Marine Propulsion Systems

The marine propulsion system optimizes lift coefficient and efficiency by using an intake sail with sensors and a control unit to adapt to wind conditions, addressing mechanical complexity and power draw issues in wind-powered systems.

JP7808581B2Active Publication Date: 2026-01-29FLY TO THE OCEAN LTD
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Patent Information

Application Number
JP2023180728
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-03-26
Filing Date
2023-10-20
Publication Date
2026-01-29
Estimated Expiration
2040-03-25

AI Technical Summary

Technical Problem

Existing wind-powered propulsion systems face limitations in lift coefficient optimization due to mechanical complexity, weight, and efficiency, particularly with rigid intake sails, which are less effective against headwinds and require constant power draw.

Method used

A marine propulsion system with an intake sail equipped with sensors, a control unit, and a drive unit that autonomously or semi-autonomously adjusts the intake sail's operation based on environmental and operational data to optimize lift coefficient and efficiency.

Benefits of technology

The system enhances lift coefficient, reduces size and weight, lowers production costs, and improves fuel economy by minimizing power consumption and adapting to varying wind conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a propulsion system for a ship capable of optimizing ship propulsion performance using a suction sail.SOLUTION: A ship propulsion system for a ship in one embodiment of the present invention comprises at least one suction sail (3), a suction system (10), and a driving part (8) to drive the rotation of at least the one suction sail (3). At least the one suction sail (3) comprises multiple sensors (12, 13, 14, 15) connected to a control part (9) and the control part (9) determines operation of the suction system (10) and the driving part (8).SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to marine propulsion systems, and more particularly to marine propulsion systems having one or more intake sails. [Background technology]

[0002] The use of marine propulsion systems called Wind-Powered Propulsion Systems (WAPS) is known, the performance of which is related to the aerodynamic force (lift) that the system is able to generate. This force is directly related to the aerodynamic properties of the system, such as the aerodynamic coefficient of the system, the surface of the system, and the current wind speed. The lift coefficient depends on two main variables: the geometry of the aerodynamic profile (asymmetric, paired, symmetric) and the angle of attack (defined as the angle between the profile chord and the direction of the airflow).

[0003] The first variable is the shape of the aerodynamic profile. A symmetric profile has an axis of symmetry collinear with the chord of the profile itself. This type of profile produces no asymmetry in the airflow around it when the angle of attack is zero, and therefore has a zero lift coefficient because there is no pressure difference. Adding asymmetries to the aerodynamic profile creates pressure differences in the airflow around the profile, resulting in a higher lift coefficient. However, these asymmetries are rarely applicable to WAPS, as they must function in any wind direction.

[0004] The main limitation of implementing an asymmetric profile to increase the lift coefficient is the increased complexity of the WAPS mechanical system, resulting in higher cost and weight. The second variable is the angle of attack; for an angle of attack equal to 0, the airflow around the aerodynamic profile is substantially free of turbulence, resulting in almost zero lift. As the angle of attack increases, the lift coefficient increases linearly. At the same time, turbulence appears, starting from the trailing edge.

[0005] There is a maximum lift angle of attack where turbulence and its effects are relevant. Finally, once the maximum sustained angle of attack is exceeded, an effect known as stall occurs: the sudden separation of the airflow attached to the profile, which causes a rapid reduction in lift. In this case, the limit on the maximum lift coefficient is related to the sudden separation and loss of the flow boundary layer.

[0006] In wind-powered propulsion systems (WAPS), the use of rigid intake sails is known, the purpose of which is to maximize the lift coefficient by controlling the effects induced by the two variables mentioned above. Starting from the angle of attack, if the separation of the boundary layer around the profile can be delayed relative to the angle of attack, a higher lift coefficient can be obtained. This can be achieved by drawing airflow from the top of the profile and ensuring that the airflow remains attached to the sail surface for high angles of attack. This process is described in detail below.

[0007] When the original angle of attack for maximum lift is reached (without intake), some of the airflow on the outer surface is aspirated. Intake increases the angle of attack, but also attaches the boundary layer to the profile, delaying stall, which means an increase in lift coefficient. Due to the suction of the airflow, the separation point remains approximately constant as the angle of attack (and therefore the angle of attack) increases. As a result, behind that flow release point, the structure and shape of the profile are not required and can be eliminated, reducing the size of the profile.

