Hybrid aircraft propulsion system

The hybrid propulsion system addresses the need for a lightweight, efficient cooling solution by integrating refrigerant flow paths and heat exchangers to manage heat in aircraft engines, ensuring reliable operation and reduced emissions.

JP2026027915APending Publication Date: 2026-02-19HITACHI LTD
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Patent Information

Application Number
JP2024130185
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-06
Publication Date
2026-02-19

AI Technical Summary

Technical Problem

Aircraft propulsion systems require a small, lightweight hybrid system that efficiently manages heat generation and cooling for both electric motors and inverters while maintaining reliability and reducing weight and size constraints.

Method used

A hybrid propulsion system incorporating a first refrigerant flow path for the motor and gearbox, a second refrigerant flow path for the power converter, and a heat exchanger in each path to exchange heat with a fuel flow path, along with a control device to manage heat exchanger operation based on fluid temperatures.

Benefits of technology

The system provides efficient cooling and temperature management for the motor and inverter components, preventing freezing and maintaining performance, while reducing the overall size and weight of the propulsion system, thus enhancing energy efficiency and reducing CO2 emissions.

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Abstract

An object of the present invention is to provide a propulsion device for a hybrid aircraft that is compact and lightweight.SOLUTION: A propulsion device of a hybrid aircraft according to the present invention includes an engine and a motor that output a rotational force, a gear box that transmits the rotational force, an electric power converter that converts electric power supplied to the motor, and a fuel flow path that supplies fuel to the engine, wherein the propulsion device includes a first coolant flow path that supplies a coolant to the motor and the gear box, a second coolant flow path that supplies a coolant to the electric power converter, and a heat exchanger that is provided in each of the first coolant flow path and the second coolant flow path and performs heat exchange with the fuel flow path.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to a hybrid aircraft propulsion system. [Background technology]

[0002] Hybrid propulsion technology has been developed that combines an electric motor with an aircraft propulsion device that uses an engine to rotate a propeller or fan, and uses this to assist thrust and generate electricity. For example, an aircraft generally has a fuselage, wings, and a propulsion system that provides thrust. The propulsion system is mounted on a nacelle, for example, suspended from the wing. There are several types of propulsion systems depending on the size of the aircraft, but turboprop engines are often used for small passenger aircraft that can accommodate several dozen people.

[0003] In aircraft with turboprop engines as their propulsion system, the turbine output shaft must maintain high rotational speeds to maintain engine efficiency, while the propeller shaft rotation speed must be limited so that the blade tips do not exceed the speed of sound. To optimize the rotational speeds of the turbine and propeller, many turboprop engines use a reduction gear between the turbine output shaft and the propeller shaft.

[0004] Furthermore, from the perspective of reducing fuel consumption and CO2 emissions in aircraft engines, there is a growing demand for hybrid systems that use electric motors to assist engine output.

[0005] When hybridizing an aircraft engine, a motor and an inverter that drives it are newly added to the propulsion device. Each has a set operating temperature range, and to obtain the required performance and maintain reliability, the heat generated during operation must be cooled. Patent Document 1 discloses a conventional, non-hybrid configuration in which heat is exchanged between oil and aircraft fuel. Patent Document 2 discloses a configuration in which the respective coolants are cooled by a radiator in a propulsion system that uses a motor and inverter, such as a non-hybrid e-VTOL. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-94584 [Patent Document 2] Japanese Patent Application Publication No. 2023-92951 Summary of the Invention [Problem to be solved by the invention]

[0007] However, aircraft propulsion systems must be installed in the limited space inside the nacelle, and the weight of the aircraft has a significant impact on the required power output and range, so a small, lightweight hybrid propulsion system is required.

