Thrust generator

The thrust generating device addresses thrust and noise challenges in rotary-wing aircraft by dynamically controlling propeller pitch and speed, achieving high thrust with reduced noise and weight.

JP7789645B2Active Publication Date: 2025-12-22HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2022143525
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-09
Publication Date
2025-12-22
Estimated Expiration
2042-09-09

AI Technical Summary

Technical Problem

Existing rotary-wing aircraft face challenges in achieving high thrust without increasing weight or generating excessive noise, as maintaining low propeller speeds reduces thrust capacity and larger propellers increase aircraft weight.

Method used

A thrust generating device that controls propeller pitch angle and rotation speed using a controller to maintain low noise levels while increasing thrust, switching between two control modes: one that adjusts pitch angle at a constant speed and another that increases speed when needed.

Benefits of technology

The device effectively reduces noise and increases thrust capacity without excessive weight, ensuring rapid responsiveness and efficient thrust generation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a thrust generating device that makes it possible to reduce the occurrence of noise and obtain required thrust.SOLUTION: A controller 14 for a thrust generating device 10 executes one of first control of controlling thrust by changing the pitch angle of each blade 28 while maintaining the rotational speed of a propeller 26 at a reference value, or second control of allowing the thrust greater than the thrust generated in the first control to be generated by making the rotational speed of the propeller 26 larger than the reference value.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a thrust generating device that generates a thrust in the vertical direction. [Background technology]

[0002] Patent Document 1 discloses a rotary-wing aircraft, in which a controller (processor) generates a desired thrust by controlling the pitch angle of each blade of the propeller while maintaining a constant rotational speed of the propeller. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] U.S. Patent No. 10,336,436 Summary of the Invention [Problem to be solved by the invention]

[0004] According to the rotary wing aircraft of Patent Document 1, noise can be reduced by maintaining the propeller rotation speed at a low speed. However, when the propeller is maintained at a low speed, the upper limit of thrust is reduced, and it may not be possible to meet the demand for thrust. The upper limit of thrust can be increased by increasing the size of the propeller itself. However, a larger propeller is heavy, and this increases the weight of the aircraft.

[0005] The present invention aims to solve the above-mentioned problems. [Means for solving the problem]

[0006] One aspect of the present invention is a thrust generating device comprising: a propeller having one or more blades that generates vertical thrust on an aircraft; a motor that rotates the propeller; an actuator that changes the pitch angle of each of the blades; and a controller that controls the rotation speed of the propeller by controlling the motor and the pitch angle of each of the blades by controlling the actuator, wherein the controller executes one of a first control that controls thrust by changing the pitch angle of each of the blades while maintaining the rotation speed of the propeller at a reference value, and a second control that can generate thrust greater than the thrust generated by the first control by increasing the rotation speed of the propeller above the reference value. [Effects of the Invention]

[0007] According to the present invention, it is possible to reduce the chances of noise generation and obtain the required thrust. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a diagram showing the configuration of a thrust generating device. [Figure 2] FIG. 2 is a functional block diagram of the control unit in the first embodiment. [Figure 3] FIG. 3 is a diagram showing the relationship between the propeller rotation speed and the thrust of the VTOL rotor for each pitch angle. [Figure 4] FIG. 4 is a diagram showing the relationship between the rotation speed and torque of the propeller for each pitch angle, and also showing the rated value of the torque of the motor. [Figure 5] FIG. 5 is a diagram for explaining a method for calculating the pitch angle. [Figure 6] FIG. 6 is a diagram for explaining a method for calculating the pitch angle and the rotation speed. [Figure 7] FIG. 7 is a functional block diagram of a control unit in the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] [1 Configuration of thrust generating device 10] FIG. 1 is a configuration diagram of a thrust generating device 10. The thrust generating device 10 is provided in a VTOL aircraft. The VTOL aircraft has multiple VTOL rotors 18 and multiple cruise rotors. Each VTOL rotor 18 generates vertical thrust. Each cruise rotor generates horizontal thrust. The thrust generating device 10 controls the thrust of the VTOL rotors 18. In this embodiment, the thrust generating device 10 is provided in an electric vertical take-off and landing aircraft, a so-called eVTOL aircraft. However, the thrust generating device 10 may also be provided in a non-electric VTOL aircraft. Furthermore, the thrust generating device 10 may also be provided in a VTOL aircraft having a tilt rotor instead of the VTOL rotor 18 (and cruise rotor).