[0008] Finally, since separation is controlled by the intake, the shape of the profile can be modified by introducing significant asymmetry. The best solution to achieve this effect is through a "moving trailing edge" called a flap. The flaps can be positioned in two different positions (one on each side of the aerodynamic profile chord), creating asymmetry towards one side or the other, allowing them to adapt to any wind direction.

[0009] Rigid intake sails offer substantial improvements over rigid passive sails, increasing the lift coefficient of the sail and improving the efficiency of rigid sails in terms of thrust per unit area of ​​the sail. These improvements have many advantages. The higher the lift coefficient, the smaller the size of the rigid sail required to provide the same thrust and therefore the same fuel economy. Miniaturization means reducing the material costs of the structure and shortening the production time per unit time, which leads to lower production costs.

[0010] The reduction in size and materials used also reduces the weight of each unit, which has a positive impact on the stability and storage capacity of the boat. This reduction can be up to 50% by weight. Smaller systems allow more units to be installed in the same available deck space, increasing the maximum potential reduction in fuel consumption for a single vessel. Also, a smaller system means less impact on visibility requirements.

[0011] On the other hand, rigid intake sails present certain limitations, most of which are related to the intake system itself. The main limitations are: Air intake requires an active pump or fan constantly drawing in air. This creates a constant power draw to keep the system operational. It is important to note that this power draw is a very small fraction of the thrust provided by the sail. The area of ​​the rigid sail surface where boundary layer inhalation is to occur has a specific critical location and it is very important to ensure that the rest of the rigid sail surface is sealed.

[0012] The performance of a rigid intake sail against a headwind is lower because in this operating scenario, air resistance becomes more relevant to thrust. As a result, rigid intake sails are suitable for vessels with the following characteristics: Vessels with limited deck space Unstable vessels Vessels with limited visibility No folding system is required, so no prop restrictions are imposed on vessels Fishing vessels fit these characteristics perfectly.

[0013] It is therefore an object of the present invention to provide a propulsion system for watercraft that enables those watercraft to use intake sails to optimize their performance. Summary of the Invention

[0014] The propulsion system of the present invention overcomes the above-mentioned drawbacks and provides other advantages as described below. The marine propulsion system of the present invention comprises at least one intake sail, an intake system, and a drive unit that drives the rotation of the at least one intake sail, the at least one intake sail having a plurality of sensors connected to a control unit, and the control unit determines the operation of the intake system and the drive unit. Such operations may be autonomous or semi-autonomous, i.e., with very little interaction with the crew.

[0015] Advantageously, such a plurality of sensors includes at least one wind direction sensor, at least one sensor for the rotation of the intake sail, at least one sensor for the position of the flap of the intake sail, and / or at least one intake sensor. Additionally, the control preferably includes a user interface for a user to interact with the control.

[0016] If desired, the propulsion system may further comprise a manual control connected to the intake system and the drive for manual control of the propulsion system. Advantageously, the intake sail comprises a rigid or flexible outer coating and an intake area provided with a plurality of holes. Preferably, the drive section is an electric or hydraulic drive unit located at the lower end of the intake sail and driven by a power section.

[0017] The intake sail further includes a support structure at the lower end of the intake sail to support the weight of the intake sail and to limit lateral movement of the intake sail. According to a possible embodiment, the lower part of the intake sail is provided with a tilting support that allows the intake sail to be tilted relative to the vertical, i.e., to be tilted relative to a substantially horizontal axis. The marine propulsion system according to the present invention can automatically optimize the operation of the intake sail based on the data collected by the sensors.

[0018] If the intake system is a single fan or multiple fans, the intake can be adjusted along the intake zones according to each zone. Also, multiple inhalation regions can be created, allowing the pressure gradient (and therefore the inhalation) to control the aspirated flow. The invention allows the movement / positioning of the flaps to be active (by motors and gears, by cables) or passive (mechanically positioned to one side or the other depending on the (vertical) rotation of the intake sail). [Brief explanation of the drawings]

