This application is a 35 U.S.C. § 371 application of PCT/US2013/062449, filed on Sep. 27, 2013, and entitled “Polarized Magnetic Actuators for Haptic Response,” which is incorporated by reference as if fully disclosed herein.
The present invention relates to actuators, and more particularly to electromagnetic actuators that include one or more permanent magnets.
An actuator is a device that converts one form of energy into some type of motion. There are several different types of actuators, including pneumatic, hydraulic, electrical, mechanical, and electromagnetic. An electromagnetic actuator provides mechanical motion in response to an electrical stimulus. The electromagnetic actuator typically includes a coil and a movable armature made of a ferromagnetic material. A magnetic field is produced around the coil when current flows through the coil. The magnetic field applies a force to the armature to move the armature in the direction of the magnetic field.
Some electromagnetic actuators are limited in the type of force that can be applied to an armature. For example, an armature can be pushed but not pulled. Additionally, some electromagnetic actuators may produce a negligible amount of force when a small amount of current is applied to the coil. And in some devices or components, such as in portable electronic devices or components used in portable electronic devices, it can be challenging to construct an electromagnetic actuator that has both a reduced size and an ability to generate a desired amount of force.
In one aspect, a polarized electromagnetic actuator can include a movable armature and a stator, a first coil and a second coil wrapped around the stator, and a permanent magnet disposed over the stator. The moveable armature is spaced apart from the stator. The first and second coils produce a first magnetic flux in a first direction when a current is applied to the first and second coils. The first magnetic flux reduces a second magnetic flux of the permanent magnet in a first direction and increases the second magnetic flux in a second direction to produce motion in the movable armature in the second direction. The amount of force applied to the movable armature can be controlled by controlling the amount of current flowing through the first and second coils. Additionally, the direction of the force applied to the movable armature is dependent upon the direction of the current passing through the first and second coils.
In another aspect, a polarized electromagnetic actuator can include a movable armature and a stator having two tines extending out from the stator. The movable armature is spaced apart from the two tines of the stator. A first coil is wrapped around one tine and a second coil is wrapped around the other tine. At least one permanent magnet is disposed over the stator between the two tines. The first and second coils produce a first magnetic flux in a first direction when a current is applied to the first and second coils. The first magnetic flux reduces a second magnetic flux of the permanent magnet in a first direction and increases the second magnetic flux in a second direction to produce motion in the movable armature in the second direction. The amount of force applied to the movable armature can be controlled by controlling the amount of current flowing through the first and second coils. Additionally, the direction of the force applied to the movable armature is dependent upon the direction of the current passing through the first and second coils.
In yet another aspect, a polarized electromagnetic actuator can include a stator including two tines extending out from the stator and a coil wrapped around the stator between the two tines. A movable armature can include a first arm disposed over one tine of the stator, a second arm disposed over the other tine of the stator, and a body disposed between the two tines. A first permanent magnet can be positioned between the first arm of the armature and one tine of the stator, and a second permanent magnet can be positioned between the second arm of the armature and the other tine of the stator. For example, in one embodiment, the first permanent magnet is attached to the first arm of the armature and disposed over one tine of the stator and the second permanent magnet is attached to the second arm of the armature and disposed over the other tine of the stator. In another embodiment, the first permanent magnet is attached to one tine of the stator and the second permanent magnet is attached to the other tine of the stator. The coil produces a first magnetic flux when a current is applied to the coil and the magnetic flux of the coil can increase a magnetic flux of one permanent magnet to produce motion in the movable armature in a direction of the increased magnetic flux.
In another aspect, a polarized electromagnetic actuator can include a stator including two tines extending out from the stator and a coil wrapped around the stator between the two tines. A movable armature can include a first arm disposed over one tine and of the stator, a second arm disposed under the other tine of the stator, and a body disposed between the two tines. A first permanent magnet can be attached to one tine of the stator and a second permanent magnet can be attached to the other tine of the stator. The coil produces a first magnetic flux when a current is applied to the coil and the magnetic flux of the coil can increase a magnetic flux of one permanent magnet to produce motion in the movable armature in a direction of the increased magnetic flux.
In another aspect, a method for providing a polarized electromagnetic actuator includes providing a movable armature and a stator, providing at least one coil wrapped around the stator, and providing at least one permanent magnet over the stator. The at least one coil is configured to reduce a magnetic flux of at least one permanent magnet in one direction and increase a magnetic flux of at least one permanent magnet in another direction when a current is applied to the at least one coil to move the movable armature in the direction of the increased magnetic flux.
And in yet another aspect, a polarized electromagnetic actuator includes a movable armature, a stator, at least one coil wrapped around the stator, and at least one permanent magnet disposed over the stator. A method for operating the polarized electromagnetic actuator includes applying a current to the at least one coil to produce a first magnetic flux that reduces a second magnetic flux of at least one permanent magnet in a first direction and increases the second magnetic flux of at least one permanent magnet in a second direction to move the movable armature in the second direction. The current to the at least one coil can be controllably varied to adjust a force applied to the movable armature.
Embodiments are better understood with reference to the following drawings. The elements of the drawings are not necessarily to scale relative to each other. Identical reference numerals have been used, where possible, to designate identical features that are common to the figures.
Embodiments described herein provide a polarized electromagnetic actuator that includes a movable armature spaced apart from a stator. One or more permanent magnets can be disposed over the stator, and one or more coils can be wrapped around the stator. The polarized electromagnetic actuator can generate a greater amount of force by increasing a magnetic flux of a permanent magnet using a magnetic flux produced by one or more coils. For example, in one embodiment, a permanent magnet provides a background magnetic field and flux that are distributed evenly through an armature and a stator. Two coils wrapped around either the stator or the armature produces a magnetic field and flux in a given direction when a current is applied to the coil. The direction of the coil magnetic flux is dependent upon the direction of the current flowing through the coils. The magnetic flux of the coil reduces or cancels the magnetic flux of the permanent magnet in one direction and increases the magnetic flux of the permanent magnet in another direction. The increased magnetic flux of the permanent magnet applies a force to the armature to move the armature in a direction of the increased magnetic flux.
The amount of force applied to the armature can be controlled by controlling the current flowing through the coil or coils. The applied force can be increased by increasing the current, or the amount of force can be decreased by decreasing the current. In some embodiments, the magnetic flux of the coil or coils completely cancels a magnetic flux of a permanent magnet in a first direction. In some embodiments, the amount of force applied to the armature can increase or decrease linearly by varying the current applied to the coil(s).
In some embodiments, the magnetic forces can cause a destabilizing force on the armature similar to a negative spring. This destabilizing force causes the armature to be attracted to one of the tines. One or more stabilizing elements can be included with the polarized electromagnetic actuators to stabilize the armature when a current is not applied to the coil or coils. The stabilizing element or elements can compensate for the destabilizing force. Examples of stabilizing elements include, but are not limited to, springs, flexible structures, or gel packs or disks that can be positioned between the armature and the stator to assist in stabilizing the armature.
Embodiments of polarized electromagnetic actuators can be included in any type of device. For example, acoustical systems such as headphones and speakers, computing systems, haptic systems, and robotic devices can include one or more polarized electromagnetic actuators. Haptic systems can be included in computing devices, digital media players, input devices such as buttons, trackpads, and scroll wheels, smart telephones, and other portable electronic devices to provide tactile feedback to a user. For example, the tactile feedback can take the form of an applied force, a vibration, or a motion. One or more polarized electromagnetic actuators can be included in a haptic system to enable the tactile feedback (e.g., motion) that is applied to the user.
For example, the top surface of a trackpad can be disposed over the top surface of a movable armature of a polarized electromagnetic actuator, or the top surface of the trackpad can be the top surface of the movable armature. The actuator can be included under the top surface of the trackpad. One or more polarized electromagnetic actuators can be included in the trackpad. The polarized electromagnetic actuators can be positioned in the same direction or in different directions. For example, one polarized electromagnetic actuator can provide motion along an x-axis while a second polarized electromagnetic actuator provides motion along a y-axis.