[0010] The thrust generating device 10 includes a sensor group 12, a controller 14, an inverter 16, and a VTOL rotor 18. The VTOL rotor 18 includes a motor 20, an actuator 22, a variable pitch mechanism 24, and a propeller 26. The propeller 26 includes one or more blades 28.

[0011] The sensor group 12 includes multiple sensors that detect the behavior of the eVTOL aircraft. For example, the sensor group 12 includes multiple angular velocity sensors, multiple acceleration sensors, and a velocity sensor. Some of the angular velocity sensors and acceleration sensors detect the angular velocity and angular acceleration around the yaw axis of the eVTOL aircraft. Some of the angular velocity sensors and acceleration sensors detect the angular velocity and angular acceleration around the roll axis of the eVTOL aircraft. Some of the angular velocity sensors and acceleration sensors detect the angular velocity and angular acceleration around the pitch axis of the eVTOL aircraft. The velocity sensor detects airspeed.

[0012] The controller 14 controls the motors 20 and the actuators 22. The controller 14 may be a flight controller for the eVTOL aircraft. Alternatively, the controller 14 may be a slave controller managed by the flight controller. Alternatively, the controller 14 may include both a flight controller and a slave controller. The controller 14 includes a control unit 30, a memory unit 32, a motor driver 34, and an actuator driver 36.

[0013] The control unit 30 has a processing circuit. The processing circuit may be a processor such as a CPU or a GPU. The processing circuit may be an integrated circuit such as an ASIC or an FPGA. The processor can perform various processes by executing programs stored in the storage unit 32. At least some of the processes may be performed by electronic circuits including discrete devices.

[0014] The storage unit 32 has a volatile memory and a non-volatile memory. Examples of the volatile memory include RAM. The volatile memory is used as a working memory for the processor. The volatile memory temporarily stores data required for processing or calculation. Examples of the non-volatile memory include ROM and flash memory. The non-volatile memory is used as a storage memory. The non-volatile memory stores programs, tables, maps, etc. At least a part of the storage unit 32 may be provided in the processor, integrated circuit, etc. described above.

[0015] The nonvolatile memory stores a reference value for the rotation speed of each propeller 26. The reference value is the rotation speed of the propeller 26 that is maintained in the first control described below. The reference value is set based on the perspectives of reducing noise generated by the rotation of the propeller 26 and generating the required thrust. The nonvolatile memory also stores a pitch angle calculation map 38. The pitch angle calculation map 38 will be described below in [2-2].

[0016] The motor driver 34 outputs an on / off signal to each switching element of the inverter 16 in response to a motor control signal output from the control unit 30. The actuator driver 36 supplies power to the actuator 22 in response to an actuator control signal output from the control unit 30.

[0017] The inverter 16 has an inverter circuit. The inverter circuit has a plurality of switching elements. A primary terminal of the inverter circuit is connected to a power supply (not shown). A secondary terminal of the inverter circuit is connected to the motor 20. The inverter circuit can convert DC power output from the power supply into AC power and output it to the motor 20.

[0018] The motor 20 is, for example, a three-phase motor. The rotating shaft of the motor 20 is connected to the hub of the propeller 26. The motor 20 rotates the propeller 26. The actuator 22 operates the variable pitch mechanism 24 to change the pitch angle of each blade 28.

[0019] [2 First Embodiment] [2-1 Functions of the control unit 30] FIG. 2 is a functional block diagram of the control unit 30 in the first embodiment. The control unit 30 can execute either the first control or the second control as thrust control. The control unit 30 can also switch from the first control to the second control and from the second control to the first control as appropriate. In the first control, the control unit 30 controls the thrust by varying the pitch angle of each blade 28 while maintaining the rotation speed of the propeller 26 at a reference value. In the second control, the control unit 30 generates a thrust greater than that generated in the first control by increasing the rotation speed of the propeller 26 above the reference value. The control unit 30 executes the first control as much as possible and switches from the first control to the second control only when the required thrust cannot be obtained in the first control. Note that, as used herein, "thrust" refers to a thrust in the vertical direction unless otherwise specified.

