrangement, the heat exchanger module flow area 118 has an annular cross-section and corresponds directly to the shape of the air flow passing through the heat exchanger module 110.

[0063] The fan assembly 130 has a corresponding flow area (A FAN ) 138. The fan assembly flow area 138 is the cross-sectional area of the fan assembly 130 through which an air flow 104 passes before separating into a core engine flow and a bypass flow. The fan assembly flow area 138 has an annular shape since it corresponds to the annular area swept by the fan blades 132.

[0064] In the present arrangement, the heat exchanger module flow area 118 is equal to the fan assembly flow area 138, and the corresponding ratio of A HEX / A FAN is equal to 1.0.

[0065] The heat exchanger module 110 has a flow diameter (E) 116, which is the diameter of the air flow passing through the heat exchanger module 110. In the present arrangement, the heat exchanger module flow diameter 116 is equal to the fan diameter 136.

[0066] The heat exchanger module 110 comprises a plurality of heat transfer elements 112 for the transfer of heat energy from a first fluid 190 contained within the heat transfer elements 112 to an airflow 104 passing over a surface 113 of the heat transfer elements 112 prior to entry of the airflow 104 into the fan assembly 130. In the present embodiment, the first fluid 190 is a mineral oil. In other arrangements, the first fluid 190 may be an alternative heat transfer fluid such as, for example, a water-based fluid, or the fuel used by the turbofan gas turbine engine.

[0067] The heat transfer elements 112 have a conventional tube and fin construction and will not be described further. In an alternative arrangement, the heat transfer elements may have a different construction such as, for example, plate and shell.

[0068] The turbofan gas turbine engine 100 further comprises an outer housing 170. The outer housing 170 fully encloses the sequential arrangement of the heat exchanger module 110, inlet duct 160, fan assembly 130, compressor module 140, and turbine module 150. The outer housing 170 defines a bypass duct 180 between the outer housing 170 and the core engine components (comprising inter alia the compressor module 140 and the turbine module 150). In the present arrangement, the bypass duct 180 has a generally axi-symmetrical annular cross-section extending over the core engine components. In other arrangements, the bypass duct 180 may have a non-symmetric annular cross-section or may not extend around a complete circumference of the core engine components.

[0069] Figure 4 shows a perspective view of the heat exchanger module 110 and fan assembly 130 of the turbofan gas turbine engine 100 according to the first embodiment. The heat exchanger module 110 comprises sixteen radially extending vanes 120 arranged in a circumferential array 122. Alternative embodiments may have more or fewer radially extending vanes 120. In the present arrangement, each of the vanes 120 is hollow and each vane comprises a single heat transfer element 112 positioned within the vane 120. The alternative embodiments may not have a heat transfer element 112 within each vane 120 or may have more than one heat transfer element 112 in any single vane 120.

[0070] Each of the heat transfer elements 112 has a corresponding swept area, which is the area of the heat transfer element 112 that is contacted by the air flow 104. In the present arrangement, the total swept heat transfer element area (A HTE ) is the sum of the swept area of each of the individual heat transfer elements 112.

[0071] Each vane 120 is configured to allow the air flow 104 passing through the heat exchange module to pass through the hollow portion of the vane 120 and thence to flow over the respective heat transfer element 112. In this way heat energy is transferred from the first fluid 190 to the air flow 104.Fan to Heat Transfer Element Area parameter

[0072] A Fan to Heat Transfer Element Area parameter F EA is defined as a ratio of the total swept heat transfer element area (A HTE - defined in the preceding paragraph) to the fan assembly flow area (A FAN - defined earlier). For the present arrangement, the swept heat transfer element area is approximately 52m 2< , while the fan assembly flow area is approximately 0.43m 2< . This makes the Fan to Heat Transfer Element Area parameter approximately 121.Heat Energy Rejection Performance

[0073] In use, the first fluid 190 enters the heat transfer elements 112 having a maximum temperature of 80°C. The heat transfer module 110, comprising all of the heat transfer elements 112, transfers approximately 325kW of heat energy from the first fluid 190 passing through the heat transfer elements 112 to the air flow 104 passing through the heat exchanger module 110.