Other embodiments switch the roles of the armature and the stator so that a polarized electromagnetic actuator includes an armature spaced apart from a movable stator. One or more permanent magnets can be disposed over the armature, and one or more coils can be wrapped around the armature. A magnetic field and flux are produced in a given direction when a current is applied to one or more coils. The direction of the coil magnetic flux is dependent upon the direction of the current flowing through the coils. The magnetic flux of the coil reduces or cancels the magnetic flux of the permanent magnet in one direction and increases the magnetic flux of the permanent magnet in another direction. Similarly, one or more stabilizing elements can be included with the polarized electromagnetic actuators to stabilize the armature when a current is not applied to the coil or coils.
Referring now to
Each respective coil and tine forms an electromagnet. An electromagnet is a type of magnet in which a magnetic field is produced by a flow of electric current. The magnetic field disappears when the current is turned off. In the embodiment shown in
The force produced by the magnetic field B can be controlled by controlling the amount of electric current (I) flowing through the coils 108, 110 in that the force varies according to the equation I2. The force is attractive and causes the armature 112 to be pulled downwards towards both tines 104, 106 (movement represented by arrow 114). Assuming the core is not saturated and does not contribute significantly to the overall reluctance, and assuming no significant fringing fields in the air gap g, the force (F) exerted by the electromagnets (i.e., tine 104 and coil 108; tine 106 and coil 110) can be determined by the following equation,
where μ0 is the permeability of free space or air, V is the applied voltage, D is the wire diameter (total), wc is the core width of the coil (see
The force (F) divided by the power (P) for the electromagnets can be calculated by
where μ0 is the permeability of free space or air, Lc is the length of the coil, wc is the core width of the coil, tc is the core thickness of the coil, ta is the thickness of the wire coil, ρ is the effective resistivity of the coil, g is the gap between the armature 112 and the tines 104, 106, tm is the maximum allowable thickness of the coil, and te is the encapsulation thickness of the coil.
One limitation to the actuator 100 is that the force can produce motion in only one direction, such that the armature 112 can only be pulled down toward the tines 104, 106. Additionally, the overall efficiency for the actuator 100 can be low. For example, in some embodiments, the overall efficiency of the actuator can be 1.3%. One reason for the reduced efficient is saturation, but the non-linear effects of the gap g can somewhat offset the reduced efficiency in some embodiments.
Referring now to
A magnet 212 is disposed between the two tines 206, 208 below the armature 202. The magnet 212 typically has a relatively small width W. The magnet 212 is polarized with two north poles on the outer edges of the magnet and a single south pole in the center. The flux from the south pole traverses a small air gap to the armature 202 and then propagates through the armature to the upper corner of the stator 204 and back through the magnet 212. The flux from the coil 210 interacts with the flux from the magnet 212 to produce a net torque on the armature. Relay contact arms (not shown) act as flexures that stabilize the negative spring constant of the magnetic field of the magnet 212.
The double pole magnet 212 can be difficult to produce. Additionally, the illustrated actuator typically works well for a relay, but the force produced by the actuator is limited by the width W of the magnet 212. It can be desirable to use an actuator that can produce larger forces in other types of applications and/or devices. By way of example only, other embodiments can use an actuator that creates a more powerful force that is able to produce a haptic response in a device, such as in a trackpad or other similar device.
Embodiments described herein provide a polarized electromagnetic actuator that is more efficient, can produce a greater amount of force for the same applied current, and can produce a controllable motion in two directions (e.g., push and pull).
In the illustrated embodiment, the stator 302 and the movable armature 314 can be made of any suitable ferromagnetic material, compound, or alloy, such as steel, iron, and nickel. The permanent magnet 312 can be any suitable type of permanent magnet, including, but not limited to, a neodymium (NdFeB) magnet. A ferromagnetic material is a material that can be magnetized. Unlike a ferromagnetic material, a permanent magnet is made of a magnetized material that produces a persistent magnetic field. In
The magnetic flux ϕC produced by the coils 308, 310 interacts with the magnetic flux ϕM1, ϕM2 of the permanent magnet to reduce or cancel the magnetic flux in one direction (ϕM1 or ϕM2) and increase the magnetic flux in the other direction. Motion is produced in the movable armature 314 in the direction of the increased magnetic flux (ϕM1 or ϕM2). For example, in the illustrated embodiment, the coil magnetic flux ϕC is traveling in a direction that opposes the direction of the magnetic flux ϕM1, thereby reducing or canceling the magnetic flux ϕM1. Concurrently, the coil magnetic flux ϕC is traveling in the same direction as the direction of the magnetic flux ϕM2, thereby increasing the magnetic flux ϕM2. The armature 314 moves up and down like a teeter-totter based on the force applied to the armature (movement represented by arrow 318). The movable armature 314 can be pulled toward a respective tine or pushed away from a respective tine depending on the direction of the current through the coils 308, 310. Additionally, the amount of force applied to the armature can be controlled by controlling the amount of current applied to the coils 308, 310.
Ampere's Law ∇×H=J and Maxwell's Equation ∇·B=0 can be used to analyze the illustrated actuator 300. Note that the following analysis assumes the core does not saturate and that no fringing fields are present in the gaps g1 and g2.
∇×H=J: H1g1−HmLm=NI1; and Equation 3
HmLm−H2g2=NI2 Equation 4
∇·B=0: B1A1+BmAm+B2A2=0 Equation 5
where Lm is the length of the permanent magnet 312, N is the number of turns in each coil 308, 310, and H1, H2, and Hm are the H fields (magnetic strength) associated with the magnetic fields B1, B2, and Bm, respectively. Another equation included in the analysis is the relationship between the magnetic field B and the H field in the permanent magnet, also known as the demagnetization curve. Magnet suppliers typically provide a demagnetization curve for each of the materials used in the permanent magnets. Typically, the relationship between B and H is linear and can be approximated as follows,
Bm=Br+μ0Hm Equation 6
where Br is the remanent magnetization of the permanent magnet (e.g., ˜1.2 T). Solving equations 3 through 6, the magnetic force B1 and B2 can be determined by
As described earlier, the magnetic flux ϕC produced by the coils 308, 310 interacts with the magnetic flux ϕM1, ϕM2 of the permanent magnet to reduce or cancel one magnetic flux (ϕM1 or ϕM2) and increase the other magnetic flux. When the magnetic flux ϕC cancels a magnetic flux in one direction (ϕM1 or ϕM2) completely, the magnetic field of the coil Bcoil equals the magnetic field in the permanent magnet Bmagnet, and the force is increased. By way of example only, in the illustrated embodiment, when the magnetic field of the coil Bcoil equals the magnetic field in the permanent magnet Bmagnet, the force produced by the left-hand side 320 of the actuator 300 can be determined by
Also, when the magnetic field of the coil Bcoil equals the magnetic field in the permanent magnet Bmagnet, the force produced by the right-hand side 322 of the actuator 300 can be calculated by
In comparison, the amount of force generated by the left-hand side 120 and right-hand side 122 of the actuator 100 shown in
Thus, the actuator 300 in
Similarly, the total force produced by the magnetic fields varies linearly with the applied current.
The resulting total force F1-F2 can also vary linearly with armature position. As shown in
The polarized electromagnetic actuator 300 can have a higher overall efficiency than the actuator 100 of
Additionally, including the permanent magnet 312 in the actuator 300 can reduce power consumption of the actuator 300. The force is driven by the magnetic field from the permanent magnet 312. So a fairly substantial force can be generated by the actuator 300 even when the amount of current flowing through the coils 308, 310 is relatively small. With the prior art actuator 100 shown in
The permanent magnet 312 can be easier to manufacture compared to the magnet 212 shown in
Referring now to
Like the embodiment shown in
For example, in the illustrated embodiment, the coil magnetic flux ϕC is traveling in a direction that opposes the direction of the magnetic flux ϕM2, thereby reducing or canceling the magnetic flux ϕM2. Concurrently, the coil magnetic flux ϕC is traveling in the same direction as the direction of the magnetic flux ϕM1, thereby increasing the magnetic flux ϕM1. The armature 314 moves up and down (e.g., like a teeter-totter) based on the force applied to the movable armature. The movable armature 314 can be pulled toward a respective tine or pushed away from a respective tine depending on the direction of the current through the coils 308, 310. Additionally, the amount of applied force can be controlled by controlling the amount of current flowing through the coils 308, 310.
