An embodiment of the invention is directed to a biased electromagnet for audio electronic devices. Other embodiments are also described and claimed.
In modern consumer electronics, audio capability is playing an increasingly larger role as improvements in digital audio signal processing and audio content delivery continue to happen. There is a range of consumer electronics devices that are not dedicated or specialized audio playback devices, yet can benefit from improved audio performance. For instance, portable computing devices such as laptops, notebooks, and tablet computers are ubiquitous, as are portable communications devices such as smart phones. These devices, however, do not have sufficient space to house high fidelity speakers. This is also true to a lesser extent for desktop personal computers and low profile television sets with built-in speakers.
Generally, as a speaker decreases in size it is able to move less volume and thus sound quality (or at least loudness) may decrease. This may be especially noticeable for sounds in the lower end of the audio spectrum, e.g., beneath 1 kHz. Furthermore, the available volume within an electronic device shrinks, which in turn provides less air for a speaker to react against and thus limits the audible response. Similarly, the sound level and frequencies able to be produced by a speaker may also decrease as the size of the speaker decreases. Thus, as electronic devices continue to decrease in size, detrimental effects may be experienced for audio produced by the devices.
An embodiment of the invention is an electronic device including an enclosure having a top panel and a bottom panel. An electromagnet is mounted within the enclosure, the electromagnet includes a core portion attached to the top panel and a coil connected to the core portion. An attractor plate may be attached to the bottom panel. The attractor plate forms part of a magnetic circuit of the electromagnet such that the application of an electrical audio signal to the electromagnet causes the bottom panel to move and produce a sound. A permanent magnet is also attached to the core portion, the permanent magnet is configured to create a bias in the magnetic circuit so as to modify a distortion in the sound.
Another embodiment is directed to an electronic audio system including an enclosure having a first panel operably connected to a second panel. A transducer is mounted within the enclosure. The transducer includes an electromagnet having a core portion operably connected to the first panel and a coil operably connected to the core portion. The transducer further includes an attractor plate operably connected to the second panel, the attractor plate forms part of a magnetic circuit of the electromagnet such that an electrical audio signal input to the electromagnet creates a dynamic force between the first panel and the second panel so as to generate a sound. The transducer further includes a permanent magnet operably connected to the core portion, the permanent magnet is configured to create a biased force between the attractor plate and the electromagnet so as to modify a distortion in the sound. The electronic audio system further includes a memory to store an operating system program and a processor coupled to the memory to execute the operating system program.
In another embodiment, a method of outputting sound from an electronic device is disclosed. The method includes generating a sound by producing a dynamic force between a first panel and a second panel of an enclosure of an electronic device. Producing the dynamic force may include applying an electrical audio signal to an electromagnet associated with the first panel so as to create a magnetic circuit which attracts the second panel to the first panel. The method further including biasing the magnetic circuit so as to modify a distortion in the sound.
The above summary does not include an exhaustive list of all aspects of the present invention. It is contemplated that the invention includes all systems and methods that can be practiced from all suitable combinations of the various aspects summarized above, as well as those disclosed in the Detailed Description below and particularly pointed out in the claims filed with the application. Such combinations have particular advantages not specifically recited in the above summary.
The embodiments are illustrated by way of example and not by way of limitation in the figures of the accompanying drawings in which like references indicate similar elements. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and they mean at least one.
In this section we shall explain several preferred embodiments of this invention with reference to the appended drawings. Whenever the shapes, relative positions and other aspects of the parts described in the embodiments are not clearly defined, the scope of the invention is not limited only to the parts shown, which are meant merely for the purpose of illustration. Also, while numerous details are set forth, it is understood that some embodiments of the invention may be practiced without these details. In other instances, well-known structures and techniques have not been shown in detail so as not to obscure the understanding of this description.
