Claims
- 1. A simulator assembly for simulating the tactile response of an item, the simulator assembly comprising:
(a) a playback module formed generally in the shape of at least a portion of the simulated item, the playback module including an outer skin; (b) a plurality of cavities disposed in the playback module and beneath the outer skin; and (c) a plurality of sensory modulation subunits, each sensory modulation subunit disposed at least partially within one of the plurality of cavities, each sensory modulation subunit adapted to exert a force against the outer skin in response to an input signal.
- 2. The simulator assembly of claim 1, wherein the sensory modulation subunits further comprise a pressure transducer adapted to generate an output signal in response to an applied force.
- 3. The simulator assembly of claim 2 further comprising a computer system functionally connected to the sensory modulation subunits, wherein the computer system transmits the input signals to dynamically control the forces exerted by the sensory modulation subunits.
- 4. The simulator assembly of claim 3, wherein the computer system further receives the output signals generated by the sensory modulation subunits and further wherein the received output signals are used to determine the sensory modulation subunits input signals.
- 5. The simulator assembly of claim 4, wherein the computer system further comprises a memory module containing data defining the firmness of the simulated item and wherein the data is used to determine the sensory modulation subunit input signals.
- 6. The simulator assembly of claim 4, wherein the sensory modulation subunits comprise a piston-type variable resistor.
- 7. The simulator assembly of claim 4, wherein the sensory modulation subunits comprise a linear actuator.
- 8. The simulator assembly of claim 7, wherein the sensory modulation subunits further comprise an optical encoder that detects movement of the linear actuator and generates a responsive signal.
- 9. The simulator assembly of claim 4, wherein the sensory modulation subunits comprise an expansion chamber adapted to receive a pressurizing fluid.
- 10. The simulator assembly of claim 9 further comprising a reservoir of pressurizing fluid and wherein a plurality of sensory modulation subunits are fluidly connected to the reservoir with a valve.
- 11. The simulator assembly of claim 1, wherein the simulated item is a portion of a human body.
- 12. A tactile playback assembly for translating input signals received from a player into tactile sensations upon a user, the tactile playback assembly comprising:
(a) an interactive pressure playback garment, the garment removably attachable to a user; (b) a plurality of cells disposed in the garment; and (c) a plurality of sensory modulation subunits, each sensory modulation subunit disposed within one of the cells, the sensory modulation subunits adapted to generate a force upon the user in response to an input signal.
- 13. The tactile playback assembly of claim 12, wherein the sensory modulation subunits include a variable pressure producing device operable to generate the force upon the body of the user in response to the input signal received from the player, wherein the magnitude of the force is variable and determined by the input signal received from the player.
- 14. The tactile playback assembly of claim 12 further comprising a playing device operatively linked to the sensory modulation subunits for supplying the sensory modulation subunits with the input signals.
- 15. The tactile playback assembly of claim 14, wherein the playing device further generates a video output signal and wherein the sensory modulation subunit signals are correlated with the video output signal.
- 16. The tactile playback assembly of claim 12, wherein the playback garment comprises at least one glove.
- 17. A tactile data recording assembly comprising:
(a) an interactive pressure recording garment, the garment removably attachable to at least a portion of a user; (b) a plurality of cells disposed in the garment; (c) a plurality of sensory modulation subunits, each sensory modulation subunit housed at least partially within one of the cells, the sensory modulation subunits adapted to generate an output signal corresponding to a tactile force applied to the sensory modulation subunits; and (d) an output signal recording device, wherein the output signal recording device is operatively linked to the plurality of sensory modulation subunits for recording the output signals generated by the sensory modulation subunits.
- 18. The tactile recording assembly of claim 17, wherein the sensory modulation subunits are capable of generating an output signal of a variable magnitude such that the magnitude of the output signal is correlated to the magnitude of the tactile force applied to the sensory modulation subunits.
- 19. The tactile recording assembly of claim 17, wherein the sensory modulation subunits comprise a slab of elastic material having a pressure transducer embedded therein, the pressure transducer adapted to generate a signal that is directly related to the tactile force applied to the sensory modulation subunit.
- 20. An imaging exam assembly for palpating a body and obtaining images of the body comprising:
(a) a housing; (b) an imaging device disposed at least partially within the housing, the imaging device operable to obtain images of the body; and (c) a sensory modulation subunit disposed at least partially within the housing and comprising a variable pressure-producing device, the variable pressure-producing device operable to generate a palpation pressure upon the body, the sensory modulation subunit further comprising a pressure transducer, the pressure transducer adapted to generate a signal that is directly related to an interface pressure between the sensory modulation subunit and the body.