In some embodiments, the movable armature can be in an unstable equilibrium when a current is not applied to the coils. In such embodiments, one or more stabilizing elements can stabilize the armature using a restoring force to prevent the armature from moving to one of the two contacts. In
With respect to the actuators shown in
Although the
In contrast, the stabilizing elements 800 can limit the applied force within the same armature displacement. When a current is not applied to the coils 308, 310, plot 1002 of
Referring now to
The permanent magnet 1112 can produce a magnetic field B that is distributed evenly through each stator tine 1104, 1106. The magnetic flux ϕM1, ϕM2 associated with the permanent magnet 1112 provides a background magnetic flux traveling from the permanent magnet 1112 through the armature 1114, the stator 1102 (including the tines 1104, 1106), and back to the permanent magnet 1112. A magnetic flux ϕC is produced when a current is applied to the coils 1108, 1110. The coil magnetic flux ϕC travels through the armature 1114 and around the stator 1102 through the tines 1104, 1106, but largely not through the permanent magnet 1112. The direction of travel of the coil magnetic flux ϕC depends on the direction of the current passing through the coils 1108, 1110.
The magnetic flux produced by the coils 1108, 1110 reduces or cancels the magnetic flux in a first direction and increases the magnetic flux in a second direction of the permanent magnet. Motion is produced in the armature in the direction of the increased magnetic flux. The armature 1114 moves left and right based on the force applied to the armature (movement represented by arrow 1116). The movable armature 1114 can be pulled toward a respective tine or pushed away from a respective tine depending on the direction of the current through the coils 1108, 1110. Additionally, the amount of force applied to the movable armature 1114 can be controlled by controlling the amount of current applied to the coils 1108, 1110.
Referring now to
The permanent magnet 1414 produces a magnetic flux ϕM1, ϕM2 that provides a background magnetic flux traveling through the stator 1402 and the movable armature 1404 (including the tines 1406, 1408). A magnetic flux ϕC is produced by the first and second coils 1410, 1412 when a current is applied to the coils 1410, 1412. The coil magnetic flux ϕC travels through the armature 1404 (including the tines 1406, 1408) and around the stator 1402 (but largely not through the permanent magnet 1414). The direction of travel of the coil magnetic flux ϕC depends on the direction of the current passing through the coils 1410, 1412.
The coil magnetic flux ϕC interacts with a respective magnetic flux ϕM1 or ϕM2) of the permanent magnet to reduce or cancel the magnetic flux in one direction and increase the magnetic flux in the other direction. For example, in the illustrated embodiment, the coil magnetic flux ϕC is traveling in a direction that opposes the direction of the magnetic flux ϕM1, thereby reducing or canceling the magnetic flux ϕM1. Concurrently, the coil magnetic flux ϕC is traveling in the same direction as the direction of the magnetic flux ϕM2, thereby increasing the magnetic flux ϕM2. The increase in the magnetic flux ϕM2 by the magnetic flux ϕC2 increases the force. The armature 1404 moves in the direction of the increased magnetic flux ϕM2 based on the force applied to the movable armature.
In the embodiments of
The actuator 1500 includes a stator 1502 with tines 1504, 1506 extending out to form a “U” shaped region of the stator. A helical coil 1508 is wrapped around the stator 1502 between the two tines 1504, 1506. A first permanent magnet 1510 is positioned over the tine 1504 and a second permanent magnet 1512 is disposed over the tine 1506. A movable armature 1514 can be formed in a “T” shape with the arms 1516, 1518 of the T-shaped armature 1514 disposed over the permanent magnet 1510, 1512, respectively. The body of the T-shaped armature 1514 is positioned over the coil 1508 within the “U” shaped region between the tines 1504, 1506. The movable armature 1514 is held in a spaced-apart relationship to the stator 1502 and the permanent magnets 1510, 1512.
The permanent magnet 1510 produces a magnetic flux ϕM1 and the permanent magnet 1512 produces a magnetic flux ϕM2. The magnetic fluxes ϕM1, ϕM2 provide a background magnetic flux around respective permanent magnets 1510, 1512 and through the movable armature 1514 (but not through the coil 1508). Additionally, a magnetic flux ϕC is produced when a current is applied to the coil 1508. The coil magnetic flux ϕC travels through the body of the T-shaped armature 1514 and around the stator 1502 and tines 1504, 1506, but not (or largely not) through the permanent magnets 1510, 1512. As with the other embodiments, the direction of travel of the coil magnetic flux ϕC depends on the direction of the current passing through the coil 1508.
The magnetic flux ϕC produced by the coil 1508 interacts with the magnetic flux ϕM1, ϕM2 of the permanent magnets 1510, 1512 to reduce or cancel one magnetic flux (ϕM1, or ϕM2) and increase the other magnetic flux. Motion is produced in the movable armature 1514 in the direction of the increased magnetic flux. The armature 1514 moves in a left direction or in a right direction based on the direction of the increased magnetic flux (movement depicted by arrow 1520). For example, in the illustrated embodiment, the coil magnetic flux ϕC is traveling in a direction that opposes the direction of the magnetic flux ϕM1, thereby reducing or canceling the magnetic flux ϕM1. Concurrently, the coil magnetic flux ϕC is traveling in the same direction as the direction of the magnetic flux ϕM2, thereby increasing the magnetic flux ϕM2. The increase in the magnetic flux ϕM2 by the magnetic flux ϕC increases the amount of force applied to the movable armature 1514.
As previously described, the armature 1514 moves left or right based on the force applied to the armature (movement represented by arrow 1520). The movable armature 1514 can be pulled toward a respective tine or pushed away from a respective tine depending on the direction of the current through the coil 1508. Additionally, the amount of force applied to the movable armature 1514 can be controlled by controlling the amount of current applied to the coil 1508. Since force is approximately equal to the square of the magnetic field (F˜B2), the increase in the magnetic flux ϕM2 by the coil magnetic flux ϕC increases the force. With the actuator 1500. F˜B2 can become F=4BmBc. Thus, the force is linear in applied current.
A polarized electromagnetic actuator can be thinner in height (z direction) than other electromagnetic actuators when the magnetic flux from a coil does not pass through a permanent magnet and the magnetic flux from the permanent magnet(s) does not travel through the coil. The material in which a coil surrounds can be thinned to account for the diameter of the coil. And in some embodiments, it is desirable to have the field going through the coil be as small as possible. So to avoid saturation, the actuator is designed so the magnetic flux from the permanent magnet does not pass through the coil since there may not be a sufficient amount of material in the coil to carry the magnetic flux from both the coil and the permanent magnet(s).
Referring now to
The actuator 1700 includes a stator 1702 with two tines 1704, 1706 extending out from the stator 1702 to form a “U” shaped region of the stator 1702. A helical coil 1708 is wrapped around the stator 1702 between the two tines 1704, 1706. A movable armature 1710 can be formed in a “T” shape with the arms 1712, 1714 of the T-shaped armature 1710 disposed over the tines 1704, 1706, respectively. The body of the T-shaped armature 1710 is positioned over the coil 1708 within the “U” shaped region between the tines 1704, 1706. A first permanent magnet 1716 is attached to one arm 1714 and positioned over the tine 1704 and a second permanent magnet 1718 is attached to the other arm 1716 and disposed over the tine 1706. The movable armature 1710 and the permanent magnets 1716, 1718 are held in a spaced-apart relationship to the stator 1702.