[0020] The control unit 30 has a function of executing first control and second control as thrust control. As an example, the control unit 30 executes a program stored in the storage unit 32 to function as a thrust calculation unit 40, a pitch angle calculation unit 42, a pitch angle control unit 44, a rotation speed determination unit 46, and a rotation speed control unit 48.

[0021] The thrust calculation unit 40 calculates the required thrust in response to the operation command. This thrust value is called the thrust requirement value. The operation command is output based on, for example, the operation of a control stick. The operation command is also output by an autopilot system or the like. The formula or map for calculating the thrust is stored in the memory unit 32.

[0022] The pitch angle calculation unit 42 obtains the required thrust value from the thrust calculation unit 40 and obtains the reference value of the rotation speed of the propeller 26 from the storage unit 32. The pitch angle calculation unit 42 calculates the pitch angle of the blades 28 and the rotation speed of the propeller 26 to obtain the required thrust value. For example, the pitch angle calculation unit 42 uses the pitch angle calculation map 38 stored in the storage unit 32. The calculation of the pitch angle and rotation speed will be described below in [2-2].

[0023] The pitch angle control unit 44 obtains the calculated value of the pitch angle from the pitch angle calculation unit 42. The pitch angle control unit 44 outputs an actuator control signal to the actuator driver 36 to bring the pitch angle of the blades 28 closer to the value calculated by the pitch angle calculation unit 42. The pitch angle control unit 44 may perform feedback control, for example, using the value calculated by the pitch angle calculation unit 42 as a target value.

[0024] The rotation speed determination unit 46 acquires the calculated value of the rotation speed from the pitch angle calculation unit 42 and also acquires a reference value of the rotation speed of the propeller 26 from the storage unit 32. The rotation speed determination unit 46 determines the rotation speed of the propeller 26 based on the calculation result of the pitch angle calculation unit 42. When the pitch angle calculation unit 42 does not calculate a rotation speed that exceeds the reference value, the rotation speed determination unit 46 sets the rotation speed of the propeller 26 to the reference value. In this way, the first control is executed. On the other hand, when the pitch angle calculation unit 42 calculates a rotation speed that exceeds the reference value, the rotation speed determination unit 46 sets the rotation speed of the propeller 26 to the value calculated by the pitch angle calculation unit 42. In this way, the second control is executed.

[0025] The rotation speed control unit 48 obtains the determined value of the rotation speed from the rotation speed determination unit 46. The rotation speed control unit 48 outputs a motor control signal to the motor driver 34 in order to bring the rotation speed of the propeller 26 closer to the value determined by the rotation speed determination unit 46. The rotation speed control unit 48 may perform feedback control, for example, using the value determined by the rotation speed determination unit 46 as a target value.

[0026] [2-2 Calculation of pitch angle and rotation speed using pitch angle calculation map 38] FIG. 3 is a diagram showing the relationship between the rotation speed of the propeller 26 and the thrust of the VTOL rotor 18 for each pitch angle. In FIG. 3, each of the multiple solid lines indicates the relationship between the rotation speed and thrust at a different pitch angle. FIG. 4 is a diagram showing the relationship between the rotation speed and torque of the propeller 26 for each pitch angle, as well as the rated torque value of the motor 20. In FIG. 4, each of the multiple solid lines indicates the relationship between the rotation speed and torque at a different pitch angle. Also, in FIG. 4, each of the multiple dashed lines indicates the relationship between the rotation speed and torque at a different thrust. As shown in FIGS. 3 and 4, thrust is correlated with the pitch angle of the blades 28 and the rotation speed of the propeller 26. The pitch angle calculation map 38 associates the thrust of the VTOL rotor 18, the pitch angle of the blades 28, and the rotation speed of the propeller 26 based on this correlation.

