The present invention relates to motion seat systems and methods of implementing motion in seats.
Motion seat systems have been used in theme park rides such as Disney's Star Tours and Universal Studio's Back to the Future, in commercial movie theaters, in gaming environments, and in training centers (e.g., military, law enforcement, and flight schools) to produce the sensation one is immersed in the reality displayed on a screen by synchronizing the seat motion of the viewer to correspond to the displayed scenes.
Motion seat systems are adapted to receive motion signals that move seats to correspond (e.g., synchronize) to other signals (e.g., video and/or audio signals) that are perceived by person(s). For example, the motion seat system may synchronize seat motions with the displayed motions in a movie theater to simulate the forces one would experience seated in a vehicle in a chase scene where the vehicle races around a city street.
The invention relates to motion seat systems and methods of powering motion seating. Modular design allows a variety of configurations as to the number and alignment of the seats, and provides each person on a seat with the same motion such as pitch and/or roll. The system can be one or more seats coupled together.
Each seat has one or more rotary shafts that pass under or through the seat. One or more rotating shafts are coupled to and cause each seat to pitch and roll according to the position of the shaft(s). The shaft of a master seat may be rotatably coupled through to the shaft of one or more slave seats to transfer the motion to the slave seat(s) which reduces the overall cost of the system.
Using pneumatic, electric, or hydraulic power one or more actuators receiving motion signals linearly displace one or more links coupled to the shafts and to the seats.
In another aspect, a method of moving seats is described including rotating a segmented shaft including rigid segments rotatably coupled, wherein each rigid segment is coupled to a seat, and converting the rotation of the segmented shaft to a linear displacement producing a motion in the seat.
In another aspect, a system of moving seats is described including at least one segmented shaft including rigid segments rotatably coupled, wherein each rigid segment is coupled to a seat, at least one actuator to rotate the segmented shaft, and at least one rotary-to-linear motion converter to convert the rotation of the segmented shaft to a linear displacement producing a motion in the seat.
The following description includes the best mode of carrying out the invention. The detailed description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is determined by reference to the claims. Each part is assigned its own part number throughout the specification and drawings.
In an embodiment, a first actuator 26 transmits a linear force based on a motion control signal to a first master actuator clevis mount 34 that is rotatably coupled to a first master actuator crank 60 that is secured to a first master shaft 12 that rotates in a shaft support bearing 44 in a master shaft support 54.
A first master link 22 with an upper link end 40 and a lower link end 42 couples the first master shaft 12 and the master seat mount 24. The upper link end 40 pivots at support point 30 which is attached or integral with the master seat mount 24, which is attached or integral to the master seat 6. Thus, the first actuator 26 drives motion to the master seat 6.
In an embodiment, a second actuator 27 transmits linear force based on a motion control signal to a second master actuator clevis mount 32 that is rotatably coupled to a second master actuator crank 58 that is secured to a second master shaft 14 that rotates in a shaft support bearing 46 in the master shaft support 54.
A second master link 20 with an upper link end 38 and a lower link end 36, spaced from the first master link 22, couples the second master shaft 14 to the master seat mount 24. The upper link end 38 pivots at support point 28 attached or part of the master seat mount 24, which is in turn attached or integral to the master seat 6. Thus, the second actuator 27 drives motion to the master seat 6.
If the first and second master shafts 12, 14 rotate, they will move the master seat 6 up and down simultaneously, the master seat 6 will move in a pitch motion; if not, the master seat 6 will move in a roll motion.
In the embodiment illustrated in
In the embodiment illustrated in
Referring to
The slave seat assembly also includes a second slave shaft 70 rotatably held in a shaft support bearing 50 in the slave shaft support 52 at one end and in a shaft support bearing 85 in the shaft support 87 at the other end. A second slave link 74 with an upper link end 80 and a lower link end 78 is rotatably coupled to the second slave actuator crank 90 secured to or integral with the second slave shaft 70 and the slave seat mount 98. The upper link end 80 pivots at support point 86 attached or part of the slave seat mount 98. The slave seat 7 is attached or integral to the slave seat mount 98.