The permanent magnet 1716 produces a magnetic flux ϕM1 and the permanent magnet 1718 produces a magnetic flux ϕM2. The magnetic fluxes ϕM1, ϕM2 provide a background magnetic flux around respective permanent magnets 1716, 1718, through the movable armature 1710, and through the tines 1704, 1706 (but not through the coil 1708). Additionally, a magnetic flux ϕC is produced when a current is applied to the coil 1708. The coil magnetic flux ϕC travels through the body of the T-shaped armature 1710 and around the stator 1702 and tines 1704, 1706, but not (or largely not) through the permanent magnets 1716, 1718. As with the other embodiments, the direction of travel of the coil magnetic flux ϕC depends on the direction of the current passing through the coil 1708.
The magnetic flux ϕC produced by the coil 1708 interacts with the magnetic flux ϕM1, ϕM2 of the permanent magnets 1716, 1718 to reduce or cancel one magnetic flux (ϕM1 or ϕM2) and increase the other magnetic flux. Motion is produced in the movable armature 1710 in the direction of the increased magnetic flux (motion represented by arrow 1720). The armature 1710 moves in a left direction or in a right direction based on the direction of the increased magnetic flux. For example, in the illustrated embodiment, the coil magnetic flux ϕC is traveling in a direction that opposes the direction of the magnetic flux ϕM2, thereby reducing or canceling the magnetic flux ϕM2. Concurrently, the coil magnetic flux ϕC is traveling in the same direction as the direction of the magnetic flux ϕM1, thereby increasing the magnetic flux ϕM1. The increase in the magnetic flux ϕM1 by the magnetic flux ϕC increases the amount of force applied to the movable armature 1710.
As previously described, the armature 1710 moves left or right based on the force applied to the armature. The movable armature 1710 can be pulled toward a respective tine or pushed away from a respective tine depending on the direction of the current through the coil 1708. In the illustrated embodiment, a first bending flexure 1722 is attached to the outer ends of the arm 1712 and the protrusion 1724 of the stator 1702. A second bending flexure 1726 is attached to the outer ends of the arm 1714 and the protrusion 1728 of the stator 1702. The bending flexures 1722, 1726 can limit the movement of the armature 1710. The bending flexures 1722, 1726 can act as stabilizing elements by counteracting the attraction between the permanent magnets 1716, 1718 and the stator 1702. The spring constants of the bending flexures 1722, 1726 can stabilize the armature 1710 in the center of its travel. Other embodiments can include a fewer or greater number of stabilizing elements.
A movable armature 1812 can include an arm 1814 that is positioned over the tine 1804 and another arm 1816 that is positioned under the overhang 1808 of the second tine 1806. The body of the armature 1812 is positioned over the coil 1810 between the tines 1804, 1806. A first permanent magnet 1818 is attached to the tine 1804 between the tine 1804 and armature 1812. A second permanent magnet 1820 is attached to the outer end of the overhang 1808 between the overhang 1808 and the armature 1812. The movable armature 1812 is held in a spaced-apart relationship to the stator 1802 and the permanent magnets 1818, 1820.
The permanent magnet 1818 produces a magnetic flux ϕM1 and the permanent magnet 1820 produces a magnetic flux ϕM2. The magnetic fluxes ϕM1, ϕM2 provide a background magnetic flux around respective permanent magnets 1818, 1820 through the movable armature 1812, through the tine 1804, and through the overhang 1808 (but not through the coil 1810). Additionally, a magnetic flux ϕC is produced when a current is applied to the coil 1810. The coil magnetic flux ϕC travels through the armature 1812 and around the stator 1802 and tines 1804, 1806, but not (or largely not) through the permanent magnets 1818, 1820. As with the other embodiments, the direction of travel of the coil magnetic flux ϕC depends on the direction of the current passing through the coil 1810.
The magnetic flux ϕC produced by the coil 1810 interacts with the magnetic flux ϕM1, ϕM2 of the permanent magnets 1818, 1820 to reduce or cancel one magnetic flux (ϕM1 or ϕM2) and increase the other magnetic flux. Motion is produced in the movable armature 1812 in the direction of the increased magnetic flux (motion represented by arrow 1822).
The movable armature and stator can have a desired shape and thickness based on the amount of force to be generated by the actuator. The movable armature, stator, coil, and permanent magnet of the actuator are then configured at block 1902 such that the field produced by the coil does not pass through the permanent magnet. The movable armature, stator, coil, and permanent magnet of the actuator can also be configured such that the field produced by the permanent magnet does not pass through the coil (block 1904). Block 1904 can be omitted in some embodiments.
The movable armature, stator, coil, and permanent magnet of the actuator are configured so that the magnetic flux of the coil ϕc increases the magnetic flux of the permanent magnet in one direction to produce motion in the direction of the increased magnetic flux (block 1906). Next, as shown in block 1908, one or more stabilizing elements are provided to stabilize the movable armature when a current is not applied to the coil.
Referring now to
The amount of current flowing through the coil can be controlled to controllably vary the amount of force applied to a movable armature and to produce motion in the direction of the increased magnetic flux associated with the at least one permanent magnet (block 2002). The amount of current passing through the coil can be increased or decreased depending on the desired amount of force and the desired direction of movement.
Next, as shown in block 2004, a haptic response can be produced based on the force produced by the polarized electromagnetic actuator. The haptic response can be in one direction and/or in multiple directions based on the direction of the current passing through each coil. Additionally or alternatively, the magnitude of the haptic response can be controlled based on the amount of current passing through each coil.
Other embodiments can perform the method shown in
Embodiments of polarized electromagnetic actuators can be included in any type of device. For example, acoustical systems such as headphones and speakers, computing systems, haptic systems, and robotic devices can include one or more polarized electromagnetic actuators. Haptic systems can be included in computing devices, digital media players, input devices such as buttons, trackpads, and scroll wheels, smart telephones, and other portable user electronic devices to provide tactile feedback to a user. For example, the tactile feedback can take the form of an applied force, a vibration, or a motion. One or more polarized electromagnetic actuators can be included in a haptic system to enable the tactile feedback (e.g., motion) that is applied to the user.
The display 2102 is configured to display a visual output for the electronic device 2100. The display 2102 can be implemented with any suitable display, including, but not limited to, a liquid crystal display (LCD), an organic light-emitting display (OLED), or organic electro-luminescence (OEL) display.
The keyboard 2104 includes multiple keys that can be used to enter data into an application or program, or to interact with one or more viewable objects on the display 2102. The keyboard 2104 can include alphanumeric or character keys, navigation keys, function keys, and command keys. For example, the keyboard can be configured as a QWERTY keyboard with additional keys such as a numerical keypad, function keys, directional arrow keys, and other command keys such as control, escape, insert, page up, page down, and delete.
The trackpad 2106 can be used to interact with one or more viewable objects on the display 2102. For example, the trackpad 2106 can be used to move a cursor or to select a file or program (represented by an icon) shown on the display. The trackpad 2106 can use any type of sensing technology to detect an object, such as a finger or a conductive stylus, near or on the surface of the trackpad 2106. For example, the trackpad 2106 can include a capacitive sensing system that detects touch through capacitive changes at capacitive sensors.
The trackpad 2106 can include one or more polarized electromagnetic actuators to provide haptic feedback to a user. For example, a cross-section view of the trackpad 2106 along line 17-17 can include the cross-section view of the polarized electromagnetic actuator shown in
Additionally or alternatively, one or more keys in the keyboard 2104 can include a polarized electromagnetic actuator or actuators. The top surface of a key in the keyboard can be the top surface of the movable armature, and the actuator can be included under the top surface of the key.
Referring now to
The display 2204 can be implemented with any suitable display, including, but not limited to, a multi-touch touchscreen display that uses liquid crystal display (LCD) technology, organic light-emitting display (OLED) technology, or organic electro luminescence (OEL) technology. The multi-touch touchscreen display can include any suitable type of touch sensing technology, including, but not limited to, capacitive touch technology, ultrasound touch technology, and resistive touch technology.
The button 2206 can take the form of a home button, which may be a mechanical button, a soft button (e.g., a button that does not physically move but still accepts inputs), an icon or image on a display, and so on. Further, in some embodiments, the button 2206 can be integrated as part of a cover glass of the electronic device.