[0027] Furthermore, in the pitch angle calculation map 38, an upper limit value (UL) of the pitch angle is set for each rotation speed. In FIGS. 3 and 4, the dashed-dotted lines indicate the upper limit value (UL) of the pitch angle for each rotation speed. For example, as shown in FIG. 4, the upper limit value (UL) is set to a pitch angle at which the torque of the motor 20 is smaller than the rated value (RA). In other words, a predetermined torque difference is set between the torque of the motor 20 corresponding to the upper limit value (UL) and the rated value (RA). This torque difference is referred to as the margin torque (T). Any value can be set as the upper limit value (UL). Note that in FIG. 4, the upper limit value (UL) is a constant value. Alternatively, the upper limit value (UL) may be a variable value that changes in accordance with changes in the rotation speed. For example, in FIG. 4, the upper limit value (UL) may be a variable value that increases as the rotation speed increases. The margin torque (T) is set for the following reason. In order to increase the rotation speed of the propeller 26, a torque that can overcome inertia is required. If the propeller 26 rotates with the pitch angle exceeding the upper limit (UL), there will be a shortage of torque required to increase the rotation speed of the propeller 26. This will result in poor responsiveness of the propeller 26. In the first embodiment, a surplus torque (T) is set to prevent poor responsiveness of the propeller 26 when it is necessary to increase the rotation speed of the propeller 26.

[0028] As described above, in the first embodiment, a reference value is set as the rotation speed of the propeller 26. Furthermore, a required thrust value is calculated by the thrust calculation unit 40. The pitch angle calculation unit 42 calculates the pitch angle corresponding to the required thrust value and the reference value by using the pitch angle calculation map 38.

[0029] FIG. 5 is a diagram illustrating a method for calculating the pitch angle. FIG. 5 is also a diagram illustrating the first control. For example, assume that the pitch angle calculation unit 42 acquires a thrust request value (Tr1) and a reference value (Rr). The thrust request value (Tr1) and the reference value (Rr) correspond to a pitch angle (Pa1). The pitch angle (Pa1) is smaller than the upper limit value (UL1) corresponding to the reference value (Rr). In this case, the pitch angle calculation unit 42 calculates the pitch angle (Pa1) corresponding to the thrust request value (Tr1) and the reference value (Rr) by using the pitch angle calculation map 38.

[0030] FIG. 6 is a diagram for explaining a method for calculating the pitch angle and rotation speed. FIG. 6 is also a diagram for explaining the second control. For example, assume that the pitch angle calculation unit 42 acquires a thrust request value (Tr2) and a reference value (Rr). The thrust request value (Tr2) and the reference value (Rr) correspond to a pitch angle (Pa2). The pitch angle (Pa2) is greater than the upper limit value (UL1) corresponding to the reference value (Rr). In this case, the pitch angle calculation unit 42 uses the pitch angle calculation map 38 to calculate the pitch angle when the torque is equal to or less than a predetermined value (in this embodiment, the torque is equal to or less than the upper limit value (UL1)). Torque corresponding to Among the combinations of rotation speed and pitch angle that provide a thrust equal to the required thrust value (Tr2), the combination that provides the minimum rotation speed is selected. The pitch angle calculation unit 42 calculates the pitch angle (Pa3) and rotation speed (R3) as shown in FIG. 6.

[0031] The control unit 30 switches the thrust control from the first control to the second control when the state shown in Fig. 5 (first control execution state) changes to the state shown in Fig. 6 (second control start state). In the above example, the control unit 30 switches the thrust control from the first control to the second control when the thrust requirement value changes from (Tr1) to (Tr2). In this way, the control unit 30 switches the thrust control from the first control to the second control when the pitch angle corresponding to both the thrust requirement value and the reference value exceeds the upper limit value (UL) corresponding to the reference value while the first control is being executed.

[0032] Furthermore, the control unit 30 switches the thrust control from the second control to the first control when the state shown in FIG. 6 (second control execution state) changes to the state shown in FIG. 5 (first control start state). In other words, the control unit 30 switches the thrust control from the second control to the first control when the thrust requirement value changes from (Tr2) to (Tr1). In this way, the control unit 30 switches the thrust control from the second control to the first control when the pitch angle corresponding to both the thrust requirement value and the reference value becomes equal to or less than the upper limit value (UL) corresponding to the reference value while the second control is being executed. Note that the condition for switching from the second control to the first control may be another condition.