[0074] In the present application, the first fluid 190 draws heat energy from, for example, mechanical systems such as, for example, the engine lubrication system, and electrical systems both on the turbofan engine and external to the turbofan engine. In other arrangements, the first fluid 190 may draw heat energy only from the turbofan engine, or alternatively only from systems external to the turbofan engine.Heat Exchanger Performance Parameter

[0075] In use, the turbofan gas turbine engine 100 according to the first embodiment has a maximum dry thrust of 190 kN at a full-power engine condition. The term 'dry thrust' is understood to mean the engine's thrust performance without any supplementary thrust such as from an exhaust reheat system or similar. The engine's thrust performance is measured at standard sea-level static (SLS) atmospheric conditions (i.e. 15°C, 1013 mbar).

[0076] With the turbofan engine 100 operating at a full-power condition referred to above, the fan assembly 130 will have a maximum rotational speed of approximately 9500rpm.

[0077] As outlined above, the heat exchanger module 110 transfers approximately 325kW of heat energy from the first fluid 190 to the airflow 104 passing through the heat exchanger module 110.

[0078] Consequently, a Heat Exchanger Performance parameter P EX is defined as a ratio of the heat energy rejection to the maximum dry thrust. For the turbofan gas turbine engine of the present arrangement, the ratio P EX is 1.7.

[0079] Referring to Figure 3, a turbofan gas turbine engine according to a second embodiment of the disclosure, not forming part of the claimed invention, is designated generally by the reference numeral 200. Features of the turbofan gas turbine engine 200 which correspond to those of turbofan gas turbine engine 100 have been given corresponding reference numerals for ease of reference.

[0080] The turbofan gas turbine engine 200 comprises in axial flow sequence, a heat exchanger module 210, a fan assembly 130, a compressor module 140, and a turbine module 150.

[0081] The fan assembly 130, compressor module 140, and turbine module 150 correspond directly to the those of the first embodiment described above.

[0082] The heat exchanger module 210 comprises a plurality of heat transfer elements 212 and is also in fluid communication with the fan assembly 130 by an inlet duct 260. As in the first embodiment, the inlet duct 260 extends between a downstream-most face of the heat transfer elements and an upstream-most face of the fan assembly.

[0083] The inlet duct 260 has a fluid path length 264 along a central axis 162 of the inlet duct 260 of 2.4m, this being 2.7 times the fan diameter of 0.9m.

[0084] The heat exchanger module 210 has a flow area (A HEX ) 218. As in the first embodiment, the heat exchanger module flow area 118 is annular in cross-section. However, in this arrangement the heat transfer elements 212 do not extend completely across that cross-section of the heat exchange module 210 that is available for the flow 104. In other words, there is a radially proximal portion of the cross-section of the heat transfer module across which there are no heat transfer elements 212.

[0085] The fan assembly 130 has a flow area (A FAN ) 138 that, as described above, has an annular shape corresponding to the annular area swept by the fan blades 132.

[0086] In the present arrangement, despite the heat exchanger module flow area 218 having different dimensions to the fan assembly flow area 138, the heat exchanger module flow area 218 is equal to the fan assembly flow area 138. As for the first embodiment, the corresponding ratio of A HEX / A FAN is equal to 1.0.

[0087] The heat exchanger module 210 has a flow diameter 216. The heat exchanger module flow diameter 216 is greater than the fan diameter 136.

[0088] The turbofan gas turbine engine 200 further comprises an outer housing 270. As with the first embodiment described above, the outer housing 170 fully encloses the sequential arrangement of the heat exchanger module 210, inlet duct 260, fan assembly 130, compressor module 140, and turbine module 150. The outer housing 270 also defines an annular bypass duct 180 between the outer housing 170 and the core engine components

[0089] In use the turbofan gas turbine engine 200 functions in the same manner as described above in relation to the turbofan gas turbine engine 100 of the first embodiment.

[0090] It will be understood that the invention is not limited to the embodiments above-described and various modifications and improvements can be made without departing from the concepts described herein.