In some embodiments, the button 2206 can include one or more polarized electromagnetic actuators to provide haptic feedback to the user. A cross-section view of the button 2206 along line 17-17 can include the cross-section view of the polarized electromagnetic actuator shown in
Additionally or alternatively, a portion of the enclosure 2202 and/or the display 2204 can include one or more polarized electromagnetic actuators to provide haptic feedback to the user. The exterior surface of the enclosure and/or the display can be the top surface of the movable armature with the actuator included under the top surface of the enclosure and/or display. As with the button 2206, the polarized electromagnetic actuators can be positioned in the same direction or in different directions.
Various embodiments have been described in detail with particular reference to certain features thereof, but it will be understood that variations and modifications can be effected within the spirit and scope of the disclosure. And even though specific embodiments have been described herein, it should be noted that the application is not limited to these embodiments. In particular, any features described with respect to one embodiment may also be used in other embodiments, where compatible. Likewise, the features of the different embodiments may be exchanged, where compatible.
Filing Document | Filing Date | Country | Kind |
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PCT/US2013/062449 | 9/27/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2015/047343 | 4/2/2015 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3001049 | Didier | Sep 1961 | A |
3390287 | Sonderegger | Jun 1968 | A |
3419739 | Clements | Dec 1968 | A |
4236132 | Zissimopoulos | Nov 1980 | A |
4412148 | Klicker et al. | Oct 1983 | A |
4414984 | Zarudiansky | Nov 1983 | A |
4695813 | Nobutoki et al. | Sep 1987 | A |
4975616 | Park | Dec 1990 | A |
5010772 | Bourland | Apr 1991 | A |
5245734 | Issartel | Sep 1993 | A |
5283408 | Chen | Feb 1994 | A |
5293161 | MacDonald et al. | Mar 1994 | A |
5317221 | Kubo et al. | May 1994 | A |
5365140 | Ohya et al. | Nov 1994 | A |
5434549 | Hirabayashi et al. | Jul 1995 | A |
5436622 | Gutman et al. | Jul 1995 | A |
5510584 | Norris | Apr 1996 | A |
5510783 | Findlater et al. | Apr 1996 | A |
5513100 | Parker et al. | Apr 1996 | A |
5587875 | Sellers | Dec 1996 | A |
5590020 | Sellers | Dec 1996 | A |
5602715 | Lempicki et al. | Feb 1997 | A |
5619005 | Shibukawa et al. | Apr 1997 | A |
5621610 | Moore et al. | Apr 1997 | A |
5625532 | Sellers | Apr 1997 | A |
5629578 | Winzer et al. | May 1997 | A |
5635928 | Takagi et al. | Jun 1997 | A |
5718418 | Gugsch | Feb 1998 | A |
5739759 | Nakazawa et al. | Apr 1998 | A |
5742242 | Sellers | Apr 1998 | A |
5783765 | Muramatsu | Jul 1998 | A |
5793605 | Sellers | Aug 1998 | A |
5812116 | Malhi | Sep 1998 | A |
5813142 | Demon | Sep 1998 | A |
5818149 | Safari et al. | Oct 1998 | A |
5896076 | Van Namen | Apr 1999 | A |
5907199 | Miller | May 1999 | A |
5951908 | Cui et al. | Sep 1999 | A |
5959613 | Rosenberg et al. | Sep 1999 | A |
5982304 | Selker et al. | Nov 1999 | A |
5982612 | Roylance | Nov 1999 | A |
5995026 | Sellers | Nov 1999 | A |
5999084 | Armstrong | Dec 1999 | A |
6078308 | Rosenberg et al. | Jun 2000 | A |
6127756 | Iwaki | Oct 2000 | A |
6135886 | Armstrong | Oct 2000 | A |
6218966 | Goodwin | Apr 2001 | B1 |
6222525 | Armstrong | Apr 2001 | B1 |
6252336 | Hall | Jun 2001 | B1 |
6342880 | Rosenberg et al. | Jan 2002 | B2 |
6351205 | Armstrong | Feb 2002 | B1 |
6373465 | Jolly et al. | Apr 2002 | B2 |
6408187 | Merriam | Jun 2002 | B1 |
6411276 | Braun et al. | Jun 2002 | B1 |
6429849 | An | Aug 2002 | B1 |
6438393 | Surronen | Aug 2002 | B1 |
6444928 | Okamoto et al. | Sep 2002 | B2 |
6455973 | Ineson | Sep 2002 | B1 |
6465921 | Horng | Oct 2002 | B1 |
6552404 | Hynes | Apr 2003 | B1 |
6552471 | Chandran et al. | Apr 2003 | B1 |
6557072 | Osborn | Apr 2003 | B2 |
6642857 | Schediwy | Nov 2003 | B1 |
6693626 | Rosenberg | Feb 2004 | B1 |
6717573 | Shahoian et al. | Apr 2004 | B1 |
6809462 | Pelrine et al. | Oct 2004 | B2 |
6809727 | Piot et al. | Oct 2004 | B2 |
6864877 | Braun et al. | Mar 2005 | B2 |
6906697 | Rosenberg | Jun 2005 | B2 |
6906700 | Armstrong | Jun 2005 | B1 |
6906703 | Vablais et al. | Jun 2005 | B2 |
6952203 | Banerjee et al. | Oct 2005 | B2 |
6954657 | Bork et al. | Oct 2005 | B2 |
6963762 | Kaaresoja et al. | Nov 2005 | B2 |
6995752 | Lu | Feb 2006 | B2 |
7005811 | Wakuda et al. | Feb 2006 | B2 |
7016707 | Fujisawa et al. | Mar 2006 | B2 |
7022927 | Hsu | Apr 2006 | B2 |
7023112 | Miyamoto et al. | Apr 2006 | B2 |
7081701 | Yoon et al. | Jul 2006 | B2 |
7121147 | Okada | Oct 2006 | B2 |
7123948 | Nielsen | Oct 2006 | B2 |
7130664 | Williams | Oct 2006 | B1 |
7136045 | Rosenberg et al. | Nov 2006 | B2 |
7161580 | Bailey et al. | Jan 2007 | B2 |
7162928 | Shank et al. | Jan 2007 | B2 |
7170498 | Huang | Jan 2007 | B2 |
7176906 | Williams et al. | Feb 2007 | B2 |
7182691 | Schena | Feb 2007 | B1 |
7194645 | Bieswanger et al. | Mar 2007 | B2 |
7217891 | Fischer et al. | May 2007 | B2 |
7218310 | Tierling et al. | May 2007 | B2 |
7219561 | Okada | May 2007 | B2 |
7253350 | Noro et al. | Aug 2007 | B2 |
7333604 | Zernovizky et al. | Feb 2008 | B2 |
7334350 | Ellis | Feb 2008 | B2 |
7348968 | Dawson | Mar 2008 | B2 |
7388741 | Konuma et al. | Jun 2008 | B2 |
7392066 | Hapamas | Jun 2008 | B2 |
7423631 | Shahoian et al. | Sep 2008 | B2 |
7446752 | Goldenberg et al. | Nov 2008 | B2 |