Electromagnet 100 may drive movement of top panel 106 or bottom panel 108 with respect to the other in order to generate a sound. To do so, in one embodiment, electromagnet 100 may be attached to top panel 106 and an attractor plate 110 may be attached to bottom panel 108. In this embodiment, electromagnet 100 and attractor plate 110 are separate and independent structures which are separately attached to their associated panels. Attractor plate 110 may be a substantially planar structure such that it does not substantially affect a Z-height of the overall enclosure (e.g. a thickness or vertical height of the enclosure as viewed in
It should be understood, however, that although electromagnet 100 is described as being attached to a stationary top panel 106 while attractor plate 110 is attached to a movable bottom panel 108, other configurations are possible depending upon which of the associated components are to be moved. For example, in some embodiments, top panel 106 may be movable while bottom panel 108 is stationary such that the electromagnet 100 and attractor plate 110 move top panel 106 while bottom panel 108 remains stationary. In another example, electromagnet 100 may be attached to a movable panel (panel 108) while attractor plate 110 is attached to a stationary panel (panel 106) such that the panel attached to electromagnet 100 moves while the panel attached to attractor plate 110 remains stationary. Also, although the terms “top panel” and “bottom panel” are used herein, it does not necessarily mean that one panel is on top of the other, and in some cases the bottom panel may form a top or side of the enclosure or the top panel may form a bottom or side of the enclosure, for example, where the electronic device is flipped over or flipped on its side. In addition, although electromagnet 100 and attractor plate 110 are described as being attached to top panel 106 and bottom panel 108, respectively, they may be attached to any type of component or structure where movement of one with respect to the other is desired.
It should further be understood that an advantage of using electromagnet 100 and attractor plate 110 to produce a dynamic force between top panel 106 and bottom panel 108, as compared to a typical moving coil design, is that the electromagnet 100 sits on one component (top panel 106 in this case) and only a passive attractor plate 110 sits on the other component (bottom panel 108 in this case). This allows the transducer to be tolerant of relative positioning (e.g. horizontal positioning) of one component with respect to the other. This is in contrast to a moving coil configuration in which the magnet and the coil are attached to separate components and therefore have to be accurately aligned in both the horizontal and vertical directions.
Referring in more detail to electromagnet 100, electromagnet 100 includes a core portion 102 and associated coil 120. Coil 120 may be made of an electrically conductive material such that transmission of an electrical current through coil 120 creates a magnetic field which can be concentrated within core portion 102. In one embodiment, the core portion 102 may include a base portion 122 which is a substantially planar member which is mounted within the enclosure, on or near top panel 106. A coil support arm 124 and side arms 126 and 128 extend from base portion 122 in a direction of bottom panel 108. Side arms 126 and 128 are spaced a distance from opposing sides of coil support arm 124 such that coil 120 can be positioned around coil support arm 124. Although three arms are shown extending from base portion 122, it is contemplated that core portion 102 may include any number of arms sufficient to support the associated coil and allow for attachment of a component such as top panel 106. In some embodiments, core portion 102 and the associated coil 120 are attached directly to top panel 106, such as by a bolt, screw or the like through base portion 122, while in other embodiments, a bracket assembly may be used to attach core portion 102 and the associated coil 120 to top panel 106. Core portion 102 may be one integrally formed structure made of any material suitable for forming an electromagnet core (e.g., a ferromagnetic material such as iron).
In some embodiments, permanent magnets 104A and 104B are attached to the ends of side arms 126 and 128, respectively, facing attractor plate 110. In one embodiment, side arms 126 and 128 may have a length which is less than coil support arm 124 so as not to increase an overall height of electromagnet 100 when permanent magnets 104A and 104B are attached thereto. Such a configuration also helps to maintain the spacing of gap 112 between electromagnet 100 and attractor plate 110. Permanent magnets 104A and 104B are used to create a bias force between attractor plate 110 and electromagnet 100. This bias force is important to the acoustic performance of the device because it allows the sound created by movement of the bottom panel 108 to be accurately recreated from the dynamic input electrical audio signal without distortion. In particular, as previously discussed, electromagnet 100 creates an attractive force with attractor plate 110. Since only attractive forces are possible, the input electrical audio signal is rectified and therefore any corresponding dynamic force produced by the audio signal is not proportional to the audio signal (i.e. any audio signal current below zero is output as a positive dynamic force). This, in turn, results in a distorted sound output.