[0008] SUMMARY OF THE INVENTION An object of the present invention is to provide a small and lightweight hybrid aircraft propulsion system. [Means for solving the problem]

[0009] The propulsion device for a hybrid aircraft of the present invention is a hybrid aircraft propulsion device comprising an engine and motor that output rotational force, a gearbox that transmits the rotational force, a power converter that converts the electricity supplied to the motor, and a fuel flow path that supplies fuel to the engine, and is characterized in that it comprises a first refrigerant flow path that supplies refrigerant to the motor and the gearbox, a second refrigerant flow path that supplies refrigerant to the power converter, and a heat exchanger in each of the first refrigerant flow path and the second refrigerant flow path that exchanges heat with the fuel flow path. [Effects of the Invention]

[0010] According to the present invention, it is possible to provide a small and lightweight hybrid aircraft propulsion device. Problems, configurations, and effects other than those described above will become apparent from the following description of the embodiments. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a schematic top view of an aircraft equipped with a propulsion device. [Figure 2] FIG. 2 is a schematic diagram showing the external appearance of the propulsion device stored in the nacelle. [Figure 3] FIG. 2 is a schematic diagram showing the mechanical and electrical connections of the propulsion device. [Figure 4] 2 is a schematic diagram showing the arrangement of pipes for gear oil, inverter refrigerant, and fuel in the propulsion device according to the first embodiment. FIG. [Figure 5] FIG. 2 is a schematic diagram showing a heat exchanger and the valve state of the heat exchanger in its operating state. [Figure 6] FIG. 2 is a schematic diagram showing a heat exchanger and a valve state in a bypass state thereof. [Figure 7] FIG. 10 is a schematic diagram showing a cooling system configuration of a propulsion device according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0012] An embodiment of a hybrid propulsion system for an aircraft according to the present invention will be described below with reference to the drawings. In the drawings used in this specification, identical or similar reference numerals are used to designate identical or corresponding components, and repeated description of these components may be omitted. [Example]

[0013] 1 is a schematic top view of an aircraft equipped with a propulsion device. The aircraft 1 has a propulsion device 11 that uses propellers below the wings. This propulsion device 11 is a hybrid propulsion device that combines power from an engine 30 and power from a motor 50.

[0014] 2 is a schematic diagram showing the appearance of the propulsion device stored in the nacelle. The propulsion device has a propeller 20 and an air intake 13.

[0015] 3 is a schematic diagram showing the mechanical and electrical connections of the propulsion device. The propulsion device 11 includes a propeller 20, an engine 30 (ENG), a gearbox 40 (GB), a motor 50 (MOT), an inverter 60 (INV), and a battery 70 (BAT). The engine 30 is configured as a gas turbine engine, and the rotational force generated by the engine 30 and the motor 50, which is an electric motor, is mechanically connected to the rotating shaft of the propeller 20 via the gearbox 40. The inverter 60, which is a power converter that converts the power supplied to the motor 50, is electrically connected to the motor 50 and the battery 70. The inverter 60 converts the power supplied from the battery 70 and supplies it to the motor 50.

[0016] Next, the propulsion device 11 of the first embodiment will be described with reference to FIGS.

[0017] Fig. 4 is a schematic diagram showing the arrangement of the piping for gear oil, inverter refrigerant, and fuel in the propulsion device according to the first embodiment. That is, it is a schematic diagram showing the cooling system configuration of the propulsion device. Note that, in Fig. 4, for the sake of simplicity, several components are omitted.

[0018] The cooling system of the propulsion device 11 shown in Figure 4 is configured as a piping system through which three types of fluid flow: a fuel piping 101 which is a fuel flow path, a gear oil piping 111 which is a first refrigerant flow path that supplies refrigerant to the motor 50 and the gear box 40, and an inverter refrigerant piping 121 which is a second refrigerant flow path that supplies refrigerant to the power converter (inverter 60).

[0019] Of these, the gear oil piping 111 system is equipped with a gear oil pump 112, a gear oil tank 113, a gear box 40, a motor 50, etc., and the gear oil flowing through the gear oil piping 111 is used to lubricate and cool the gears in the gear box 40, cool the motor 50, and lubricate and cool other parts such as bearings. The first heat exchanger 91 exchanges heat with the fuel in the fuel piping 101 to lower the increased temperature. Other gear oil cooling mechanisms are not described here.