[0033] According to the first embodiment, noise can be suppressed by executing the first control. Also, according to the first embodiment, a large thrust can be obtained by executing the second control in response to a large thrust request value. Therefore, according to the first embodiment, it is possible to reduce the chance of noise generation and obtain the required thrust.

[0034] Furthermore, according to the first embodiment, an upper limit (UL) is set for the pitch angle, so there is always a torque margin in the motor 20. Therefore, according to the first embodiment, the rotation speed of the propeller 26 can be increased quickly.

[0035] [3 Second embodiment] FIG. 7 is a functional block diagram of the control unit 30 in the second embodiment. The second embodiment is an application example of the first embodiment. In the second embodiment, the control unit 30 has, in addition to the functions of the first embodiment, a function of increasing the rotation speed of the propeller 26 in advance regardless of the required thrust value. In the second embodiment, the same components as those in the first embodiment are denoted by the same reference numerals, and their description will be omitted.

[0036] The control unit 30 functions as a thrust calculation unit 40, a pitch angle calculation unit 42, a pitch angle control unit 44, a rotation speed determination unit 46, and a rotation speed control unit 48. Furthermore, the control unit 30 functions as a state determination unit 50 and a rotation speed selection unit 52.

[0037] The state determination unit 50 determines whether a state requiring a large thrust has occurred. If it is predicted that a large thrust will be required, it is preferable to increase the rotation speed of the propeller 26 in advance. When a large thrust is required, the state determination unit 50 sets a value larger than the reference value. This value is called a correction reference value. The correction reference value may be a constant value or a variable value. The variable value may be set for each of the following cases in which a large thrust is required.

[0038] For example, if the attitude (yaw, roll, pitch) of the aircraft changes significantly, it is predicted that a large thrust will be required. The state determination unit 50 monitors the attitude of the aircraft based on the detection values ​​of the sensor group 12. When the amount of yaw change per unit time exceeds a predetermined threshold (change amount threshold), the state determination unit 50 temporarily sets a correction reference value instead of the reference value. The state determination unit 50 also performs the same processing for roll and pitch as for yaw. This allows the required thrust to be obtained quickly.

[0039] For example, if the speed (airspeed) of the aircraft decreases significantly, it is predicted that a large thrust will be required. The state determination unit 50 monitors the speed of the aircraft based on the detection values ​​of the sensor group 12. When the deceleration rate per unit time exceeds a predetermined threshold (change rate threshold), the state determination unit 50 temporarily sets a correction reference value instead of the reference value. This allows the required thrust to be obtained quickly.

[0040] For example, if the number of times the first control is switched to the second control reaches a threshold value, it is predicted that a large thrust force will be required. When the number of times the first control is switched to the second control within a predetermined time period reaches the threshold value, the state determination unit 50 temporarily sets a correction reference value instead of the reference value. This makes it possible to prevent frequent mutual switching between the first control and the second control within a short period of time.

[0041] For example, a pilot may request a large thrust. In this case, a switch that can be operated by the pilot may be provided in the cockpit. In response to the switch operation, the state determination unit 50 temporarily sets a correction reference value instead of the reference value.

[0042] The rotation speed selection unit 52 acquires a reference value for the rotation speed of the propeller 26 from the memory unit 32, and acquires a correction reference value from the state determination unit 50. The rotation speed selection unit 52 selects the larger of the reference value and the correction reference value as the selected value. For example, when a large thrust is not required, the state determination unit 50 does not set a correction reference value. In this case, the rotation speed selection unit 52 selects the reference value. On the other hand, when a large thrust is required, the state determination unit 50 sets a correction reference value. In this case, the rotation speed selection unit 52 selects the correction reference value as the selected value.

[0043] The pitch angle calculation unit 42 and the rotation speed determination unit 46 in the first embodiment acquire a reference value from the storage unit 32. In contrast, the pitch angle calculation unit 42 and the rotation speed determination unit 46 in the second embodiment acquire a selected value from the rotation speed selection unit 52. Except for this point, the subsequent processing in the second embodiment is the same as the processing in the first embodiment.