- 21. The imaging exam assembly of claim 20, wherein the variable pressure-producing device further comprises an expansion chamber, wherein a pressurized fluid may be selectively directed into the expansion chamber to expand the expansion chamber to produce a desired palpation force on the body.
- 22. The imaging exam assembly of claim 21 further comprising a valve, the valve located between the expansion chamber and a pressurized fluid media reservoir, the valve operable to control the flow of the fluid media into and out of the expansion chamber.
- 23. The imaging exam assembly of claim 22 further comprising a controller connected to the valve, the controller adapted to selectively open and close the valve.
- 24. The imaging exam assembly of claim 20 further comprising an ultrasonic transducer disposed in the housing, the transducer adapted to transmit ultrasound waves into the body.
- 25. The imaging exam assembly of claim 24 further comprising a second ultrasonic transducer disposed in the housing, the second ultrasonic transducer adapted to detect ultrasound waves.
- 26. The imaging exam assembly of claim 24, wherein the ultrasonic transducer is also adapted to detect ultrasound waves.
- 27. The imaging exam assembly of claim 24, wherein the ultrasonic transducer is a linear array transducer.
- 28. The imaging exam assembly of claim 20, wherein the imaging device is operable to obtain internal images of the body.
- 29. An ultrasonic imaging system comprising:
(a) an ultrasound pulser and an ultrasound image display system disposed at a first location; and (b) an ultrasound transducer assembly that emits and detects ultrasound waves, the ultrasound transducer assembly disposed at a second location; wherein the ultrasound transducer assembly is coupled to the ultrasound pulser and ultrasound image display system through a computer network.
- 30. A device for remotely conducting a direct manual examination of a patient comprising:
(a) a hand control unit having at least one first sensory modulation subunit that:
(i) detects a force applied to the first sensory modulation subunit and generates a first signal in response to the detected force, and (ii) exerts a force in response to a received second signal; (b) a patient examination module, the patient examination module having a plurality of second sensory modulation subunits that are selectively connectable to the first sensory modulation subunit, such that:
(i) the second sensory modulation subunit receives the first signal and exerts a force in response to the received first signal, and (ii) detects a force resisting the exerted force and generates the second signal based on the detected resisting force, the second signal being received by the first sensory modulation subunit; and (c) a recording device in signal communication with the first and second sensory modulation subunits that records the first and second signals.
- 31. The device of claim 30, wherein the first sensory modulation subunit is coupled in signal communication with a first computer, wherein the second sensory modulation subunit is coupled in signal communication with a second computer, and wherein a communication network operatively connects the first computer with the second computer.
- 32. The device of claim 31, wherein the communication network operates over a global telecommunication network.
- 33. The device of claim 30, wherein the hand control unit and the patient examination module are in non-contiguous locations.
- 34. A method of imparting tactile sensations to a body of a user comprising:
(a) engaging a portion of a body of a user with a module, the module having an array of actuators capable of generating a tactile force upon the body of the user in response to an input signal; and (b) connecting the module in signal communication with a data output device capable of generating a series of input signals for transmission to the array of actuators to selectively impart tactile forces upon the body of the user.
- 35. The method of claim 34, further comprising obtaining resistance data quantifying the resistance exerted by the body of the user when acted upon by the actuators.
- 36. The method of claim 35, further comprising simultaneously obtaining imaging data of the body of the user.
- 37. The method of claim 36, further comprising transmitting the resistance data and imaging data over a communications network.
- 38. The method of claim 35, further comprising recording the resistance data on a storage medium.
- 39. The method of claim 35, further comprising recording the resistance data on a storage medium, playing the recorded resistance data, and transmitting the recorded resistance data to a playback module operable to receive the recorded resistance data and vary the resistance of selected portions of the playback module to simulate the resistance of the body of the user.
- 40. A method of recording tactile data comprising:
(a) wrapping a portion of a body of a user in a force detecting pad, the force detecting pad having a plurality of sensory cells capable of generating an output signal in response to a tactile force received upon the force detecting pad; (b) connecting the force detecting pad in signal communication with an output signal recording device; (c) exposing the force detecting pad to at least one force; and (d) recording the output signals generated by the tactile force receiving pad with the output signal recording device.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation-in-part of U.S. application Ser. No. 09/685,327, filed Oct. 6, 2000, priority from the filing date of which is hereby claimed under 35 U.S.C. §120 and the disclosure of which is hereby expressly incorporated by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09685327 |
Oct 2000 |
US |
| Child |
10274569 |
Oct 2002 |
US |