[0020] Here, the gear oil pipe 111, which is the first refrigerant flow path, is a circulation system, and the arrangement of devices in the system is referred to as upstream and downstream in the refrigerant flow direction, with the gear oil pump 112 as the reference. That is, in the first refrigerant flow path, the gear oil pump 112, motor 50, gear box 40, first heat exchanger 91, and gear oil tank 113 are arranged in this order from upstream. In the first refrigerant flow path, the motor 50 is arranged upstream of the gear box 40, so that the motor 50 can be cooled first, improving the cooling effect of the motor 50. In addition, the gear box 40 is arranged between the motor 50 and the first heat exchanger 91.

[0021] An inverter refrigerant pump 122, the inverter 60, etc. are connected to the inverter refrigerant pipe 121, which is the second refrigerant flow path, and the inverter refrigerant flowing through the inverter refrigerant pipe 121 is used to cool the inverter 60, and the increased temperature is reduced by exchanging heat with the fuel in the fuel pipe 101 through the second heat exchanger 92 and the third heat exchanger 93. Other cooling mechanisms for the inverter refrigerant are not described here.

[0022] Here, the inverter refrigerant piping 121, which is the second refrigerant flow path, is a circulation system, and the arrangement of devices in the system is referred to as upstream and downstream in the refrigerant flow direction, with the inverter refrigerant pump 122 as the reference. That is, in the second refrigerant flow path, the inverter refrigerant pump 122, the third heat exchanger 93, the inverter 60, and the second heat exchanger 92 are arranged in this order from upstream to downstream. In the second refrigerant flow path, the third heat exchanger 93 is arranged upstream of the inverter 60, and the second heat exchanger 92 is arranged downstream of the inverter 60. The refrigerant from the third heat exchanger 93 cools the inverter 60, thereby reducing the temperature increased in the second heat exchanger 92. In addition, the inverter 60 is arranged between the second heat exchanger 92 and the third heat exchanger 93 in the second refrigerant flow path.

[0023] The fuel pipe 101, which is a fuel flow path, is used to send fuel from a fuel tank 103 to the engine 30. Arranged in this order from the upstream side are a fuel pump 102, a second heat exchanger 92, a first heat exchanger 91, and a third heat exchanger 93. That is, in the fuel flow path, the second heat exchanger 92 is arranged upstream of the first heat exchanger 91, and the third heat exchanger 93 is arranged downstream of the first heat exchanger 91.

[0024] The gear oil pipe 111 is connected by a first heat exchanger 91, and the inverter refrigerant pipe 121 is connected by a second heat exchanger 92 and a third heat exchanger 93. Each heat exchanger is used to cool the gear oil and inverter refrigerant, and to preheat the fuel. The fuel tank 103 is often mounted on the wing of an aircraft, and is at a relatively low temperature in the air at high altitudes where the outside air temperature is low. This is used to cool the gear oil in conventional propulsion devices. In this embodiment, the gear oil is used to cool the motor 50, and heat exchange with the fuel can be used to cool the refrigerant for the inverter 60.

[0025] By adopting the above-described configuration, cooling of the motor 50 and inverter 60, which are the main components added to the hybrid propulsion device from a conventional engine-based propulsion device, is realized.

[0026] The first heat exchanger 91, the second heat exchanger 92, and the third heat exchanger 93 are electrically connected to the control device 80, and the operation of each heat exchanger is controlled by commands from the control device 80 (CONT).

[0027] Fig. 5 is a schematic diagram showing a heat exchanger and the valve state in its operating state. Fig. 6 is a schematic diagram showing a heat exchanger and the valve state in its bypass state. Heat exchanger 200 is configured so that heat exchange occurs between a pipe 201 for a first fluid and a pipe 202 for a second fluid. To the pipe 202 for the second fluid is connected a bypass pipe 203 for the second fluid, the flow path of which can be switched by opening and closing a first valve 211, a second valve 212, and a third valve 213.

