Boat with active suspension system
A boat having a deck and a hull includes a suspension for suspending the deck with respect to the hull. Sensors are employed to determine motion of the deck, with a controller adjusting the suspension such that it maintains the pose of the deck with respect to an inertial reference and with respect to pitch, roll, and heave of the deck.
1. A boat, comprising:
a hull configured for flotation on water;
a deck;
a suspension system positioned between the hull and the deck and configured to suspend the deck with respect to the hull, the suspension system further configured to accommodate pitch and roll motions of the deck with respect to the hull, the suspension system also being configured to accommodate a heave motion of at least three feet of the deck with respect to the hull, the suspension system comprising a plurality of springs;
a sensor configured to determine at least one inertial reference parameter of the deck, the sensor comprising a plurality of sensors, a separate one of the plurality of sensors being positioned adjacent a corresponding one of the plurality of springs;
a controller coupled to the sensor and the suspension system, the controller being configured to control the suspension system to maintain an orientation of the deck with respect to pitch, roll, and heave through a heave accommodation of at least three feet with a frequency response of the suspension system less than or equal to 1 Hz; the controller comprising a plurality of controllers, a separate one of the plurality of controllers being configured to control a corresponding one of the plurality of springs; and
the sensor further comprising an inertial measurement unit to measure an inertial reference parameter for a central portion of the deck, the inertial measurement unit being coupled to each one of the plurality of controllers for controlling the corresponding one of the plurality of springs.
2. The boat of claim 1 , wherein the plurality of springs comprises a plurality of air springs, each of the air springs being coupled to an air tank, and further wherein the controller is configured to dynamically control the air pressure in the air springs.
3. The boat of claim 2 , wherein the air pressure is maintained within a range of plus or minus fifteen percent throughout the full range of travel of the suspension system.
4. The boat of claim 2 , wherein the suspension system comprises a plurality of servos, a separate one of the plurality of servos being coupled to one of the plurality of air springs.
5. The boat of claim 4 , wherein the hull comprises a pair of pontoons and the deck is supported by a frame, each one of the pair of pontoons being coupled to the frame by a linkage having an upper linkage and a lower linkage, a separate one of the plurality of springs having a first end attached to the frame and a second end attached to the lower linkage associated with one of the pontoons.
6. A boat, comprising:
a hull configured for flotation on water;
a deck;
a suspension system positioned between the hull and the deck and configured to suspend the deck with respect to the hull, the suspension system further configured to accommodate pitch, roll, and heave motions of the deck with respect to the hull, the suspension system further having a dynamically adjustable spring;
the suspension system further comprising a plurality of springs;
a sensor configured to determine at least one inertial reference parameter of the deck, the sensor comprising a plurality of sensors, a separate one of the plurality of sensors being positioned adjacent a corresponding one of the plurality of springs;
a controller coupled to the sensor and the suspension system, the controller being configured to control the suspension system to dynamically adjust the spring to closely match the spring to the weight of the deck during motion of the deck with respect to the hull, whereby the suspension system maintains an orientation of the deck with respect to pitch, roll, and heave;
the controller comprises a plurality of controllers, a separate one of the plurality of controllers being configured to control a corresponding one of the plurality of springs; and
the sensor further comprising an inertial measurement unit to measure an inertial reference parameter for a central portion of the deck, the inertial measurement unit being coupled to each one of the plurality of controllers for controlling the corresponding one of the plurality of springs.
7. The boat of claim 6 , wherein each of the springs is coupled to an air tank, and further wherein the controller is configured to dynamically control the air pressure in the air springs.
8. The boat of claim 7 , wherein the air pressure is maintained within a range of plus or minus fifteen percent throughout the full range of travel of the suspension system.
9. The boat of claim 6 , wherein the suspension system comprises a plurality of servos, a separate one of the plurality of servos being coupled to one of the plurality of air springs.
10. The boat of claim 9 , wherein the hull comprises a pair of pontoons and the deck is supported by a frame, each one of the pair of pontoons being coupled to the frame by a linkage having an upper linkage and a lower linkage, a separate one of the plurality of springs having a first end attached to the frame and a second end attached to the lower linkage associated with one of the pontoons.