[0019] For a better understanding of what is disclosed, several drawings are included, which show, diagrammatically and by way of non-limiting example only, practical cases of embodiments. [Figure 1] 1 is a side view of a vessel incorporating a propulsion system according to the present invention; [Figure 2] FIG. 1 is a side view of an intake sail used in a propulsion system according to the present invention. [Figure 3]FIG. 2 is a perspective view from below of an intake sail used in the propulsion system according to the present invention. [Figure 4] FIG. 1 is a top view of an intake sail used in a propulsion system according to the present invention, showing the intake system. [Figure 5] 1 is a cross-sectional view of an intake sail for use in a propulsion system according to the present invention, showing the drive and power sections. [Figure 6] FIG. 10 is a bottom view of an intake sail used in the propulsion system of the present invention, according to an alternative embodiment, where the intake sail is tilted relative to a substantially horizontal axis. [Figure 7] 1 is a block diagram of components constituting a propulsion system according to the present invention; [Figure 8] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. [Figure 9] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. [Figure 10] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. [Figure 11] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. [Figure 12] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. [Figure 13] FIG. 1 is a diagram illustrating a method for controlling a propulsion system according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0020] FIG. 1 shows a vessel 2 equipped with a propulsion system according to the invention. The propulsion system comprises at least one intake sail 3 including an outer coating 4, which may be rigid or flexible, and the intake sail 3 may rotate about a longitudinal axis 5 of the intake sail 3. The intake sail 3 also comprises at least one flap 6 which can be rotated between different positions and at least two intake areas 7 which are provided with a plurality of holes.

[0021] The intake sail 3 also comprises an intake system 10, which may be of the fan type or equivalent, that draws part of the airflow from the outer face of the profile, and at least one drive 8, which may be electric or hydraulic, for rotating the intake sail 3, with an electric or hydraulic power unit 18 that drives the drive 8.

[0022] Furthermore, the intake sail 3 is connected to the deck of the vessel 2 using a support structure 17, which may include a gear mechanism or a bearing-equipped structure, which is capable of supporting the entire weight and limiting the lateral movement of the intake sail 3.

[0023] FIG. 6 shows an alternative embodiment in which the lower part of the intake sail 3 is provided with a tilting support 19 which, by driving a motor 20, allows the intake sail to be tilted vertically, i.e., substantially relative to a horizontal axis.

[0024] As can be seen from the block diagram of Figure 7, the propulsion system according to the present invention also comprises a control unit 9 which autonomously controls the drive unit 8 and the intake system 10 from information received from a number of sensors 12, 13, 14, 15 or manually by a manual control unit 16, as will be described below. To this end, the control unit 9 is accessible to the user to adjust the autonomous or manual mode of the effective propulsion provided by the intake sail 3 .

[0025] As shown herein, the propulsion system according to the present invention comprises a plurality of sensors selected from: - a wind sensor 12 for measuring wind speed and direction, such as an anemometer for measuring wind speed and a wind vane for measuring direction, and / or an inertial sensor / inclinometer for measuring the vessel's inclination - a rotation sensor 13 for real-time knowledge of the angular position of the intake sail 3 relative to the longitudinal axis 5 of the vessel 2; - a position sensor 14 for determining the position of the flap 6 between its possible operating positions; - Intake sensor 15. The intake sensor 15 detects the power and / or pressure to know the intake power provided by the intake system 10 by drawing air through a plurality of holes in the intake area 7 to create a corresponding pressure difference between the inner and outer areas of the intake sail 3.

[0026] The control unit also includes: Data collection system, processor, Autonomous control logic, a drive system that sends drive signals to the power unit and the intake system; Control / monitoring man-machine interface, i.e., control and communication system for implementing autonomous control and monitoring of the results obtained; Man-machine interface for manual operation.

[0027] The data acquisition system constituted by these sensors 12, 13, 14, 15 allows the monitoring of environmental variables such as wind, air pressure, temperature and humidity, as well as operational variables (rotation speed, internal pressure, flow direction). The control unit also allows monitoring of reference system (vessel) variables such as speed, position, inertial unit and propulsion unit characteristics (spin, flow, torque and thrust). The control unit 9 is responsible for all data being received and processed to obtain the optimal control solution, as well as generating a system health index for predictive maintenance.

[0028] Examples of uses for the propulsion systems disclosed herein are described below. An intake sail is able to generate a high lift coefficient (aerodynamic force) by drawing in a certain amount of air from the boundary layer (the region of air near the surface of the sail) on the outer surface (top / front of the sail) where the airflow separates and keeps the profile from stalling (a condition where lift is no longer produced). This intake is via one or more intake zones, creating a pressure drop from inside the sail that draws air in from the outside.

