Controlling a brushless motor
US-12095402-B2 · Sep 17, 2024 · US
US9067309B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9067309-B2 |
| Application number | US-201213692580-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 3, 2012 |
| Priority date | Dec 3, 2012 |
| Publication date | Jun 30, 2015 |
| Grant date | Jun 30, 2015 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A two-piece planet carrier for use in a power hand tool, the carrier comprising a drive portion mountable to a rotor of the tool and a pinned portion having a crank pin. The crank pin operatively connectable to a drive shaft of the tool to provide rotation and torque to the drive shaft. The pinned portion rotatably engaged with the drive portion such that rotation of the rotor will cause the drive portion and the pinned portion to rotate relative to each other as a function of a load applied to the drive shaft such that an offset between a crank pin center axis and a drive portion axis of rotation is variable as a function of the load, wherein the variance of the offset will vary a rotational speed and an amount of torque delivered to the drive shaft as a function of the load.
Opening claim text (preview).
What is claimed is: 1. A two-piece planet carrier for use in a power rotary hand tool, wherein the planet carrier is operatively connectable to a drive shaft of the tool, said planet carrier comprising: a drive portion having an axis of rotation and fixedly mountable to a motor rotor of the tool; and a pinned portion including a base and a crank pin extending eccentrically from the base, the crank pin having a center axis and operatively connectable to the drive shaft to provide rotation and torque to the drive shaft upon orbital rotation of the crank pin about the drive portion axis of rotation, the pinned portion rotatably engaged with the drive portion such that rotation of the rotor will cause the drive portion and the pinned portion to rotate relative to each other as a function of a load applied to the drive shaft such that an offset between the crank pin center axis and the drive portion axis of rotation is variable as a function of the load applied to the drive shaft, wherein the variance of the offset will vary a rotational speed and an amount of torque delivered to the drive shaft as a function of the load at drive shaft. 2. The planet carrier of claim 1 , wherein the pinned portion is rotatably disposed within a receptacle eccentrically disposed within a head of the drive portion such that the pinned portion will rotate within the receptacle as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft. 3. The planet carrier of claim 2 , wherein the pinned portion is rotatably disposed within the receptacle such that the orbital rotation of crank pin about the drive portion axis of rotation will generate centrifugal forces exerted on the crank pin that push the crank pin radially outward in opposition to forces exerted by the load on drive shaft that are transferred to the crank pin, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft, and thereby varying the rotational speed and the amount of torque delivered to the drive shaft as a function of the load at drive shaft. 4. The planet carrier of claim 1 , wherein the drive portion is rotatably disposed within a hollow interior of a base of the pinned portion such that the drive portion will rotate within the pinned portion as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft. 5. The planet carrier of claim 4 , wherein the drive portion comprises a sidewall structured to have a cam-shaped outer surface that will rotate eccentrically relative to the drive portion axis of rotation. 6. The planet carrier of claim 5 , wherein the cam-shaped outer surface of the drive portion is structured and operable to generate frictional forces at an interface between the drive portion outer surface and the inner surface of pinned portion base as the drive portion rotates within the pinned portion. 7. The planet carrier of claim 6 , wherein the drive portion is structured and operable to rotate within the pinned portion such that the frictional forces apply rotational force on the pinned portion to orbitally rotate the crank pin in opposition to forces exerted by the load on drive shaft that are transferred to the crank pin such that the drive portion will rotate within the pinned portion as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft, and thereby varying the rotational speed and the amount of torque delivered to the drive shaft as a function of the load at drive shaft. 8. A power rotary hand tool, said tool comprising: a drive shaft operatively connectable to a load; and a two-piece planet carrier operatively connected to the drive shaft of the tool, said planet carrier comprising: a drive portion having an axis of rotation and fixedly mounted to a motor rotor of the tool; and a pinned portion including a base and a crank pin extending eccentrically from the base, the crank pin having a center axis and operatively connected to the drive shaft to provide rotation and torque to the drive shaft upon orbital rotation of the crank pin about the drive portion axis of rotation, the pinned portion rotatably engaged with the drive portion such that rotation of the rotor will cause the drive portion and the pinned portion to rotate relative to each other as a function of a load applied to the drive shaft such that an offset between the crank pin center axis and the drive portion axis of rotation is variable as a function of the load applied to the drive shaft, wherein the variance of the offset will vary a rotational speed and an amount of torque delivered to the drive shaft as a function of the load at drive shaft. 9. The tool of claim 8 , wherein the pinned portion is rotatably disposed within a receptacle eccentrically disposed within a head of the drive portion such that the pinned portion will rotate within the receptacle as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft. 10. The tool of claim 9 , wherein the pinned portion is rotatably disposed within the receptacle such that the orbital rotation of crank pin about the drive portion axis of rotation will generate centrifugal forces exerted on the crank pin that push the crank pin radially outward in opposition to forces exerted by the load on drive shaft that are transferred to the crank pin, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft, and thereby varying the rotational speed and the amount of torque delivered to the drive shaft as a function of the load at drive shaft. 11. The tool of claim 8 , wherein the drive portion is rotatably disposed within a hollow interior of a base of the pinned portion such that the drive portion will rotate within the pinned portion as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft. 12. The planet carrier tool of claim 11 , wherein the drive portion comprises a sidewall structured to have a cam-shaped outer surface that will rotate eccentrically relative to the drive portion axis of rotation. 13. The tool of claim 12 , wherein the cam-shaped outer surface of the drive portion is structured and operable to generate frictional forces at an interface between the drive portion outer surface and the inner surface of pinned portion base as the drive portion rotates within the pinned portion. 14. The tool of claim 13 , wherein the drive portion is structured and operable to rotate within the pinned portion such that the frictional forces apply rotational force on the pinned portion to orbitally rotate the crank pin in opposition to forces exerted by the load on drive shaft that are transferred to the crank pin such that the drive portion will rotate within the pinned portion as a function of the load on the drive shaft, thereby varying the offset between the crank pin center axis and the drive portion axis of rotation as a function of the load on the drive shaft, and thereby varying the rotational speed and the amount of torque delivered to the drive shaft as a function
Planet carriers · CPC title
Portable power-driven screw or nut setting or loosening tools; (details or components, e.g. casings, bodies, of portable power-driven tools not particularly related to the operation performed B25F5/00; {for mounting or dismounting wheels B60B29/006}); Attachments for drilling apparatus serving the same purpose (machines B23P19/06) · CPC title
of the ratchet type · CPC title
with automatic change-over from high speed-low torque mode to low speed-high torque mode · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.