The concepts of a bias force and rectification of the audio signal may be better understood in reference to
With the foregoing in mind, the manner in which permanent magnets 104A and 104B create the biased force and allow for the sound created by bottom panel 108 to be recreated from the dynamic audio signal without distortion will now be described in more detail. Representatively, referring back to
It is noted that the distance the attractor plate 110, and in turn bottom panel 108, travel to or from electromagnet 100 may be varied by varying the electrical charge to which coil 120 is subjected. In this manner, attractor plate 110 may be driven by electromagnet 100 in precise motions depending upon the strength and duration of the electrical current applied to the coil. The motion of the corresponding panel, in this case bottom panel 108, produces audible sound waves which can enhance an acoustic response of the overall audio device. Thus the attractor plate 110 in combination with electromagnet 100 essentially serves as a transducer in which bottom panel 108 operates similar to the diaphragm found in the conventional audio transducer.
In some embodiments, bottom panel 108 may produce audible low frequency sound waves (e.g., sound waves of below 1 kilohertz frequency) as well as other audio frequency sounds. Bottom panel 108 may have a greater surface area than a diaphragm of a typical speaker that may be contained within the electronic device, as such, it may move more air and thus produce more (and possibly clearer) audio. That is, because the bottom panel 108 may have a larger surface area than other speakers installed within the electronic device, the sound produced by causing the bottom panel 108 to move may be louder than traditional speakers. Also, because the electromagnet 100 utilizes the whole enclosure to move most of the air, the actual size of the transducer assembly (i.e., electromagnet 100 and attractor plate 110) may be quite small in comparison to a traditional speaker capable of outputting the same volume of audio. This is beneficial due to the limited space within typical electronic device enclosures. Thus, the transducer assembly may save space, while producing a loud sound often not achievable by ordinary speakers within the space constrains of the enclosure(s).
Returning now to the configuration of permanent magnets, in one embodiment, permanent magnets 104A and 104B may be attached (e.g., chemically attached, welded, screwed, or the like) to an end of side arms 126 and 128, respectively, such that they face attractor plate 110 and are within the magnetic circuit created by electromagnet 100. Permanent magnets 104A and 104B may be positioned such that their poles face the same direction. In other words, both permanent magnets 104A and 104B are oriented so that their South poles face attractor plate 110 or so that their North poles face attractor plate 110. Permanent magnets 104A and 104B may extend along the entire length of side arms 126 and 128 as illustrated by the exploded view of
Resilient spacers 302A-302C may be attached to the ends of, and run along an entire length of, each of side arms 126, 128 and coil support arm 124. Alternatively, resilient spacers 302A-302C may run along only a portion of the arms, or be attached to less than each of side arms 126, 128 and coil support arm 124 as illustrated. Still further, it is contemplated that one or more of resilient spacers 302A-302C may be omitted such that they are attached to less than each of each of side arms 126, 128 and coil support arm 124.
Resilient spacers 302A-302C may be made of any resilient structure or material suitable for maintaining a vertical alignment and/or enhancing movement between electromagnet 100 and attractor plate 110. For example, one or more of resilient spacers 302A-302C could be made of a block of resilient or elastic material such as a rubber or foam material. Alternatively, resilient spacers 302A-302C could be made of a spring or other resilient structure. In some embodiments, resilient spacers 302A-302C may contain a ferromagnetic material such that they help to improve an efficiency of the magnetic circuit. Representatively, resilient spacers 302A-302C may be made entirely of a ferromagnetic material (e.g., an iron spring) or they may be made of a composite of a resilient material such as a rubber or elastic material which is embedded with or otherwise contains a ferromagnetic material (e.g., filings) in an amount sufficient to improve the efficiency of the magnetic circuit.