[0029] The size of the boundary layer, and therefore the amount of air drawn in, is a function of the Reynolds number (Re).

number

[0030] The Reynolds number is determined by: - Air velocity (V) - Air pressure (P ∞ ) and the density of air (ρ), which is determined by the temperature (T) - Dynamic viscosity of air (μ) determined by air temperature (T) - Characteristic length (e.g., distance traveled by air).

[0031] If less boundary layer is inhaled than required, this will result in boundary layer separation. If more boundary layer is inhaled, the excess will be inhaled, thus wasting intake power. To enable the intake sail to operate efficiently and optimally, avoiding unwanted separation and excessive power consumption, as we have seen, the amount of boundary layer air being aspirated must be precisely controlled, along with the speed, temperature and air pressure at each instant.

[0032] The control variable for this is the so-called Suction Pressure Coefficient (SPC), which is defined as follows:

number

[0033] where: P ∞ - is the outside air pressure, P a - is the suction pressure, i.e., the internal pressure of the sail. The principle of the control logic is to obtain the desired C for all operating states. pa P required to obtain (design) a The object is to control the vacuum motor so as to achieve the above.

[0034] (Control Option 1) This first autonomous control option, shown in Figure 8, is based on the use of two sensor groups. - Several sensors to measure wind, in particular wind speed (V) and direction relative to the bow (β) - Environmental / atmospheric conditions, especially temperature (T) and pressure (P ∞ ) multiple sensors for measuring.

[0035] To control the sail rotation and flap position, the control system follows the following steps: - Take a wind direction reading (β). - That wind direction (β) has an associated angle of attack (AoA) of the desired / target sail and a desired / target flap position. This relationship β-AoA is predefined (e.g., tabulated) in the system according to the sail design and control logic. - The control system acts on multiple actuators for sail rotation and flap positioning, bringing the sails and flaps into new desired positions by reading different rotation and position sensors.

[0036] For intake control, the control system follows the following steps: - Wind speed (V), temperature (T), pressure (P ∞ ) is read. - Density (ρ), dynamic pressure (P D ) and Reynolds number (Re). - This Reynolds number (Re) is the desired / target intake pressure coefficient (C pa ) associated with this Re - C pa The ratios are predefined (eg, tabulated) in the system according to the sail design and control logic. - The desired pressure increase (ΔP) is calculated. The intake system operating curve defines the operating conditions (e.g., rpm, power, power, etc.) that will provide a specific ΔP. - The control system acts on the intake actuator to operate it under conditions (e.g., rpm, power, power, etc.) that produce the desired ΔP, where the ΔP-intake force (rpm, power, power, etc.) ratio is predefined (e.g., tabulated) in the system according to the sail design and control logic.

[0037] (Control Option 2) This second autonomous control option, shown in Figure 9, is based on the use of three sensor groups. - Several sensors to measure wind, in particular wind speed (V) and direction relative to the bow (β) - Environmental / atmospheric conditions, especially temperature (T) and pressure (P ∞ ) multiple sensors for measuring - Pitot tube with multiple pressure sensors. One of these pressure sensors measures dynamic pressure (P d ) and the other measures the intake pressure (P a ) and static pressure (P ∞ ) and thus obtain the pressure rise (ΔP) between the inside and outside of the vessel. The presence of one or more pressure sensors makes it possible to divide the measurement range into smaller subranges, adjusting each sensor to its subrange, thus improving the measurement accuracy.

[0038] To control the rotation of the sail and the position of the wings, the control system follows the following steps: - Take a wind direction reading (β). - That wind direction (β) has an associated angle of attack (AoA) of the desired / target sail and a desired / target flap position. This relationship β-AoA is predefined (e.g., tabulated) in the system according to the sail design and control logic. - The control system acts on multiple actuators for sail rotation and flap positioning, bringing the sails and flaps into new desired positions by reading different rotation and position sensors.

[0039] For intake control, the control system follows the following steps: - Wind speed (V), temperature (T), pressure (P ∞ ) is read. - Calculate density (ρ) and Reynolds number (Re). - This Reynolds number (Re) is the desired / target intake pressure coefficient (C pa ) associated with this Re - C pa The ratios are predefined (eg, tabulated) in the system according to the sail design and control logic. - Dynamic pressure (P) measured by the Pitot tube and pressure sensor assembly d ) and pressure rise value (ΔP). - Actual intake pressure coefficient (C pa ) is calculated. - The control system acts on the intake actuator (e.g., speed, power, power, etc.) to control the actual C pa Desired / Goal C pa Adjust to.