7469595 | Kessler et al. | Dec 2008 | B2 |
7495358 | Kobayashi et al. | Feb 2009 | B2 |
7508382 | Denoue et al. | Mar 2009 | B2 |
7561142 | Shahoian et al. | Jul 2009 | B2 |
7562468 | Ellis | Jul 2009 | B2 |
7569086 | Chandran | Aug 2009 | B2 |
7586220 | Roberts | Sep 2009 | B2 |
7619498 | Miura | Nov 2009 | B2 |
7639232 | Grant et al. | Dec 2009 | B2 |
7641618 | Noda et al. | Jan 2010 | B2 |
7675253 | Dorel | Mar 2010 | B2 |
7675414 | Ray | Mar 2010 | B2 |
7679611 | Schena | Mar 2010 | B2 |
7707742 | Ellis | May 2010 | B2 |
7710399 | Bruneau et al. | May 2010 | B2 |
7732951 | Mukaide | Jun 2010 | B2 |
7742036 | Grant et al. | Jun 2010 | B2 |
7788032 | Moloney | Aug 2010 | B2 |
7793429 | Ellis | Sep 2010 | B2 |
7793430 | Ellis | Sep 2010 | B2 |
7798982 | Zets et al. | Sep 2010 | B2 |
7868489 | Amemiya et al. | Jan 2011 | B2 |
7886621 | Smith et al. | Feb 2011 | B2 |
7888892 | McReynolds et al. | Feb 2011 | B2 |
7893922 | Klinghult et al. | Feb 2011 | B2 |
7919945 | Houston et al. | Apr 2011 | B2 |
7929382 | Yamazaki | Apr 2011 | B2 |
7946483 | Miller et al. | May 2011 | B2 |
7952261 | Lipton et al. | May 2011 | B2 |
7952566 | Poupyrev et al. | May 2011 | B2 |
7956770 | Klinghult et al. | Jun 2011 | B2 |
7961909 | Mandella et al. | Jun 2011 | B2 |
8031172 | Kruse et al. | Oct 2011 | B2 |
8044940 | Narusawa | Oct 2011 | B2 |
8069881 | Cunha | Dec 2011 | B1 |
8077145 | Rosenberg et al. | Dec 2011 | B2 |
8081156 | Ruettiger | Dec 2011 | B2 |
8082640 | Takeda | Dec 2011 | B2 |
8098234 | Lacroix et al. | Jan 2012 | B2 |
8123660 | Kruse et al. | Feb 2012 | B2 |
8125453 | Shahoian et al. | Feb 2012 | B2 |
8141276 | Ellis | Mar 2012 | B2 |
8156809 | Tierling et al. | Apr 2012 | B2 |
8174372 | da Costa | May 2012 | B2 |
8179202 | Cruz-Hernandez et al. | May 2012 | B2 |
8188623 | Park | May 2012 | B2 |
8205356 | Ellis | Jun 2012 | B2 |
8210942 | Shimabukuro et al. | Jul 2012 | B2 |
8232494 | Purcocks | Jul 2012 | B2 |
8248277 | Peterson et al. | Aug 2012 | B2 |
8248278 | Schlosser et al. | Aug 2012 | B2 |
8253686 | Kyung et al. | Aug 2012 | B2 |
8255004 | Huang et al. | Aug 2012 | B2 |
8261468 | Ellis | Sep 2012 | B2 |
8264465 | Grant et al. | Sep 2012 | B2 |
8270114 | Argumedo et al. | Sep 2012 | B2 |
8288899 | Park et al. | Oct 2012 | B2 |
8291614 | Ellis | Oct 2012 | B2 |
8294600 | Peterson et al. | Oct 2012 | B2 |
8315746 | Cox et al. | Nov 2012 | B2 |
8344834 | Niiyama | Jan 2013 | B2 |
8378797 | Pance et al. | Feb 2013 | B2 |
8378798 | Bells et al. | Feb 2013 | B2 |
8378965 | Gregorio et al. | Feb 2013 | B2 |
8384679 | Paleczny et al. | Feb 2013 | B2 |
8390594 | Modarres et al. | Mar 2013 | B2 |
8395587 | Cauwels et al. | Mar 2013 | B2 |
8398570 | Mortimer et al. | Mar 2013 | B2 |
8411058 | Wong et al. | Apr 2013 | B2 |
8446264 | Tanase | May 2013 | B2 |
8451255 | Weber et al. | May 2013 | B2 |
8466889 | Tong et al. | Jun 2013 | B2 |
8471690 | Hennig et al. | Jun 2013 | B2 |
8487759 | Hill | Jul 2013 | B2 |
8515398 | Song et al. | Aug 2013 | B2 |
8542134 | Peterson et al. | Sep 2013 | B2 |
8545322 | George et al. | Oct 2013 | B2 |
8547341 | Takashima et al. | Oct 2013 | B2 |
8552859 | Pakula et al. | Oct 2013 | B2 |
8570291 | Motomura | Oct 2013 | B2 |
8575794 | Lee et al. | Nov 2013 | B2 |
8587955 | DiFonzo et al. | Nov 2013 | B2 |
8598893 | Camus | Dec 2013 | B2 |
8599047 | Schlosser et al. | Dec 2013 | B2 |
8599152 | Wurtenberger et al. | Dec 2013 | B1 |
8600354 | Esaki | Dec 2013 | B2 |
8614431 | Huppi et al. | Dec 2013 | B2 |
8621348 | Ramsay et al. | Dec 2013 | B2 |
8633916 | Bernstein et al. | Jan 2014 | B2 |
8674941 | Casparian et al. | Mar 2014 | B2 |
8680723 | Subramanian | Mar 2014 | B2 |
8681092 | Harada et al. | Mar 2014 | B2 |
8682396 | Yang et al. | Mar 2014 | B2 |
8686952 | Pope et al. | Apr 2014 | B2 |
8710966 | Hill | Apr 2014 | B2 |
8723813 | Park et al. | May 2014 | B2 |
8735755 | Peterson et al. | May 2014 | B2 |
8760273 | Casparian et al. | Jun 2014 | B2 |
8787006 | Golko et al. | Jul 2014 | B2 |
8797152 | Henderson et al. | Aug 2014 | B2 |
8798534 | Rodriguez et al. | Aug 2014 | B2 |
8836502 | Culbert et al. | Sep 2014 | B2 |
8857248 | Shih et al. | Oct 2014 | B2 |
8860562 | Hill | Oct 2014 | B2 |
8861776 | Lastrucci | Oct 2014 | B2 |
8866600 | Yang et al. | Oct 2014 | B2 |
8890668 | Pance et al. | Nov 2014 | B2 |
8928621 | Ciesla et al. | Jan 2015 | B2 |
8948821 | Newham et al. | Feb 2015 | B2 |
8970534 | Adachi et al. | Mar 2015 | B2 |
8976141 | Myers et al. | Mar 2015 | B2 |
9008730 | Kim et al. | Apr 2015 | B2 |
9012795 | Niu | Apr 2015 | B2 |
9013426 | Cole et al. | Apr 2015 | B2 |
9019088 | Zawacki et al. | Apr 2015 | B2 |
9072576 | Nishiura | Jul 2015 | B2 |
9083821 | Hughes | Jul 2015 | B2 |
9092129 | Abdo et al. | Jul 2015 | B2 |
9098991 | Park et al. | Aug 2015 | B2 |
9122325 | Peshkin et al. | Sep 2015 | B2 |
9131039 | Behles | Sep 2015 | B2 |
9134834 | Reshef | Sep 2015 | B2 |
9158379 | Cruz-Hernandez et al. | Oct 2015 | B2 |
9178509 | Bernstein | Nov 2015 | B2 |
9189932 | Kerdemelidis et al. | Nov 2015 | B2 |
9201458 | Hunt et al. | Dec 2015 | B2 |
9202355 | Hill | Dec 2015 | B2 |
9235267 | Pope et al. | Jan 2016 | B2 |
9274601 | Faubert et al. | Mar 2016 | B2 |
9274602 | Garg et al. | Mar 2016 | B2 |
9274603 | Modarres et al. | Mar 2016 | B2 |
9275815 | Hoffmann | Mar 2016 | B2 |
9293054 | Bruni et al. | Mar 2016 | B2 |
9300181 | Maeda et al. | Mar 2016 | B2 |
9310906 | Yumiki et al. | Apr 2016 | B2 |
9317116 | Ullrich et al. | Apr 2016 | B2 |
9317118 | Puskarich | Apr 2016 | B2 |
9318942 | Sugita et al. | Apr 2016 | B2 |