Claims

1. A turbofan gas turbine engine (100) comprising, in axial flow sequence, a heat exchanger module (110), a fan assembly (130), a compressor module (140), and a turbine module (150), the fan assembly (130) comprising a plurality of fan blades (132) defining a corresponding fan flow area (AFAN) (138), the heat exchanger module (110) being in fluid communication with the fan assembly (130) by an inlet duct (160), the heat exchanger module (110) comprising a plurality of hollow, radially-extending vanes (120) arranged in a circumferential array (122), at least one of the vanes (120) comprising at least one heat transfer element (112) for the transfer of heat from a first fluid (190) contained within the or each heat transfer element (112) to an airflow (104) passing over a surface (113) of the or each heat transfer element (112) prior to entry of the airflow (104) into an inlet to the fan assembly (130), the heat exchanger module (110) having a heat exchanger module flow area AHEX (118) and a swept heat transfer element area (AHTE), the swept heat transfer element area (AHTE) being the wetted surface area of the or all heat transfer elements (112) in contact with the airflow (104), a Fan to Element Area parameter FEA being defined as: F EA = A HTE A FAN and the FEA parameter lies in the range of 47 to 132; wherein the heat exchanger module flow area AHEX (118) extends completely over the fan flow area AFAN (138), the or each heat transfer element (112) extends axially along the corresponding vane (120), the or each heat transfer element (112) is positioned within a corresponding vane (120), and each vane (120) is configured to allow an air flow (104) passing through the heat exchanger module (110) to pass through the hollow portion of the vane (120).

2. The turbofan gas turbine engine (100) as claimed in Claim 1, wherein the FEA parameter lies in the range of 57 to 97.

3. The turbofan gas turbine engine (100) as claimed in Claim 1, wherein the FEA parameter lies in the range of 76 to 123.

4. The turbofan gas turbine engine (100) as claimed in any one of Claims 1 to 3, wherein the fan assembly (130) comprising a plurality of fan blades (132) defining a fan diameter (D) (136), and the fan diameter D (136) is within the range of 0.3m to 2.0m, preferably within the range 0.4m to 1.5m, and more preferably in the range of 0.7m to 1.0m.

5. The turbofan gas turbine engine (100) as claimed in any one of Claims 1 to 4, the turbofan gas turbine engine (100) further comprising an outer housing (170), the outer housing (170) enclosing the sequential arrangement of heat exchanger module (110), fan assembly (130), compressor module (140), and turbine module (150), an annular bypass duct (180) being defined between the outer housing (170) and the sequential arrangement of modules, a bypass ratio being defined as a ratio of a mass air flow rate through the bypass duct (180) to a mass air flow rate through the sequential arrangement of modules, and wherein the bypass ratio is less than 2.0.

6. The turbofan gas turbine engine (100) as claimed in any one of Claims 1 to 5, wherein the fan assembly (130) has two fan stages (131), at least one of the fan stages (131) comprising a plurality of fan blades (132) defining the fan diameter D (136).

7. A method of operating a turbofan gas turbine engine (100), the gas turbine engine (100) comprising, in axial flow sequence, a heat exchanger module (110), an inlet duct (160), a fan assembly (130), a compressor module (140), and a turbine module (150), the fan assembly (130) comprising a plurality of fan blades (132) defining a corresponding fan area (AFAN) (138), and the heat exchanger module (110) having a heat exchanger module flow area AHEX (118), and wherein the method comprises the steps of: (i) providing the fan assembly (130), the compressor module (140), and the turbine module (150); (ii) positioning the heat exchanger module (110) in fluid communication with the fan assembly (130) by the inlet duct (160) with the heat exchanger module flow area AHEX (118) extending completely over the fan flow area AFAN (138), a swept heat transfer element area (AHTE) being the wetted surface area of the or all heat transfer elements (112) in contact with the airflow (104), a Fan to Element Area parameter FEA being defined as: F EA = A HTE A FAN and the FEA parameter lies in the range of 47 to 132; (iii) providing the heat exchanger module (110) with a plurality of radially-extending vanes (120) arranged in a circumferential array (122), at least one of the vanes (120) comprising at least one heat transfer element (112) with the or each heat transfer element (112) extending axially along the corresponding vane (120), the or each heat transfer element (112) is positioned within a corresponding vane (120), and each vane (120) is configured to allow an air flow (104) passing through the heat exchanger module (110) to pass through the hollow portion of the vane (120); and (iv) operating the engine (100) such that an airflow (104) passing over a surface (113) of the or each heat transfer element (112) prior to entry of the airflow (104) into an inlet to the fan assembly (130) transfers heat energy from the first fluid (190) contained within the or each heat transfer element (112) to the airflow (104).

8. The method of Claim 7, wherein the FEA parameter of step (ii) lies in the range of 57 to 97.

9. The method of Claim 7, wherein the FEA parameter of step (ii) lies in the range of 76 to 123.