[0044] In the second embodiment, when a state requiring a large thrust occurs, the state determination unit 50 sets a correction reference value greater than the reference value. As a result, the rotation speed of the propeller 26 increases. In other words, in the second embodiment, when a state requiring a large thrust occurs, the control unit 30 switches the thrust control from the first control to the second control.

[0045] According to the second embodiment, the same effects as those of the first embodiment can be obtained.

[0046] [4 Inventions Obtained from the Embodiments] The invention that can be understood from the above embodiment will be described below.

[0047] An aspect of the present invention is a thrust generating device (10) comprising: a propeller (26) having one or more blades (28) that generates vertical thrust on an aircraft; a motor (20) that rotates the propeller; an actuator (22) that changes the pitch angle of each of the blades; and a controller (14) that controls the rotation speed of the propeller by controlling the motor and the pitch angle of each of the blades by controlling the actuator, wherein the controller executes one of a first control that controls thrust by changing the pitch angle of each of the blades while maintaining the rotation speed of the propeller at a reference value, and a second control that can generate thrust greater than the thrust generated by the first control by increasing the rotation speed of the propeller above the reference value.

[0048] According to the above configuration, it is possible to reduce the chance of noise generation and obtain the required thrust.

[0049] In the above aspect, the controller may switch from the first control to the second control in response to a predetermined condition being met during execution of the first control, and execute the second control.

[0050] In the above aspect, the controller may switch from the first control to the second control in response to the pitch angle exceeding a predetermined upper limit (UL), and execute the second control.

[0051] According to the above configuration, it is possible to further reduce the chances of noise generation.

[0052] In the above aspect, the upper limit value may be set to a pitch angle that makes the torque of the motor smaller than a rated value (RA).

[0053] According to the above configuration, it is possible to prevent the responsiveness of the propeller from becoming poor.

[0054] In the above aspect, after switching from the first control to the second control, the controller may switch from the second control to the first control in response to a thrust demand value falling below a demand threshold, and execute the first control.

[0055] In the above aspect, the controller may maintain the second control regardless of the required thrust value when the number of times the first control is switched to the second control reaches a predetermined threshold value.

[0056] According to the above configuration, it is possible to prevent frequent mutual switching between the first control and the second control within a short period of time.

[0057] In the above aspect, the controller is configured to: Monitor and the amount of change in attitude or the amount of change in velocity is strange The control may be switched from the first control to the second control when the amount of change exceeds a threshold value.

[0058] According to the above configuration, the required thrust can be obtained quickly.

[0059] The present invention is not limited to the above disclosure, and various configurations can be adopted without departing from the gist of the present invention. [Explanation of symbols]

[0060] 10...Thrust generating device 14...Controller 20...Motor 22...Actuator 26...Propeller 28...Blade

Claims

1. a propeller having one or more blades for generating vertical thrust on the aircraft; a motor that rotates the propeller; an actuator for varying the pitch angle of each of the blades; a controller that controls the motor to control the rotation speed of the propeller and the actuator to control the pitch angle of each of the blades; A thrust generating device comprising: The controller executes one of a first control that controls thrust by changing the pitch angle of each of the blades while maintaining the rotation speed of the propeller at a reference value, and a second control that can generate a thrust greater than the thrust generated by the first control by increasing the rotation speed of the propeller above the reference value, and switches from the first control to the second control when the pitch angle exceeds a predetermined upper limit value, thereby executing the second control.

2. 2. The thrust generating device according to claim 1, A thrust generating device, wherein the upper limit value is set to a pitch angle that makes the torque of the motor smaller than a rated value.

3. 3. The thrust generating device according to claim 1 or 2, the controller switches from the second control to the first control in response to a thrust demand value falling below a predetermined demand threshold after switching from the first control to the second control, and executes the first control.

4. 4. The thrust generating device according to claim 3, The controller maintains the second control regardless of the required thrust value in response to a predetermined threshold value being reached when the number of times the first control is switched to the second control reaches a predetermined threshold value.

Citation Information

Patent Citations

  • Flight safety system

    JP2017136879A

  • Flight device

    JP2019010968A

  • Torque and thrust control of a propeller

    US10336436B2