CAMERA CONTROL AND STABILIZATION SYSTEM
20240030798 ยท 2024-01-25
Inventors
Cpc classification
H02K2203/03
ELECTRICITY
International classification
H02K41/06
ELECTRICITY
Abstract
Embodiments of the inventive subject matter are directed to PCB stator motors having radially positioned wheel-based bearings for the rotor, including PCB stator motors that are included in camera stabilizing and control systems. PCB stator motors of the inventive subject matter feature a rotor that creates a slot into which a PCB stator is disposed. Surrounding that rotor is a set of wheels having, e.g., grooves into which an outer edge of the rotor can be disposed. The set of wheels enables the rotor to rotate smoothly as a result of a motor controller activating the PCB stator. In some embodiments, an annular roll motor is accompanied by one or more tilt motors to create a camera system that can, e.g., actively stabilize a camera that is disposed at least partially within the roll motor's interior space.
Claims
1. A printed circuit board (PCB) stator motor comprising: a motor casing, a PCB stator coupled with the motor casing, and a rotor, wherein the rotor is enabled to rotate by a set of bearings located circumferentially around the rotor; wherein each bearing of the set of bearings comprises a track wheel having a groove that is sized and dimensioned to receive an outer edge of the rotor; and wherein each bearing of the set of bearings is attached to an interior portion of the roll motor casing.
2. The PCB stator motor of claim 1, wherein the rotor comprises a slot into which the PCB stator extends.
3. The PCB stator motor of claim 1, wherein the PCB stator is configured as a first annulus and wherein the rotor is configured as a second annulus having an open center portion.
4. The PCB stator motor of claim 1, wherein each bearing of the set of bearings is configured as a track wheel that is sized and dimensioned to receive an exterior edge of the rotor.
5. The PCB stator motor of claim 1, wherein each bearing of the set of bearings is attached to the roll motor casing.
6. The PCB stator motor of claim 1, wherein the rotor is configured as an annulus having an open center portion.
7. A printed circuit board (PCB) stator motor comprising: a PCB stator and a rotor, wherein the PCB stator is configured to cause the rotor to rotate, and the rotor is enabled to rotate by a set of bearings located circumferentially around the rotor; and wherein each bearing of the set of bearings is configured to interact an outer edge of the rotor.
8. The PCB stator motor of claim 7, further comprising an annular motor casing that has an interior portion wherein at least a portion of the rotor is disposed within the interior portion.
9. The PCB stator motor of claim 8, wherein each bearing of the set of bearings is attached to an interior portion of the annular motor casing.
10. The PCB stator motor of claim 7, wherein the rotor comprises a slot facing radially outward into which the PCB stator extends.
11. The PCB stator motor of claim 7, wherein the rotor comprises a front side and a back side, the front side comprising a first set of magnets and the back side comprising a second set of magnets, and wherein the first set of magnets and the second set of magnets are positioned opposite each other across a slot formed by the front side and the back side of the rotor.
12. The PCB stator motor of claim 7, wherein each bearing of the set of bearings comprises a groove that is configured to interact with the outer edge of the rotor.
13. A printed circuit board (PCB) stator motor comprising: a rotor forming a slot, wherein the slot faces radially outward; a PCB stator extending into the slot, wherein the PCB stator is configured to cause the rotor to rotate, and the rotor is enabled to rotate by a set of bearings located circumferentially around the rotor.
14. The PCB stator motor of claim 13, further comprising a motor casing comprising an interior portion wherein at least a portion of the rotor is disposed within the interior portion.
15. The PCB stator motor of claim 14, wherein each bearing of the set of bearings is attached to an interior portion of the annular motor casing.
16. The PCB stator motor of claim 13, wherein the rotor is annular, having an open middle portion.
17. The PCB stator motor of claim 13, wherein the rotor comprises a front side and a back side, the front side comprising a first set of magnets and the back side comprising a second set of magnets, and wherein the first set of magnets and the second set of magnets are positioned opposite each other across the slot, which is formed by the front side and the back side of the rotor.
18. The PCB stator motor of claim 14, wherein each bearing of the set of bearings comprises a wheel having a groove that is configured to interact with the outer edge of the rotor.
Description
BRIEF DESCRIPTION OF THE DRAWING
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DETAILED DESCRIPTION
[0031] The following discussion provides example embodiments of the inventive subject matter. Although each embodiment represents a single combination of inventive elements, the inventive subject matter is considered to include all possible combinations of the disclosed elements. Thus, if one embodiment comprises elements A, B, and C, and a second embodiment comprises elements B and D, then the inventive subject matter is also considered to include other remaining combinations of A, B, C, or D, even if not explicitly disclosed.
[0032] As used in the description in this application and throughout the claims that follow, the meaning of a, an, and the includes plural reference unless the context clearly dictates otherwise. Also, as used in the description in this application, the meaning of in includes in and on unless the context clearly dictates otherwise.
[0033] Also, as used in this application, and unless the context dictates otherwise, the term coupled to is intended to include both direct coupling (in which two elements that are coupled to each other contact each other) and indirect coupling (in which at least one additional element is located between the two elements). Therefore, the terms coupled to and coupled with are used synonymously.