It is to be understood that although the previously discussed permanent magnets are shown at specific locations along electromagnet 100, it is contemplated that the permanent magnets may be positioned at any location within the magnetic circuit created by electromagnet 100. Moreover, a single permanent magnet may be positioned within the magnetic circuit or more than one permanent magnet may be positioned within the magnetic circuit, for example, three permanent magnets may be positioned within the magnetic circuit, e.g., one at each end of arms 124, 126 and 128. Moreover, although core portion 102 of electromagnet 100 is shown having three arms 124, 126 and 128, any number of arms sufficient to create a magnetic circuit between electromagnet 100 and attractor plate 120 may be provided. For example, more or fewer than three arms may extend from base portion 122. Representatively, in one embodiment, two arms may extend from base portion 122 and coil 120 positioned around one of the arms or the base portion between the arms. In another embodiment, the arms may be omitted and coil 120 may be positioned around the base portion 122.
In addition, it is contemplated that in some embodiments attractor plate 110 may be omitted and instead, the enclosure opposite the electromagnet 100 and coil 120, which is used to generate the sound (e.g., bottom panel 108), may be made of a material similar to attractor plate 110 (e.g., a ferromagnetic material). In this aspect, the attractive force created by electromagnet 100 pulls the enclosure panel toward electromagnet 100 in the absence of attractor plate 110.
In another embodiment, the bias force between electromagnet 100 and attractor plate 110 may be created by using a direct current (DC) (i.e., bias current) to create the bias instead of permanent magnets and the permanent magnets may be omitted. Representatively, the audio signal may be tracked and the bias signal varied slowly over time such that only a sufficient bias is used in a given section of the audio signal (e.g., a desired section of a song) to stop the force from dropping to zero resulting in signal rectification.
Electronic device 600 may be capable of storing and/or processing signals such as those used to produce images and/or sound. In some embodiments, electronic device 600 may be a laptop computer, a handheld electronic device, a mobile telephone, a tablet electronic device, an audio playback device, such as an MP3 player, and the like. A keyboard 618 and mouse (or touch pad) 650 may be coupled to the electronic device 600 via a system bus 640 (see
The keyboard 618 and the mouse 650, in one example, may provide user input to the electronic device 600; this user input may be communicated to a processor 638 through suitable communications interfaces, buses and the like. Other suitable input devices may be used in addition to, or in place of, the mouse 650 and the keyboard 618. For example, in some embodiments the electronic device 600 may be a smart phone, tablet computer or the like and include a touch screen (e.g., a capacitive screen) in addition to or in replace of either the keyboard 618, the mouse 650 or both. An input/output unit 636 (I/O) coupled to the system bus 640 represents such I/O elements as a printer, stylus, audio/video I/O, and so on. For example, external speakers may be electrically coupled to the electronic device 600 via an input/outlet connection (not shown).
The electronic device 600 may also include a video memory 642, a main memory 644 and a mass storage 648, all coupled to the system bus 640 along with the keyboard 618, the mouse 650 and the processor 638. In some embodiments, main memory 644 may store an operating system program, which may include instructions for operating electronic device 600. Processor 638 may be configured to execute the operating system program. Processor 638 may be any suitable microprocessor or microcomputer. The mass storage 648 may include both fixed and removable media, such as magnetic, optical or magnetic optical storage systems and any other available mass storage technology. The system bus 640 may contain, for example, address lines for addressing the video memory 642 or the main memory 644.
The system bus 640 also may include a data bus for transferring data between and among the components, such as the processor 638, the main memory 644, the video memory 642 and the mass storage 648. The video memory 642 may be, for example, a dual-ported video random access memory or any other suitable memory. One port of the video memory 642, in one example, is coupled to a video amplifier 634 which is used to drive a display screen 616. The display screen 616 may be any type of screen suitable for displaying graphic images, such as a liquid crystal display, cathode ray tube monitor, flat panel, plasma, or any other suitable data presentation device. Furthermore, in some embodiments the display screen 616 may include touch screen features, for example, the display screen 616 may be capacitive. These embodiments allow a user to enter input into the display screen 16 directly.
