FUEL HEATING DEVICE IN AN AIRCRAFT TURBOMACHINE FUEL CIRCUIT, AIRCRAFT TURBOMACHINE AND CORRESPONDING FUEL HEATING METHOD

The fuel heating device in aircraft turbomachines uses a phase change material to store and release thermal energy, addressing the issue of fuel freezing during transitions, ensuring efficient fuel heating and reducing consumption.

FR3162480A1Pending Publication Date: 2025-11-28SAFRAN AIRCRAFT ENGINES SAS
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
FR2024005271
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-05-23
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Existing thermal management systems in aircraft turbomachines fail to maintain optimal fuel temperature at servovalves during transitions from idle to takeoff, leading to potential malfunctions due to fuel freezing and increased fuel consumption, which compromises the heating capacity of the oil and fuel.

Method used

A fuel heating device with a phase change material integrated into the thermal management system, allowing thermal energy storage during less demanding phases and release during demanding phases, using a bypass circuit to divert oil when its temperature falls below that of the phase change material, ensuring efficient fuel heating.

Benefits of technology

The device maximizes heat exchange to the fuel, maintaining optimal fuel temperature at servovalves by storing thermal energy during idle phases and releasing it during takeoff, thereby avoiding fuel freezing and reducing fuel consumption.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

This fuel heating device in the fuel supply circuit of an aircraft turbomachine comprises a first oil circulation circuit (14), a second fuel circulation circuit (18), and a phase change material (PCM) in a heat exchange relationship between the first and second circuits. It further comprises a bypass circuit (17) configured to selectively divert oil from the phase change material based on the respective temperatures of the oil and the phase change material. (See Figure 3 for abbreviations.)
Need to check novelty before this filing date? Find Prior Art

Description

Title of the invention: FUEL HEATING DEVICE IN AN AIRCRAFT TURBOMACHINE FUEL SUPPLY CIRCUIT, AIRCRAFT TURBOMACHINE AND CORRESPONDING FUEL HEATING METHOD technical field

[0001] The present invention relates to the thermal management of fuel in an aircraft turbomachine. More particularly, it relates to a fuel heating device in a turbomachine's fuel supply circuit. State of the art

[0002] An aircraft turbomachine equipped with a thermal management system conventionally includes a first oil circulation loop ensuring the lubrication and cooling of the turbomachine engine elements, such as bearings, bushings and the geared motor, and a second fuel circulation loop which ensures the supply of fuel to the turbomachine and the control of variable geometry components via servovalves.

[0003] The first oil circulation loop and the second fuel circulation loop are coupled by heat exchangers in order to ensure the thermal management of the entire fluid system including the oil and the fuel.

[0004] Figure [1] shows the general architecture of a thermal management system for a turbomachine according to the prior art.

[0005] In this figure, the first loop I is shown in which lubricating oil circulates between an engine 1 and a reservoir 2 under the action of pumps P, a second loop II extending between the aircraft's fuel tank(s) 3, the engine's combustion chambers 4 and variable geometry devices 5 controlled by servovalves 6.

[0006] In this thermal management system, the cooling of the oil circulating in the first loop is ensured by the fuel circulating in the second loop under the action of the pumps P, by means of a heat exchanger 9.

[0007] The two loops are further coupled by a controlled heater 10 which essentially ensures the heating of the fuel in cold ambient conditions in order to avoid any risk of fuel freezing which could cause malfunctions of the servovalves 6 and, consequently, of the variable geometry components 5.

[0008] The fuel circulation in the second loop II is controlled by a bypass valve 11. Pumps P control the flow of fuel and oil in the circulation loops I, II and III.

[0009] In cold ambient conditions, particularly negative ones, the fuel stored in the aircraft's tank 3, which may contain water, even in small quantities, is liable to freeze, particularly at the servovalves, which is liable to cause malfunctions.

[0010] The role of the pilot-operated heater 10 is then to heat the fuel so that it has a positive temperature at the servovalves. However, under certain conditions, the fuel may reach the aircraft's engine system at very low temperatures, which can reach -55°C.

[0011] For example, when the aircraft has been parked in extreme conditions, The increase in fuel flow, which can occur during certain phases of flight or taxiing when the first circulation loop is generally cold and has not yet had time to warm up, results in an increase in fuel flow in the heat exchanger 9 and, consequently, additional cooling of the oil due to this increase in fuel flow at very low temperature.

[0012] This is the case, for example, when switching from idle mode to takeoff mode, which is accompanied by a significant increase in fuel consumption.

[0013] The increase in fuel consumption also results in a decrease in the temperature of the fuel at the outlet of the controlled heater 10.

[0014] Figure 2 shows an example of the evolution of the oil temperature (Curve A) and the fuel temperature (Curve B) during an idle phase (phase PI), then during a takeoff phase (phase P2).

[0015] As can be seen, during the transition from idle to takeoff, there is a drop in the oil temperature at the engine inlet as well as a drop in the fuel temperature at the outlet of the pilot-operated heater 10, so that the oil loses a substantial part of its fuel heating capacity.