9325230 | Yamada et al. | Apr 2016 | B2 |
9357052 | Ullrich | May 2016 | B2 |
9360944 | Pinault | Jun 2016 | B2 |
9390599 | Weinberg | Jul 2016 | B2 |
9396434 | Rothkopf | Jul 2016 | B2 |
9405369 | Modarres et al. | Aug 2016 | B2 |
9449476 | Lynn | Sep 2016 | B2 |
9477342 | Daverman et al. | Oct 2016 | B2 |
9501912 | Hayskjold et al. | Nov 2016 | B1 |
9594450 | Lynn et al. | Jul 2017 | B2 |
9779592 | Hoen | Oct 2017 | B1 |
20030210259 | Liu | Nov 2003 | A1 |
20040021663 | Suzuki et al. | Feb 2004 | A1 |
20040127198 | Roskind et al. | Jul 2004 | A1 |
20050057528 | Kleen | Mar 2005 | A1 |
20050107129 | Kaewell et al. | May 2005 | A1 |
20050110778 | Ben Ayed | May 2005 | A1 |
20050118922 | Endo | Jun 2005 | A1 |
20050217142 | Ellis | Oct 2005 | A1 |
20050237306 | Klein et al. | Oct 2005 | A1 |
20050248549 | Dietz et al. | Nov 2005 | A1 |
20050258715 | Schlabach | Nov 2005 | A1 |
20060014569 | DelGiorno | Jan 2006 | A1 |
20060154674 | Landschaft et al. | Jul 2006 | A1 |
20060209037 | Wang et al. | Sep 2006 | A1 |
20060239746 | Grant | Oct 2006 | A1 |
20060252463 | Liao | Nov 2006 | A1 |
20070099574 | Wang | May 2007 | A1 |
20070152974 | Kim et al. | Jul 2007 | A1 |
20070178942 | Sadler et al. | Aug 2007 | A1 |
20070188450 | Hernandez et al. | Aug 2007 | A1 |
20080084384 | Gregorio et al. | Apr 2008 | A1 |
20080158149 | Levin | Jul 2008 | A1 |
20080165148 | Williamson | Jul 2008 | A1 |
20080181501 | Faraboschi | Jul 2008 | A1 |
20080181706 | Jackson | Jul 2008 | A1 |
20080192014 | Kent et al. | Aug 2008 | A1 |
20080204428 | Pierce et al. | Aug 2008 | A1 |
20080255794 | Levine | Oct 2008 | A1 |
20090002328 | Ullrich et al. | Jan 2009 | A1 |
20090115734 | Fredriksson et al. | May 2009 | A1 |
20090120105 | Ramsay et al. | May 2009 | A1 |
20090128503 | Grant et al. | May 2009 | A1 |
20090135142 | Fu et al. | May 2009 | A1 |
20090167702 | Nurmi | Jul 2009 | A1 |
20090167704 | Terlizzi et al. | Jul 2009 | A1 |
20090218148 | Hugeback et al. | Sep 2009 | A1 |
20090225046 | Kim et al. | Sep 2009 | A1 |
20090236210 | Clark et al. | Sep 2009 | A1 |
20090267892 | Faubert | Oct 2009 | A1 |
20090313542 | Cruz-Hernandez | Dec 2009 | A1 |
20100020036 | Hui et al. | Jan 2010 | A1 |
20100053087 | Dai et al. | Mar 2010 | A1 |
20100079264 | Hoellwarth | Apr 2010 | A1 |
20100089735 | Takeda et al. | Apr 2010 | A1 |
20100141606 | Bae et al. | Jun 2010 | A1 |
20100152620 | Ramsay et al. | Jun 2010 | A1 |
20100164894 | Kim et al. | Jul 2010 | A1 |
20100188422 | Shingai et al. | Jul 2010 | A1 |
20100194547 | Terrell et al. | Aug 2010 | A1 |
20100231508 | Cruz-Hernandez et al. | Sep 2010 | A1 |
20100231550 | Cruz-Hernandez et al. | Sep 2010 | A1 |
20100265197 | Purdy | Oct 2010 | A1 |
20100309141 | Cruz-Hernandez et al. | Dec 2010 | A1 |
20100328229 | Weber et al. | Dec 2010 | A1 |
20110053577 | Lee et al. | Mar 2011 | A1 |
20110107958 | Pance et al. | May 2011 | A1 |
20110121765 | Anderson et al. | May 2011 | A1 |
20110128239 | Polyakov et al. | Jun 2011 | A1 |
20110148608 | Grant et al. | Jun 2011 | A1 |
20110163985 | Bae et al. | Jul 2011 | A1 |
20110193824 | Modarres et al. | Aug 2011 | A1 |
20110248948 | Griffin et al. | Oct 2011 | A1 |
20110260988 | Colgate et al. | Oct 2011 | A1 |
20110263200 | Thornton et al. | Oct 2011 | A1 |
20110291950 | Tong | Dec 2011 | A1 |
20110304559 | Pasquero | Dec 2011 | A1 |
20120068957 | Puskarich et al. | Mar 2012 | A1 |
20120075198 | Sulem et al. | Mar 2012 | A1 |
20120092263 | Peterson et al. | Apr 2012 | A1 |
20120126959 | Zarrabi et al. | May 2012 | A1 |
20120127088 | Pance et al. | May 2012 | A1 |
20120133494 | Cruz-Hernandez et al. | May 2012 | A1 |
20120139844 | Ramstein et al. | Jun 2012 | A1 |
20120256848 | Madabusi Srinivasan | Oct 2012 | A1 |
20120268412 | Cruz-Hernandez et al. | Oct 2012 | A1 |
20120274578 | Snow et al. | Nov 2012 | A1 |
20120280927 | Ludwig | Nov 2012 | A1 |
20120327006 | Israr et al. | Dec 2012 | A1 |
20130027345 | Binzel | Jan 2013 | A1 |
20130063285 | Elias | Mar 2013 | A1 |
20130063356 | Martisauskas | Mar 2013 | A1 |
20130076462 | Gassmann et al. | Mar 2013 | A1 |
20130106699 | Babatunde | May 2013 | A1 |
20130191741 | Dickinson et al. | Jul 2013 | A1 |
20130200732 | Jun et al. | Aug 2013 | A1 |
20130207793 | Weaber et al. | Aug 2013 | A1 |
20130217491 | Hilbert et al. | Aug 2013 | A1 |
20130222280 | Sheynblat et al. | Aug 2013 | A1 |
20130228023 | Drasnin et al. | Sep 2013 | A1 |
20130257776 | Tissot | Oct 2013 | A1 |
20130261811 | Yagi et al. | Oct 2013 | A1 |
20130300590 | Dietz et al. | Nov 2013 | A1 |
20140035397 | Endo et al. | Feb 2014 | A1 |
20140082490 | Jung et al. | Mar 2014 | A1 |
20140197936 | Biggs et al. | Jul 2014 | A1 |
20140232534 | Birnbaum et al. | Aug 2014 | A1 |
20140247227 | Jiang et al. | Sep 2014 | A1 |
20140267076 | Birnbaum et al. | Sep 2014 | A1 |
20140267952 | Sirois | Sep 2014 | A1 |
20150005039 | Liu et al. | Jan 2015 | A1 |
20150090572 | Lee et al. | Apr 2015 | A1 |
20150169059 | Behles et al. | Jun 2015 | A1 |
20150192414 | Das et al. | Jul 2015 | A1 |
20150194165 | Faaborg et al. | Jul 2015 | A1 |
20150220199 | Wang et al. | Aug 2015 | A1 |
20150227204 | Gipson et al. | Aug 2015 | A1 |
20150296480 | Kinsey et al. | Oct 2015 | A1 |
20150324049 | Kies et al. | Nov 2015 | A1 |
20150349619 | Degner et al. | Dec 2015 | A1 |
20160049265 | Bernstein | Feb 2016 | A1 |
20160063826 | Morrell et al. | Mar 2016 | A1 |
20160071384 | Hill | Mar 2016 | A1 |
20160162025 | Shah | Jun 2016 | A1 |
20160163165 | Morrell et al. | Jun 2016 | A1 |
20160172953 | Hamel et al. | Jun 2016 | A1 |
20160195929 | Martinez et al. | Jul 2016 | A1 |
