IP Library › Granted Patent US 12,315,362
Granted Patent B2
US 12,315,362 · App. 18/380,033 · Granted May 27, 2025

3-d printable multi-degrees-of-freedom haptic interfaces for stimulating skin strech, pressure and vibrotactile feedback on a user's body

Inventors: Zhenishbek Zhakypov (Mountain View, CA); Allison M. Okamura (Mountain View, CA)
Assignee: The Board of Trustees of the Leland Stanford Junior University
G08B6/00B33Y80/00G06F3/016
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Quick Facts
Patent No.
US 12,315,362
App. No.
18/380,033
Granted
May 27, 2025
Kind
B2
Abstract

A fully 3-D printed, soft, monolithic 4-DoF fingertip haptic technology is provided, called FingerPrint, that stimulates linear and rotational shear, pressure, and vibration on the finger pad. Constructed using an origami waterbomb base mechanism and printed from a flexible material, the device embeds four sets of eight foldable vacuum-powered pneumatic actuators to achieve three translational (x, y, z) and one rotational (torsion) tactile motions and forces of a tactor end-effector on the finger pad skin.

Claims (13)

1. A method of generating haptic feedback, comprising:

(a) having a monolithically three-dimensionally printed haptic device, wherein the haptic device comprises a plurality of foldable actuators, wherein each of the plurality of foldable actuators is a sealed chamber formed by a plurality of polygon-shaped facets connected with foldable flexure hinges;

(b) having a tactor, being a tactile stimulator element, positioned such that each of the plurality of foldable actuators is capable of physically interacting with the tactor; and

(c) actuating one or more of the plurality of foldable actuators, wherein the actuation causes shape changes to the one or more plurality of foldable actuators, wherein the shape changes produce the physical interaction with the tactor resulting in motion of the tactor to be used as haptic feedback.

2. The method as set forth in claim 1 , wherein each of the plurality of foldable actuators comprises tiles or links mechanically interconnected with foldable flexure hinges, joints or one of the foldable actuators.

3. The method as set forth in claim 1 , wherein the actuating comprises supplying air or vacuum via channels to the plurality of foldable actuators, wherein the supply of air or vacuum affects an entire inner volume of the sealed chamber of the foldable actuator.

4. The method as set forth in claim 3 , wherein the air or vacuum is supplied independently to each foldable actuator to cause selective folding and unfolding of the respective plurality of foldable actuators.

5. A method of printing a haptic device, comprising:

(a) Having a model of the haptic device; and

(b) Monolithically printing the haptic device, wherein the haptic device is a monolithically three-dimensionally printed haptic device comprising:

(i) a plurality of foldable actuators, wherein each of the plurality of foldable actuators is a sealed chamber formed by a plurality of polygon-shaped facets connected with foldable flexure hinges;

(ii) a tactor, being a tactile stimulator element, positioned such that each of the plurality of foldable actuators is capable of physically interacting with the tactor; and

(iii) channels and ports used for actuating the plurality of foldable actuators, wherein the actuating affects an entire inner volume of the sealed chamber of the foldable actuator, wherein the actuation causes shape changes to the plurality of foldable actuators, wherein the shape changes produce the physical interaction with the tactor resulting in motion of the tactor to be used as haptic feedback.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 13, 2023
From: ZHAKYPOV, ZHENISHBEK; OKAMURA, ALLISON M.
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 065215/0372 →
Continuity (3)
Continuation In Part 18109417 · Feb 14, 2023
Provisional Application 63309862 · Feb 14, 2022
Related Publication 20240038034A1 · Feb 1, 2024
References Cited (6)
US 6552722B1 · Shih · 2003 [cited by examiner]
US 10948989B1 · Blumenschein · 2021 [cited by applicant]
US 12026313B1 · Shin · 2024 [cited by examiner]
US 20200110465A1 · Ma · 2020 [cited by examiner]
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Zhakypov et al. 2019 2nd IEEE International Conference on Soft Robotics (RoboSoft) COEX, Seoul, Korea, Apr. 14-18, 2019, pp. 814-820. [cited by applicant]