[0028] As shown in FIG. 5, heat is exchanged between the two fluids by opening the first valve 211 and the third valve 213 and closing the second valve 212.

[0029] Also, as shown in FIG. 6, when the first valve 211 and the third valve 213 are closed and the second valve 212 is open, the second fluid flows through the bypass pipe 203, and heat exchange between the two fluids does not occur.

[0030] The control device 80 references the temperature of each fluid using a temperature sensor or the like (not shown) and controls the valve operation of the first heat exchanger 91, the second heat exchanger 92, and the third heat exchanger 93. In other words, each heat exchanger has a switchable heat exchange flow path and a bypass flow path, and the control device 80 controls the switching between the heat exchange flow path and the bypass flow path based on one or more temperatures of the refrigerant in the first refrigerant flow path, the refrigerant in the second refrigerant flow path, and the fuel in the fuel flow path.

[0031] For example, if the temperature of the gear oil in the gear oil pipe 111 is lower than a certain threshold value, the load on the gear oil pump 112 can be kept low by controlling the first heat exchanger 91 to be bypassed.

[0032] Antifreeze liquids such as ethylene glycol aqueous solution are often used as inverter coolants, but in high-altitude environments, the drop in outside temperature can cause the liquid to freeze or its viscosity to increase, which can lead to a decrease in cooling capacity.

[0033] In addition, motors and inverters may temporarily stop working depending on the flight conditions, and the coolant temperature drops in the air, which can lead to freezing. On the other hand, the engine and gearbox are operating for most of the flight, so the gear oil temperature remains above a certain level.

[0034] When the refrigerant temperature in the inverter refrigerant pipe 121 is low and there is a risk of freezing, the second heat exchanger 92 is bypassed and the first heat exchanger 91 and the third heat exchanger 93 are operated, thereby making it possible to warm the inverter refrigerant by exchanging heat with the fuel downstream of the first heat exchanger 91, where the fuel is at a relatively high temperature. This is expected to have the effect of preventing the inverter refrigerant from freezing.

[0035] According to this embodiment, a small and lightweight hybrid aircraft propulsion system can be provided. In addition, the hybridization can be achieved without increasing the size of the aircraft propulsion system, thereby reducing energy consumption and CO2 emissions. [Example]

[0036] Next, a propulsion device according to a second embodiment will be described with reference to Fig. 7. Fig. 7 is a schematic diagram showing the cooling system configuration of the propulsion device according to the second embodiment. The diagram shows the connection and arrangement of the pipes for gear oil, inverter refrigerant, and fuel. In Fig. 7, several components are omitted for simplicity of explanation.

[0037] Compared to Figure 4, the cooling system for the propulsion device of this embodiment does not have the third heat exchanger 93 between the fuel piping 101 and the inverter refrigerant piping 121, and a fourth heat exchanger 94 is added between the gear oil piping 111 and the inverter refrigerant piping 121, but the other configurations are the same as the cooling system for the propulsion device of Figure 4 of Example 1.

[0038] The cooling system for the propulsion device of this embodiment is configured with an emphasis on preventing the inverter refrigerant from freezing. Similar to the first embodiment, the temperatures of the gear oil and inverter refrigerant are lowered using fuel during normal operation, but when the inverter refrigerant becomes cold, the fourth heat exchanger 94 exchanges heat with the gear oil to raise the temperature of the inverter refrigerant and prevent it from freezing.

[0039] Compared to the configuration of the first embodiment, the temperature of the inverter refrigerant can be increased more efficiently by exchanging heat between the gear oil, which is expected to be hotter than the fuel, and the inverter refrigerant. When the temperature of the inverter refrigerant exceeds a certain threshold, the control device 80 controls the valve of the fourth heat exchanger 94 to bypass it, thereby preventing unnecessary temperature increases in the inverter refrigerant. Note that multiple fourth heat exchangers 94 may be provided.