20160196935 | Bernstein | Jul 2016 | A1 |
20160206921 | Szabados et al. | Jul 2016 | A1 |
20160211736 | Moussette et al. | Jul 2016 | A1 |
20160216764 | Morrell et al. | Jul 2016 | A1 |
20160216766 | Puskarich | Jul 2016 | A1 |
20160231815 | Moussette et al. | Aug 2016 | A1 |
20160241119 | Keeler | Aug 2016 | A1 |
20160259480 | Augenbergs et al. | Sep 2016 | A1 |
20160306423 | Uttermann et al. | Oct 2016 | A1 |
20160371942 | Smith, IV et al. | Dec 2016 | A1 |
20170038905 | Bijamov et al. | Feb 2017 | A1 |
20170257844 | Miller et al. | Sep 2017 | A1 |
20170285747 | Chen | Oct 2017 | A1 |
20170311282 | Miller et al. | Oct 2017 | A1 |
20170357325 | Yang et al. | Dec 2017 | A1 |
20170364158 | Wen et al. | Dec 2017 | A1 |
Number | Date | Country |
---|---|---|
2015100710 | Jul 2015 | AU |
2355434 | Feb 2002 | CA |
101409164 | Apr 2009 | CN |
201829004 | May 2011 | CN |
102591512 | Jul 2012 | CN |
102713805 | Oct 2012 | CN |
102844972 | Dec 2012 | CN |
102915111 | Feb 2013 | CN |
103181090 | Jun 2013 | CN |
103218104 | Jul 2013 | CN |
103416043 | Nov 2013 | CN |
104220963 | Dec 2014 | CN |
19517630 | Nov 1996 | DE |
10330024 | Jan 2005 | DE |
102009038103 | Feb 2011 | DE |
102011115762 | Apr 2013 | DE |
0483955 | May 1992 | EP |
1047258 | Oct 2000 | EP |
1686776 | Aug 2006 | EP |
2060967 | May 2009 | EP |
2073099 | Jun 2009 | EP |
2194444 | Jun 2010 | EP |
2264562 | Dec 2010 | EP |
2315186 | Apr 2011 | EP |
2374430 | Oct 2011 | EP |
2395414 | Dec 2011 | EP |
2461228 | Jun 2012 | EP |
2631746 | Aug 2013 | EP |
2434555 | Oct 2013 | EP |
H05301342 | Nov 1993 | JP |
2002199689 | Jul 2002 | JP |
2002102799 | Sep 2002 | JP |
200362525 | Mar 2003 | JP |
2004236202 | Aug 2004 | JP |
20050033909 | Apr 2005 | KR |
1020100046602 | May 2010 | KR |
1020110101516 | Sep 2011 | KR |
20130024420 | Mar 2013 | KR |
200518000 | Nov 2007 | TW |
200951944 | Dec 2009 | TW |
201218039 | May 2012 | TW |
WO 9716932 | May 1997 | WO |
WO 01059588 | Aug 2001 | WO |
WO 02073587 | Sep 2002 | WO |
WO 03038800 | May 2003 | WO |
WO 06057770 | Jun 2006 | WO |
WO 07114631 | Oct 2007 | WO |
WO 08075082 | Jun 2008 | WO |
WO 09038862 | Mar 2009 | WO |
WO 09068986 | Jun 2009 | WO |
WO 09097866 | Aug 2009 | WO |
WO 09122331 | Oct 2009 | WO |
WO 09150287 | Dec 2009 | WO |
WO 10085575 | Jul 2010 | WO |
WO 10087925 | Aug 2010 | WO |
WO 11007263 | Jan 2011 | WO |
WO 12052635 | Apr 2012 | WO |
WO 12129247 | Sep 2012 | WO |
WO 13069148 | May 2013 | WO |
WO 13169299 | Nov 2013 | WO |
WO 13169302 | Nov 2013 | WO |
WO 14018086 | Jan 2014 | WO |
WO 15023670 | Feb 2015 | WO |
Entry |
---|
International Search Report and Written Opinion dated May 21, 2014, PCT/US2013/062449, 12 pages. |
Astronomer's Toolbox, “The Electromagnetic Spectrum,” http://imagine.gsfc.nasa.gov/science/toolbox/emspectrum1.html, updated Mar. 2013, 4 pages. |
Hasser et al., “Preliminary Evaluation of a Shape-Memory Alloy Tactile Feedback Display,” Advances in Robotics, Mechantronics, and Haptic Interfaces, ASME, DSC-vol. 49, pp. 73-80, 1993. |
Hill et al., “Real-time Estimation of Human Impedance for Haptic Interfaces,” Stanford Telerobotics Laboratory, Department of Mechanical Engineering, Stanford University, Third Joint Eurohaptics Conference and Symposium on Haptic Interfaces for Virtual Environment and Teleoperator Systems, Salt Lake City, Utah, Mar. 18-20, 2009, pp. 440-445. |
Kim et al., “Tactile Rendering of 3D Features on Touch Surfaces,” UIST '13, Oct. 8-11, 2013, St. Andrews, United Kingdom, 8 pages. |
Lee et al, “Haptic Pen: Tactile Feedback Stylus for Touch Screens,” Mitsubishi Electric Research Laboratories, http://wwwlmerl.com, 6 pages, Oct. 2004. |
U.S. Appl. No. 12/750,054, filed Mar. 30, 2010, Hill. |
U.S. Appl. No. 12/887,455, filed Sep. 21, 2010, Puskarich et al. |
U.S. Appl. No. 12/950,940, filed Nov. 19, 2010, Pance et al. |
U.S. Appl. No. 13/630,867, filed Sep. 28, 2012, Bernstein. |
U.S. Appl. No. 13/943,639, filed Jul. 16, 2013, Hill. |
U.S. Appl. No. 14/059,693, filed Oct. 22, 2013, Puskarich. |
U.S. Appl. No. 14/165,475, filed Jan. 27, 2014, Hayskjold et al. |
U.S. Appl. No. 14/493,190, filed Sep. 22, 2014, Hoen. |
U.S. Appl. No. 14/512,927, filed Oct. 13, 2014, Hill. |
U.S. Appl. No. 14/728,505, filed Jun. 2, 2015, Degner et al. |
U.S. Appl. No. 14/841,582, filed Aug. 31, 2015, Morrell et al. |
U.S. Appl. No. 14/928,465, filed Oct. 30, 2015, Bernstein. |
U.S. Appl. No. 14/942,521, filed Nov. 16, 2015, Hill. |
U.S. Appl. No. 14/910,108, filed Feb. 4, 2016, Martinez et al. |
U.S. Appl. No. 15/045,761, filed Feb. 17, 2016, Morrell et al. |
U.S. Appl. No. 15/046,194, filed Feb. 17, 2016, Degner et al. |
U.S. Appl. No. 15/047,447, filed Feb. 18, 2016, Augenbergs et al. |
U.S. Appl. No. 15/068,038, filed Mar. 11, 2016, Bernstein. |
U.S. Appl. No. 15/025,243, filed Mar. 25, 2016, Keeler. |
U.S. Appl. No. 15/025,425, filed Mar. 28, 2016, Moussette et al. |
U.S. Appl. No. 15/025,277, filed Mar. 27, 2016, Morrell et al. |
U.S. Appl. No. 15/025,250, filed Mar. 25, 2016, Moussette et al. |
U.S. Appl. No. 15/091,501, filed Apr. 5, 2016, Puskarich. |
U.S. Appl. No. 15/098,669, filed Apr. 14, 2016, Uttermann et al. |
U.S. Appl. No. 15/102,826, filed Jun. 8, 2016, Smith et al. |
U.S. Appl. No. 15/621,966, filed Jun. 13, 2017, Pedder et al. |
U.S. Appl. No. 15/621,930, filed Jun. 13, 2017, Wen et al. |
U.S. Appl. No. 15/622,017, filed Jun. 13, 2017, Yang et al. |
U.S. Appl. No. 15/641,192, filed Jul. 3, 2017, Miller et al. |
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20160233012 A1 | Aug 2016 | US |