[0016] Under these conditions, the fuel cannot be heated optimally and a positive fuel temperature is not guaranteed at the servovalves. Description of the invention

[0017] The aim of the invention is therefore to overcome this drawback and to propose a fuel heating device in a turbomachine supply circuit allowing to maximize the heat exchanges to the fuel.

[0018] The invention therefore relates to a fuel heating device in a supply circuit of an aircraft turbomachine, comprising a first oil circulation circuit, a second fuel circulation circuit and a phase change material placed in a heat exchange relationship between the first circuit and the second circuit.

[0019] This device further includes a bypass circuit configured to selectively divert oil from the phase-change material according to the respective temperatures of the oil and the phase-change material.

[0020] In one embodiment, the bypass circuit is placed between an inlet and an outlet of the first oil circulation circuit, so as to divert the oil circulation of the phase change material if the temperature of the oil is lower than that of the phase change material.

[0021] In one embodiment, the first and second circuits each comprise several branches extending in parallel, the parallel branches of the first circuit crossing the parallel branches of the second circuit, and wherein the phase-change material is arranged between the branches of the first and second circuits.

[0022] Advantageously, the phase change material is chosen according to the latent heat of phase change of the phase change material which corresponds to the temperature of the oil at the end of a predetermined operating phase of the turbomachine.

[0023] The invention also relates to a thermal management system for an aircraft turbomachine comprising a heating device as defined above.

[0024] It also relates to an aircraft turbomachine comprising such a thermal management system.

[0025] The invention further relates to a method of heating fuel in a supply circuit of an aircraft turbomachine, in which the fuel circulating in a fuel circulation loop is heated by oil circulating in an oil circulation loop, and in which, during a first phase of operation of the turbomachine, the thermal energy of the oil is stored in a phase-change material in a heat exchange relationship between the fuel circulation loop and the oil circulation loop, and during a second phase of operation of the turbomachine, the thermal energy stored in the phase-change material is returned to the fuel.

[0026] In one embodiment, when the temperature of the oil is lower than that of the phase change material, the oil is diverted from the phase change material. Brief description of the drawings

[0027] Other objects, features and advantages of the invention will become apparent from the following description, given solely by way of non-limiting example and made with reference to the accompanying drawings in which:

[0028] - Figure 1 and Figure 2, which have already been mentioned, illustrate respectively the general architecture of a thermal management system for aircraft turbomachine according to the state of the art and the evolution of oil and fuel temperature during predetermined phases of turbomachine operation;

[0029] - Figure 3 illustrates the structure of a conforming fuel heating device to the invention;

[0030] - Figure 4 illustrates the operation of the device in Figure 3; and

[0031] - Figure 5 shows curves illustrating the operation of the device [Fig.3], as well as a fuel heating method according to the invention. Detailed description

[0032] Reference will first be made to [Fig.3] which illustrates a fuel heating device according to an embodiment of the invention, designated by the general numerical reference 12.

[0033] Such a device 12 is intended to be integrated into a thermal management system of a turbomachine as illustrated in [Fig.1], between a first oil circulation loop which supplies the engine to ensure lubrication and cooling of the engine elements of the turbomachine and a second fuel circulation loop, which on the one hand supplies the combustion chambers 4 of the engine and on the other hand allows control of servovalves 6 piloting variable geometry devices 5.

[0034] The heating device 12 is for example integrated into the controlled heater 10 to ensure the heating of the fuel, in particular in cold conditions.

[0035] As can be seen, the heating device 12 includes a first oil circulation circuit 14, which includes an inlet 15 and an outlet 16 respectively connected to the oil circulation loop I, as well as a bypass circuit 17 extending between the inlet 15 and the outlet 16 so as to short-circuit the first oil circulation circuit 14.

[0036] The device 12 also includes a second fuel circulation circuit 18 in thermal exchange relationship with the first oil circulation circuit 14 and which includes an inlet 19 and an outlet 20 each connected to the second fuel circulation loop.

[0037] In the embodiment illustrated in [Fig.3], and in no way limitingly, the first oil circulation circuit 14 comprises a set of branches, such as 21, extending parallel between the inlet 15 and the outlet 16.

[0038] This is also the case of the second circulation circuit 18 which also includes a set of branches, such as 22, extending parallel between the inlet 19 and the outlet 20.

[0039] The branches 21 of the first oil circulation circuit 14 are in heat exchange relationship with the branches 22 of the second fuel circulation circuit 18.

[0040] For example, branches 21 cross branches 22. They are advantageously arranged perpendicularly to branches 22 of the second circuit 18. Branches 21 and 22 delimit between themselves cells, such as 23, which are filled with a phase-change material (PCM) capable of changing from a solid to a liquid state, and vice versa, at a predetermined temperature, by absorbing or releasing energy in the form of latent heat. Examples include water, wax, phase-change hydrocarbons, or paraffin.

[0041] Of course, we do not depart from the scope of the invention when we use other types of phase change materials.