The electronic device 600 also may include a communication interface 646 coupled to the system bus 640. The communication interface 646 provides a two-way data communication coupling via a network link. For example, the communication interface 646 may be a satellite link, a local area network (LAN) card, a cable modem, and/or wireless interface. In any such implementation, the communication interface 646 sends and receives electrical, electromagnetic or optical signals that carry digital data streams representing various types of information.
Code and/or other information (e.g. an operating system program) received by the electronic device 600 may be executed by the processor 638 as the code is received. Code may likewise be stored in the mass storage 648, or other non-volatile storage for later execution. In this manner, the electronic device 600 may obtain program code in a variety of forms and from a variety of sources. Program code may be embodied in any form of computer program product such as a medium configured to store or transport computer readable code or data, or in which computer readable code or data may be embedded. Examples of computer program products include CD-ROM discs, ROM cards, floppy disks, magnetic tapes, computer hard drives, servers on a network, and solid state memory devices.
The electronic device 600 may also include an audio transducer 626. The audio transducer 626 may be coupled to the system bus 640, which may in turn electrically connect the audio transducer 626 to any of the processor 638, main memory 644, mass storage 648 and the like. The audio transducer 626 is an output device that produces sound waves in response to electrical signals. The audio transducer 626 may be encased within or otherwise affixed to one of the enclosures 612, 614 and may be used alone or in combination with other output devices (such as an external speaker) to produce sound. Additionally, the audio transducer assembly 626 may mechanically vibrate other surfaces, such as the enclosures 612, 614 and/or a supporting surface on which the device rests, to produce a louder sound. Thus, as the audio transducer 626 responds to the electrical signal it vibrates the enclosure 612, 614, which in turn disturbs air particles and produces sound waves.
The enclosures 612, 614 may be constructed out of a variety of materials and, depending on the type electronic device 600, may be constructed in a variety of different shapes. In some embodiments, the enclosures 612, 614 may be constructed out of carbon fiber, aluminum, glass and other similar, relatively stiff materials. The material for the enclosures 612, 614 in some embodiments may improve the sound volume and/or quality produced by the audio transducer 626. This is because in some embodiments the enclosure 612, 614 mechanically vibrates due to vibrations produced by the audio transducer 626, producing sound waves. Thus, the material may be altered to be more responsive to the vibrations and/or more easily move, increasing the sound quality/volume. Additionally, it should be noted that the bottom enclosure 612 and the top enclosure 614 may be constructed out of different materials from each other. Furthermore, in some embodiments the electronic device 600 may only include one of the enclosures 612, 614. For instance, if the electronic device display 616 includes a touch screen or other display device that also accepts input, then the bottom enclosure 612 may be omitted as the keyboard 618 and mouse 650 may be integrated into the top enclosure 614.
The enclosures 612, 614 in some embodiments may be water and/or air-tight. This is because the audio transducer 626, as discussed in more detail below, may not require an air-opening (e.g., a grille or screen) in order for a user to hear sound waves produced by the audio transducer 626. The audio transducer 626 uses the enclosures 612, 614 and/or supporting surface to produce sound waves, as opposed to a diaphragm within a traditional speaker that must be open to the air in order for the sound waves to be heard. Therefore, the enclosures 612, 614 and thus the electronic device 600 may be completely sealed from water and/or air. This may permit the electronic device 600 to be waterproof, more versatile, and allows the electronic device 600 to have a refined, smooth outer appearance. However, as the electronic device 600, may include a combination of an audio transducer 626 and a speaker 620, in other embodiments the enclosures 612, 614 may include a grill/screen.