[0034] In some embodiments, the numbers expressing quantities of ingredients, properties such as concentration, reaction conditions, and so forth, used to describe and claim certain embodiments of the invention are to be understood as being modified in some instances by the term about. Accordingly, in some embodiments, the numerical parameters set forth in the written description and attached claims are approximations that can vary depending upon the desired properties sought to be obtained by a particular embodiment. In some embodiments, the numerical parameters should be construed in light of the number of reported significant digits and by applying ordinary rounding techniques. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of some embodiments of the invention are approximations, the numerical values set forth in the specific examples are reported as precisely as practicable. The numerical values presented in some embodiments of the invention may contain certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Moreover, and unless the context dictates the contrary, all ranges set forth in this application should be interpreted as being inclusive of their endpoints and open-ended ranges should be interpreted to include only commercially practical values. Similarly, all lists of values should be considered as inclusive of intermediate values unless the context indicates the contrary.
[0035] It should be noted that any language directed to a computer should be read to include any suitable combination of computing devices, including servers, interfaces, systems, databases, agents, peers, Engines, controllers, or other types of computing devices operating individually or collectively. One should appreciate the computing devices comprise a processor configured to execute software instructions stored on a tangible, non-transitory computer readable storage medium (e.g., hard drive, solid state drive, RAM, flash, ROM, etc.). The software instructions preferably configure the computing device to provide the roles, responsibilities, or other functionality as discussed below with respect to the disclosed apparatus. In especially preferred embodiments, the various servers, systems, databases, or interfaces exchange data using standardized protocols or algorithms, possibly based on HTTP, HTTPS, AES, public-private key exchanges, web service APIs, known financial transaction protocols, or other electronic information exchanging methods. Data exchanges preferably are conducted over a packet-switched network, the Internet, LAN, WAN, VPN, or other type of packet switched network. The following description includes information that may be useful in understanding the present invention. It is not an admission that any of the information provided in this application is prior art or relevant to the presently claimed invention, or that any publication specifically or implicitly referenced is prior art.
[0036] The inventive subject matter is directed to camera control and stabilization systems that use printed circuit board (PCB) stator motors. These systems are configured to operate with cameras that are mounted in middle of a roll motor, where the roll motor is further coupled with two tilt motors and can optionally be coupled with a pan motor.
[0037] Although this application is primarily focused on the use of PCB stator motors in a camera system, PCB motors of the inventive subject matter can be used in a wide array of different applications that require electric motors that either provide haptic feedback, benefit from the flat configuration, or take advantage of any of the other qualities described in this application or otherwise inherent to the motors.
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[0039] Thus, a camera mounted to rotor 106 can be caused to roll by roll motor 102. In embodiments where camera system 100 is handheld, the roll motor 102 can ensure a camera remains level along its roll axis or to control roll while accounting for roll resulting from the camera operator's movements, and in embodiments where camera system 100 is mounted to a stationary structure, roll motor 102 can be used to control roll.
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[0042] As opposed to typical DC motor configurations, roll motors of inventive subject have exterior rotor bearings to make it possible to include a large open space in the middle of the motor, thus forming the motor into an annular configuration. This configuration is only possible with PCB stator motors, because only PCB stator motors can have a rotor that is externally mounted and driven by a large, flat PCB stator. The end result is a motor with a thin form fact that creates a large space for a camera to mouth in its center portion.
[0043] To drive or control roll motor 102, motor driver circuit board 118 is also contained within roll motor casing 110. Roll motor cable 120 connects to motor driver circuit board 118 and provides power for roll motor 102 as well as any I/O necessary to control roll motor 102. Motor driver circuit board 118 can include any electronic components necessary to control or drive roll motor 102, including one or more microprocessors and so on.
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[0047] All these components together result in a rotor 106 having two portions (a front and a back portion) that are joined together. Both portions of rotor 106 joined together form a circumferential slot that PCB stator 114 fits within. Rotor 106 can thus rotate relative to roll motor casing 110. The configuration of roll motor 106 described above differs from other traditional motor configurations, and even other PCB stator motor configurations, because rotor 106 is enabled to rotated by bearings 116 that surround rotor 106, instead of by one or more bearings that are surrounded by the rotor.
[0048] Tilt motors 104 are also PCB stator motors and are configured more typically with bearings within their rotors.
[0049] Tilt motor 104 is shown with rotor 130 coupled to tilt motor mount 112. Thus, operation of tilt motor 104 causes roll motor 102 to tilt, which, in turn causes a camera mounted within the roll motor 102 to tilt. To bring about smooth tilting while minimizing torque on roll motor 102, two tilt motors 104 can be implemented. With a tilt motor 104 positioned on either side of roll motor 102, and each tilt motor coupled with roll motor by a separate tilt motor mount, both tilt motors 104 working together can more easily cause roll motor 102 to tilt without resulting in undue stress resulting from twisting roll motor 102 as a tilt is performed.
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[0054] Thus, specific systems and methods directed to camera control and stabilization systems have been disclosed. It should be apparent, however, to those skilled in the art that many more modifications besides those already described are possible without departing from the inventive concepts in this application. The inventive subject matter, therefore, is not to be restricted except in the spirit of the disclosure. Moreover, in interpreting the disclosure all terms should be interpreted in the broadest possible manner consistent with the context. In particular the terms comprises and comprising should be interpreted as referring to the elements, components, or steps in a non-exclusive manner, indicating that the referenced elements, components, or steps can be present, or utilized, or combined with other elements, components, or steps that are not expressly referenced.