Referring to
Referring to
The front support member (e.g., leaf spring 106) allows two degrees of freedom, that is, pitch and roll, but inhibits yaw or other lateral motions. The leaf spring 106 acts as a spring to return the master seat 6 to a neutral position. A balance member 108, preferably L-shaped, and spaced from the first master link 22, supports the front support member (e.g., leaf spring 106).
In an embodiment, the slave seat assembly includes a locking mechanism for the first slave shaft 72 including a first slave shaft lock brace 96, a first slave locking actuator mount 104, and a first slave locking actuator 100.
In another embodiment, the slave seat assembly includes a locking mechanism for the second slave shaft 70 including a second slave shaft lock brace 94, a first slave locking actuator shaft mount 105, and a second slave locking actuator 102.
In an embodiment, an actuator 26 transmits a linear force based on a motion control signal to a first master actuator clevis mount 34 that is rotatably coupled to a master actuator crank 60 that is secured to a master shaft 12 that rotates in a shaft support bearing 44 in a master shaft support 54.
A first master link 22 with an upper link end 40 and a lower link end 42 couples the master shaft 12 and the master seat mount 24. The upper link end 40 pivots at support point 30 which is attached or integral with the master seat mount 24, which is attached or integral to the master seat 6. Thus, the actuator 26 drives motion to the master seat 6.
A second master link 120 with an upper link end 38 and a lower link end 36, spaced from the first master link 22, couples the master shaft 12 to the master seat mount 24. The upper link end 38 pivots at support point 28 attached or part of the master seat mount 24, which is in turn attached or integral to the master seat 6. The lower link end 36 is rotatably coupled to the second master crank 122 secured to the master shaft 12. Thus, if the master shaft 12 rotates, the master seat 6 moves up and down in a pitch motion.
In the embodiment illustrated in
Referring to
Referring to
The front support member (e.g., leaf spring 107) allows two degrees of freedom, that is, pitch and roll, but inhibits yaw or other lateral motions. The leaf spring 107 acts as a spring to return the slave seat 7 to a neutral position. A balance member 112, preferably L-shaped, and spaced from the first slave link 76, supports the front support member (e.g., leaf spring 107).
The master links 20, 22 and the balance member 108 should define a plane so two of the three required points will be found in the balance member 108. The defined plane coupled to the master seat mount 24 can be co-planar, not co-planar, or coincident with the master seat mount 24.
Referring again to
Thus, a system of moving seats is described including at least one segmented shaft (e.g., master shaft+coupling member+slave shaft) including rigid segments (e.g. shafts) rotatably coupled, wherein each rigid segment is coupled to a seat, at least one actuator (e.g., actuators receiving motion signals) to rotate the segmented shaft, and at least one rotary-to-linear motion converter (e.g., master slave seat assembly) to convert the rotation of the segmented shaft to a linear displacement producing a motion in the seat (e.g., master seat and/or slave seat).
Further, methods of moving a plurality of seats is also described including rotating a segmented shaft including rigid segments rotatably coupled, wherein each rigid segment is coupled to a seat, and converting the rotation of the segmented shaft to a linear displacement producing a motion in the seat.
The design of the motion system allows unlimited configurations as to the number of seats, and also may provide each rider with the same experience at a relatively low cost. This differs from existing motion seating which are powered by active mechanism under each seat or bench, and from a bench design as each rider in a bench is physically in a different position and has a different experience when riding the seat.
Many of the parts of the systems can be purchased and implemented with high strength steel, but the person of ordinary skill would readily understand the materials and parts to use after review of the specification. Further, the choice of materials and conventional parts is not essential to the invention.
This application claims priority to U.S. provisional patent application No. 61/456,799, entitled X4D Motion EFX Cinema Seat Series, filed on Nov. 12, 2010, which is incorporated by reference in its entirety herein.
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Number | Date | Country | |
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