The bottom panel 752 and the top panel 728 may be connected together in a variety of ways. In the embodiment illustrated in
The internal elements described above with regard to
The audio transducer 626 may be installed in such a manner that one of the electromagnet 100 and the attractor plate 110 is attached to the top panel 728 while the other is attached to the bottom panel 752. In some instances, the electromagnet 100 may be operably connected to the top panel 728 while the attractor plate 110 is operably connected to the bottom panel 752, but in other embodiments the electromagnet 100 may be operably connected to the bottom panel 752 while the attractor plate 110 is operably connected to the top panel 728. In still other embodiments, the electromagnet 100 may be connected to a circuit boards 757, 759, for instance a motherboard, logic board or the like. Thus, in different embodiments the electromagnet 100 may be connected to either of the panels 728, 752 or either of the circuit boards 757, 759.
The concepts described here, however, need not be limited to portable audio devices such as laptop computers. For example, as seen in
To further enable its use as a mobile communications device, device 800 may include various acoustic openings or ports at different locations within enclosure 802 to allow for transmission of acoustic signals to and from device 800. Representatively, enclosure 802 may have formed therein a speaker acoustic port 810, a receiver acoustic port 812 and microphone acoustic ports 816, 818, 820. Although the acoustic ports are illustrated as separate ports, it is contemplated that any one or more of the illustrated ports may be combined into one port such that, for example, the transducers associated with the illustrated receiver or microphone ports may instead share the same port. In one embodiment, the receiver acoustic port 812 is formed within top panel 804 of enclosure 802 and speaker acoustic port 810 is formed within an end portion of sidewall portion 808. It is contemplated, however, that each of these ports may be formed in other portions of enclosure 802, for example, speaker acoustic port 810 may be on the top panel 804 or bottom panel 806 while receiver acoustic port 812 is along the sidewall. Each of these ports may consist of multiple holes clustered together or alternatively a single, large hole as shown.
Each of the speaker acoustic port 810, receiver acoustic port 812 and microphone acoustic ports 816, 818 and 820 may be associated with one or more transducers, which are mounted within enclosure 802. In the case of the microphone acoustic ports 816, 818 and 820, the transducer is an acoustic-to-electric transducer such as a microphone that converts sound into an electrical signal. The microphone may be any type of microphone capable of receiving acoustic energy, for example sound through the associated port, and converting it into an electrical signal. For example, in one embodiment, the microphone may be a micro-electro-mechanical systems (MEMS) microphone, also referred to as a microphone chip or silicon microphone. In this aspect, various features of the microphone such as the pressure-sensitive diaphragm, are etched directly into a silicon chip by MEMS techniques.
Camera 822 may further be mounted to enclosure 802 to capture still and/or video images of objects of interest. Enclosure 802 may further include other input-output devices such as an earphone port (not shown) to receive an earphone plug, docking port 814 and command button 826. Docking port 814 may sometimes be referred to as a dock connector, 30-pin data port connector, input-output port, or bus connector, and may be used as an input-output port (e.g., when connecting device 800 to a mating dock connected to a computer or other electronic device). Command button 826 may be, for example, a menu button or any other device that can be used to supply an input to and/or operate device 800.
A transducer having a magnetically biased electromagnet as previously discussed in reference to
While certain embodiments have been described and shown in the accompanying drawings, it is to be understood that such embodiments are merely illustrative of and not restrictive on the broad invention, and that the invention is not limited to the specific constructions and arrangements shown and described, since various other modifications may occur to those of ordinary skill in the art. For example, although the transducer assembly (e.g., electromagnet 100 (including coil 120) and attractor plate 110) is described as serving essentially as a “subwoofer,” which enhances a performance of existing speakers within the electronic device, the assembly may operate in such a manner that it provides a near full-range response frequency. For example the transducer assembly may output both low and mid-range frequencies. In such embodiments, the transducer assembly may output not only bass range frequencies (e.g., about 20-500 Hz), but also mid-frequencies (e.g., about 500-1500 Hz or higher). The transducer assembly may therefore be combined with other speakers in an electronic device such as a laptop, tablet or handheld computing device, or used instead of other speakers, to enhance or produce sound which can be output from the electronic device to a user without distortion.