[0040] According to this embodiment, a small and lightweight hybrid aircraft propulsion system can be provided. In addition, the hybridization can be achieved without increasing the size of the aircraft propulsion system, thereby reducing energy consumption and CO2 emissions.

[0041] The above has described in detail an embodiment of the cooling system for a hybrid propulsion device according to the present disclosure using the drawings, but the specific configuration is not limited to this embodiment, and even if there are design changes, etc., within the scope that does not deviate from the gist of the present disclosure, they are included in the present disclosure. [Explanation of symbols]

[0042] 1...aircraft, 11...propulsion device, 12...nacelle, 13...air intake, 20...propeller, 30...engine, 40...gearbox, 50...motor, 60...inverter, 70...battery, 80...controller, 91...first heat exchanger, 92...second heat exchanger, 93...third heat exchanger, 94...fourth heat exchanger, 101...fuel piping, 102...fuel pump, 103...fuel tank, 111...gear oil piping, 112...gear oil pump, 113...gear oil tank, 121...inverter refrigerant piping, 122...inverter refrigerant pump, 200...heat exchanger, 201...first fluid piping, 202...second fluid piping, 203...second fluid bypass piping, 211...first valve, 212...second valve, 213...third valve

Claims

1. an engine and a motor that output rotational force; a gearbox that transmits the rotational force; a power converter that converts the power supplied to the motor; a fuel flow path for supplying fuel to the engine, a first coolant flow path for supplying a coolant to the motor and the gearbox; a second coolant flow path for supplying a coolant to the power converter; A propulsion system for a hybrid aircraft, comprising a heat exchanger for exchanging heat between the first coolant flow path and the second coolant flow path, respectively, and the heat exchanger for exchanging heat between the first coolant flow path and the second coolant flow path and the fuel flow path.

2. 2. The hybrid aircraft propulsion system according to claim 1, A hybrid aircraft propulsion system, characterized in that the motor is disposed upstream of the gearbox in the first coolant flow path.

3. 2. The hybrid aircraft propulsion system according to claim 1, two heat exchangers are provided between the second coolant flow path and the fuel flow path; one of the two heat exchangers is disposed in the second refrigerant flow path upstream of the power converter; The other of the two heat exchangers is disposed downstream of the power converter in the second refrigerant flow path.

4. 4. The hybrid aircraft propulsion system according to claim 3, The two heat exchangers between the second coolant flow path and the fuel flow path are arranged in the fuel flow path, one upstream and the other downstream of the heat exchanger arranged between the fuel flow path and the first coolant flow path.

5. 2. The hybrid aircraft propulsion system according to claim 1, A hybrid aircraft propulsion system comprising one or more heat exchangers between the first coolant flow path and the second coolant flow path.

6. 6. The hybrid aircraft propulsion system according to claim 5, The heat exchanger between the first refrigerant flow path and the second refrigerant flow path is located downstream of the motor in the first refrigerant flow path and upstream of the heat exchanger between the first refrigerant flow path and the fuel flow path.

7. The hybrid aircraft propulsion system according to any one of claims 1 to 5, A hybrid aircraft propulsion system, characterized in that the heat exchanger has a switchable heat exchange flow path and a bypass flow path.

8. The hybrid aircraft propulsion system according to any one of claims 1 to 5, the heat exchanger has a switchable heat exchange flow path and a bypass flow path; A propulsion device for a hybrid aircraft, comprising: a control device that controls switching between the heat exchange path and the bypass path based on one or more temperatures of the refrigerant in the first refrigerant path, the refrigerant in the second refrigerant path, and the fuel in the fuel path.

Citation Information

Patent Citations

  • Aircraft heat exchanger

    JP2015094584A

  • Cooling system and aircraft

    JP2023092951A