[0040] (Control Option 3) This third autonomous control option, shown in Figure 10, is based on the use of three sensor groups. - Several sensors to measure wind, in particular wind speed (V) and direction relative to the bow (β) - Environmental / atmospheric conditions, especially temperature (T) and pressure (P ∞ ) multiple sensors for measuring - Intake pressure (P a ) is measured by various pressure sensors. The presence of more than one pressure sensor makes it possible to divide the measurement range into smaller subranges, adjusting each sensor to its subrange and thus improving the measurement accuracy.

[0041] To control the sail rotation and flap position, the control system follows the following steps: - Take a wind direction reading (β). - That wind direction (β) has an associated angle of attack (AoA) of the desired / target sail and the desired / target wing position. This relationship β-AoA is predefined (e.g., tabulated) in the system according to the sail design and control logic. - The control system acts on multiple actuators for sail rotation and flap positioning, bringing the sails and flaps into new desired positions by reading different rotation and position sensors.

[0042] For intake control, the control system follows the following steps: - Wind speed (V), temperature (T), pressure (P ∞ ) is read. - Calculate density (ρ) and Reynolds number (Re). - This Reynolds number (Re) is the desired / target intake pressure coefficient (C pa ) associated with this Re - C pa The ratios are predefined (eg, tabulated) in the system according to the sail design and control logic. - Pressure reading (P ∞ ), intake pressure (P a ), wind speed (V), and calculated density (ρ). - Actual intake pressure coefficient (C pa ) is calculated. - The control system acts on the intake actuator (e.g., speed, power, power, etc.) to control the actual C pa Desired / Goal C pa Adjust to.

[0043] (Simple control option) Temperature (T) and pressure (P ∞ There is a simplified option for the control method shown in Figure 11 that is applicable to the three options mentioned above, which consists of excluding the measurement of atmospheric conditions (T) and taking predetermined constant values ​​for temperature (T) and density (ρ).

[0044] This simplifies the system architecture and data collection and processing. Instead, the desired / target intake coefficient (C pa ), desired / target pressure rise (ΔP) and / or actual intake coefficient (C pa ) is determined, which introduces errors in intake accuracy and leads to suboptimal operation.

[0045] An intermediate option would be to use the ISA (International Standard Atmosphere) equations, which allow relating the environmental variables temperature, pressure and density, so that by measuring only one of these three variables with a sensor, the other two can be calculated.

[0046] As an example, the steps followed by a control system for intake control according to option 1 are detailed below. - Temperature (T) and density (ρ) values ​​are predefined. - Take a wind speed reading (V). - Dynamic pressure (P D ) and Reynolds number (Re) are calculated, which now only depend / vary with the wind speed readout. - This Reynolds number (Re) is the desired / target intake pressure coefficient (C pa ) associated with this Re - C pa The ratios are predefined (eg, tabulated) in the system according to the sail design and control logic. - The desired pressure increase (ΔP) is calculated. The intake system operating curve defines the operating conditions (e.g., rpm, power, power, etc.) that will provide a specific ΔP. - The control system acts on the intake actuator to operate it under conditions (e.g., rpm, power, power, etc.) that produce the desired ΔP, where the ΔP-intake force (rpm, power, power, etc.) ratio is predefined (e.g., tabulated) in the system according to the sail design and control logic.

[0047] (Control Option 4) In this alternative control method, shown in Figure 13, the theoretical basis and principles of the control logic for sail rotation and flap position are the same as those detailed for the other three control methods. Any aerodynamic profile exposed to an airflow will have a pressure distribution (P skin ) The difference between the pressure distribution on either side of the profile is what generates the profile aerodynamic forces, namely lift and drag.

[0048] The surface pressure (P skin ) is dimensioned, the pressure coefficient (C P ), where the pressure coefficient is defined as

number

[0049] This pressure distribution (its shape and value) is determined only by the angle of attack (AoA). At the same time, the lift coefficient (C L ) is also determined only by the angle of attack (AoA), so the lift coefficient (C L ) and the surface pressure coefficient (C P ) can be clearly linked.

[0050] Given a known AoA, by extrapolating this to the intake sail, the surface pressure coefficient (C) can be determined at a given point when the intake is adequate. P ) should be. Surface pressure coefficient (C P ) is lower is a sign that the profile is stalling due to insufficient intake. This C P The difference in pressure may occur at any point along the profile chord, but for ease of detection it is preferable to choose a point where the pressure variation is more pronounced, which is close to the profile leading edge. Surface pressure coefficient (C) for various angles of attack (AoA) P This change in ) can be seen in Figure 12.