Although embodiments described herein have generally been discussed with respect to standalone electronic devices (many of which may be portable), it should be appreciated that the embodiments disclosed herein may be applied in a variety of other fashions. For example, the audio transducer described herein may be integrated into conventional speakers and operate with the woofers and tweeters of the conventional speaker. Likewise, an audio transducer of the type disclosed herein may be incorporated into a seat or chair as part of a home theater experience. The audio transducer may vibrate not only the chair but the person sitting in the chair under certain circumstances, thereby providing not only audible but also tactile feedback if desired. As still another example, the audio transducer may be combined with a capacitive or touch-based input so that motions of a user's hands on a device enclosure may act to increase or decrease the output of the audio transducer. The description is thus to be regarded as illustrative instead of limiting.
Number | Name | Date | Kind |
---|---|---|---|
4081631 | Feder | Mar 1978 | A |
4658425 | Julstrom | Apr 1987 | A |
5335011 | Addeo et al. | Aug 1994 | A |
5570324 | Geil | Oct 1996 | A |
5619583 | Page et al. | Apr 1997 | A |
5649020 | McClurg et al. | Jul 1997 | A |
5894263 | Shimakawa et al. | Apr 1999 | A |
6073033 | Campo | Jun 2000 | A |
6129582 | Wilhite et al. | Oct 2000 | A |
6151401 | Annaratone | Nov 2000 | A |
6154551 | Frenkel | Nov 2000 | A |
6192253 | Charlier et al. | Feb 2001 | B1 |
6278787 | Azima | Aug 2001 | B1 |
6317237 | Nakao et al. | Nov 2001 | B1 |
6324294 | Azima et al. | Nov 2001 | B1 |
6332029 | Azima et al. | Dec 2001 | B1 |
6342831 | Azima | Jan 2002 | B1 |
6618487 | Azima et al. | Sep 2003 | B1 |
6813218 | Antonelli et al. | Nov 2004 | B1 |
6829018 | Lin et al. | Dec 2004 | B2 |
6882335 | Saarinen | Apr 2005 | B2 |
6934394 | Anderson | Aug 2005 | B1 |
7003099 | Zhang et al. | Feb 2006 | B1 |
7082322 | Harano | Jul 2006 | B2 |
7154526 | Foote et al. | Dec 2006 | B2 |
7158647 | Azima et al. | Jan 2007 | B2 |
7158651 | Bachmann et al. | Jan 2007 | B2 |
7263373 | Mattisson | Aug 2007 | B2 |
7266189 | Day | Sep 2007 | B1 |
7378963 | Begault et al. | May 2008 | B1 |
7536029 | Choi et al. | May 2009 | B2 |
8644519 | Pance et al. | Feb 2014 | B2 |
20010017924 | Azima et al. | Aug 2001 | A1 |
20010026625 | Azima et al. | Oct 2001 | A1 |
20020012442 | Azima et al. | Jan 2002 | A1 |
20020037089 | Usuki et al. | Mar 2002 | A1 |
20020044668 | Azima | Apr 2002 | A1 |
20020150219 | Jorgenson et al. | Oct 2002 | A1 |
20030048911 | Furst et al. | Mar 2003 | A1 |
20030053643 | Bank et al. | Mar 2003 | A1 |
20030161493 | Hosler | Aug 2003 | A1 |
20040156527 | Stiles et al. | Aug 2004 | A1 |
20040203520 | Schritzinger et al. | Oct 2004 | A1 |
20040234086 | Cross et al. | Nov 2004 | A1 |
20050129267 | Azima et al. | Jun 2005 | A1 |
20050147273 | Azima et al. | Jul 2005 | A1 |