[0042] As illustrated in [Fig.4], which shows the temperature variation as a function of the amount of heat stored in a phase change material, and on which sensible heat corresponds to a temperature rise of a material without a change of physical state while latent heat corresponds to a phase change of a material without a change in its temperature, a phase change material is capable of storing a large amount of thermal energy at a constant temperature which, depending on the phase change materials, can range from -40°C to 150°C, in order to be able to release it later.

[0043] Thus, the phase-change material of the heating device 12 can be used for storing the thermal energy released when the fuel heating capacity is maintained, for example, during idle time on the ground. The phase-change material is particularly useful before the implementation of operating phases in which the fuel heating capacity is no longer maintained, such as takeoff, which result in an increase in fuel flow and, consequently, additional oil cooling due to the increased fuel flow at very low temperatures.

[0044] By way of example, referring to [Fig.5], in one embodiment, during an idle operating phase (PI phase), the engine runs at low speed, and partially heats the oil and the fuel.

[0045] During this idle PI stage, during a first stage P' 1, the oil temperature (curve A) and the fuel temperature (curve B) increase. The temperature of the phase-change material (curve C) increases. also, by sensible heat transfer, that is, without physical phase transition.

[0046] During the next step P” 1, the oil temperature and the fuel temperature continue to increase and the thermal energy is stored in the phase change material as latent heat, at constant temperature.

[0047] During this period P” 1, the phase change material, which advantageously has a phase change temperature chosen according to the needs of the thermal management system, for example between 0 and 100 °C, thus melts, which makes it possible to store at a constant temperature a significant amount of energy, for example on the order of a few hundred thousand kilojoules.

[0048] During a takeoff which, as previously indicated, is accompanied by an increase in fuel flow (phase P2), the energy stored in the phase change material is released in the form of latent heat at constant temperature to the fuel (curve B').

[0049] During takeoff, the fuel flow rate can be multiplied by a factor of 2 to 20, and generally causes a drop of 5° to 30° in the oil temperature.

[0050] If the temperature of the oil becomes lower than that of the phase change material, the bypass circuit 17 is implemented so that the oil no longer circulates in the heating device 12 and does not recover the energy stored in the phase change material, so that it is entirely available to heat the fuel.

[0051] The phase-change material then ensures the heating of the fuel. It has been observed that a temperature increase of the order of 10 to 30° could be obtained.

[0052] The heating device just described thus makes it possible to maximize the heat exchanges to the fuel by storing the thermal energy which is available during less demanding engine operating phases, in which the fuel heating capacities are maintained, and then returning this energy to the fuel during more demanding operating phases in which the fuel heating capacities are not maintained, and this without having to size the controlled heater, by using a phase change material whose volume is smaller than that of a conventional heat exchanger.

Claims

Demands

1. A fuel heating device in a fuel supply circuit of an aircraft turbomachine, characterized in that it comprises a first oil circulation circuit (14), a second fuel circulation circuit (18) and a phase change material (PCM) in a heat exchange relationship between the first circuit (14) and the second circuit (18), and in that it further comprises a bypass circuit (17) configured to selectively divert oil from the phase change material (PCM) according to the respective temperatures of the oil and the phase change material.

2. A heating device according to claim 1, wherein the bypass circuit (17) is placed between an inlet (15) and an outlet (16) of the first circulation circuit, so as to divert the oil circulation of the phase-change material if the temperature of the oil is lower than that of the phase-change material.

3. Device according to any one of claims 1 and 2, wherein the first and second circuit each comprise several branches (21, 22) extending in parallel, the parallel branches of the first circuit crossing the parallel branches of the second circuit, and wherein the phase-change material is disposed between the branches of the first and second circuits.

4. Device according to any one of claims 1 to 3, wherein the phase-change material is chosen based on the latent heat of phase change of the phase-change material which corresponds to the oil temperature at the end of a turbomachine operating phase.

5. Thermal management system for an aircraft turbomachine, characterized in that it comprises a heating device (12) according to any one of claims 1 to 4.

6. Aircraft turbomachine comprising a thermal management system according to claim 5.

7. A method for heating fuel in the fuel supply circuit of an aircraft turbomachine, wherein the fuel circulating in a fuel circulation loop (II) is heated by oil circulating in an oil circulation loop (I), and wherein, during a first phase of turbomachine operation, the thermal energy of the oil is stored in a material

8. phase change (PCM) in heat exchange relationship between the fuel circulation loop and the oil circulation loop and, during a second operating phase of the turbomachine, the thermal energy stored in the phase change material is returned to the fuel. A method according to claim 7, wherein when the temperature of the oil is lower than the temperature of the phase-change material, the oil is diverted from the phase-change material.

Citation Information

Patent Citations

  • Systems and methods for thermal management in a gas turbine powerplant

    US20110252764A1

  • Heated bypass valve for heat exchanger

    US20150048617A1

  • Gas turbine engine fluid heat management system

    US20160281603A1

  • Combination of a gas turbine engine and a power electronics

    US20230243306A1