[0051] The principle of control logic is desirable in all operating situations (design) C P Measurement C is equal to P The object is to control the vacuum motor so as to achieve the above.

[0052] This autonomous control option, shown in Figure 13, is based on the use of three sensor groups. - Several sensors to measure wind, in particular wind speed (V) and direction relative to the bow (β) - Environmental / atmospheric conditions, especially temperature (T) and pressure (P ∞ ) multiple sensors for measuring - Various pressure sensors measure the surface pressure (P skin The presence of one or more pressure sensors makes it possible to divide the measurement range into smaller subranges, adjusting each sensor to its subrange, thus improving the measurement accuracy.

[0053] To control the sail rotation and flap position, the control system follows the following steps: - Take a wind direction reading (β). - This wind direction (β) is related to the desired / target angle of attack (AoA) of the sail, which is predefined in the system according to the sail design, and the desired / target flap position. - The control system acts on multiple actuators for wing rotation and flap positioning, bringing the wings and flaps to the new desired position by reading different rotation and position sensors.

[0054] For intake control, the control system follows the following steps: - Temperature (T) and pressure readout (P ∞ ) is taken. - Calculate the density (ρ). - Wind speed (V), pressure (P) along with calculated density (ρ) ∞ ) and surface pressure (P skin ) to take a readout. - Surface pressure coefficient (CPskin ) is calculated. - Take a wind direction reading (β). This wind direction (β) is related to the desired / target angle of attack (AoA) of the sail, which is predefined in the system according to the sail design, and the desired / target flap position. - The angle of attack (AoA) is determined by the desired target surface pressure coefficient (C Pskin ) - The control system acts on the intake actuator (e.g., speed, power, power, etc.) to control the actual C Pskin Desired / Goal C Pskin Adjust to.

[0055] Despite the fact that reference has been made to a specific embodiment of the invention, it will be clear to those skilled in the art that the described propulsion system is susceptible to numerous variations and modifications and that all the details mentioned can be replaced by other technically equivalents without departing from the scope of protection defined by the appended claims.

Claims

1. A vessel comprising at least one intake sail connected to a deck of the vessel and having an interior area; The at least one intake sail includes an intake system provided on the intake sail and configured to draw a portion of air flowing over a surface of the intake sail into the interior region, a drive unit configured to drive the rotation of the at least one intake sail, at least one flap rotatable between different positions, and a plurality of sensors connected to a control unit; The control unit determines the operation of the intake system and the drive unit; the plurality of sensors including at least one rotation sensor for the intake sail, at least one wind sensor for measuring wind speed and wind direction relative to the bow of the vessel, at least one intake sensor, and sensors for measuring environmental / atmospheric conditions including temperature and pressure; The control unit calculates a predefined intake pressure coefficient based on the actual intake pressure coefficient and the measured wind speed, temperature, and air pressure, and operates an intake actuator acting on the intake system to adjust the actual intake pressure coefficient to a desired intake pressure coefficient. Marine propulsion systems.

2. 2. The marine propulsion system according to claim 1, The control unit includes a user interface. Marine propulsion systems.

3. 2. The marine propulsion system according to claim 1, The marine propulsion system further includes a manual control connected to the air intake system and the drive. Marine propulsion systems.

4. 2. The marine propulsion system according to claim 1, The intake sail includes a rigid or flexible outer coating. Marine propulsion systems.

5. 2. The marine propulsion system according to claim 1, The intake sail includes two or more intake areas with a plurality of holes. Marine propulsion systems.

6. 2. The marine propulsion system according to claim 1, The drive unit is disposed at the lower end of the intake sail. Marine propulsion systems.

7. 10. A marine vessel propulsion system according to claim 1, further comprising: The drive section is an electric or hydraulic drive unit powered by a power section. Marine propulsion systems.

8. 2. The marine propulsion system according to claim 1, The intake sail has a support structure at its lower end. Marine propulsion systems.

9. 2. The marine propulsion system according to claim 1, The lower portion of the intake sail includes a tilting support that tilts the intake sail about a substantially horizontal axis. Marine propulsion systems.

10. 2. The marine propulsion system according to claim 1, pressure sensors for measuring surface pressure at one or more relevant points on the intake sail surface; Marine propulsion systems.

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