20050271216 | Lashkari | Dec 2005 | A1 |
20060005156 | Korpipaa et al. | Jan 2006 | A1 |
20060023898 | Katz | Feb 2006 | A1 |
20060072248 | Watanabe et al. | Apr 2006 | A1 |
20060109256 | Grant et al. | May 2006 | A1 |
20080204379 | Perez-Noguera | Aug 2008 | A1 |
20080292112 | Valenzuela et al. | Nov 2008 | A1 |
20090247237 | Mittleman et al. | Oct 2009 | A1 |
20090274315 | Carnes et al. | Nov 2009 | A1 |
20090316943 | Munoz et al. | Dec 2009 | A1 |
20100103776 | Chan | Apr 2010 | A1 |
20110002487 | Panther et al. | Jan 2011 | A1 |
20110033064 | Johnson et al. | Feb 2011 | A1 |
20110161074 | Pance et al. | Jun 2011 | A1 |
20110243369 | Wang | Oct 2011 | A1 |
20110274303 | Filson et al. | Nov 2011 | A1 |
20120082317 | Pance et al. | Apr 2012 | A1 |
20120250928 | Pance et al. | Oct 2012 | A1 |
20120263019 | Armstong-Muntner | Oct 2012 | A1 |
20120306823 | Pance et al. | Dec 2012 | A1 |
20130028443 | Pance et al. | Jan 2013 | A1 |
20130051601 | Hill et al. | Feb 2013 | A1 |
20130129122 | Johnson et al. | May 2013 | A1 |
20130142355 | Isaac et al. | Jun 2013 | A1 |
20130142356 | Isaac et al. | Jun 2013 | A1 |
Number | Date | Country |
---|---|---|
2094032 | Aug 2009 | EP |
2310559 | Aug 1997 | GB |
2342802 | Apr 2000 | GB |
2102905 | Apr 1990 | JP |
7015797 | Jan 1995 | JP |
2009267779 | Nov 2009 | JP |
201021587 | Jun 2010 | TW |
WO-03049494 | Jun 2003 | WO |
WO-2004025938 | Mar 2004 | WO |
WO-2007045908 | Apr 2007 | WO |
WO-2007083894 | Jul 2007 | WO |
WO-2008153639 | Dec 2008 | WO |
WO-2009017280 | Feb 2009 | WO |
WO-2011057346 | May 2011 | WO |
Entry |
---|
International Search Report and Written Opinion, PCT/US2011/052589, (Feb. 25, 2012), 13 pages. |
Final Office Action (dated Jan. 17, 2013), U.S. Appl. No. 12/895,526, Date Filed—Sep. 30, 2010, First Named Inventor: Aleksandar Pance, 20 pages. |
PCT International Preliminary Report on Patentability (dated Apr. 11, 2013), International Application No. PCT/US2011/052589, International Filing Date—Sep. 21, 2011, 9 pages. |
Non-Final Office Action (dated Mar. 25, 2013), U.S. Appl. No. 13/076,819, Date Filed—Mar. 31, 2011, First Named Inventor: Aleksandar Pance, 13 pages. |
Final Office Action (dated Aug. 2, 2013), U.S. Appl. No. 13/076,819, Date Filed—Mar. 31, 2011, First Named Inventor: Aleksandar Pance, 11 pages. |
Non-Final Office Action (dated Dec. 30, 2013), U.S. Appl. No. 13/076,819, Date Filed—Mar. 31, 2011, First Named Inventor: Aleksandar Pance, 12 pages. |
Non-Final Office Action (dated Oct. 22, 2012), U.S. Appl. No. 12/895,526, Date Filed—Sep. 30, 2010, First Named Inventor: Aleksandar Pance, 27 pages. |
“Snap fit theory”, Feb. 23, 2005, DSM, p. 2, 1 page. |
Baechtle, et al., “Adjustable Audio Indicator”, IBM, (Jul. 1, 1984), 2 pages. |
Pingali, et al., “Audio-Visual Tracking for Natural Interactivity”, Bell Laboratories, Lucent Technologies, (Oct. 1999), pp. 373-382. |
Number | Date | Country | |
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20140185859 A1 | Jul 2014 | US |