Systems, circuits and methods for controlling a rotating device via electromechanical rotation limiters
11764708 · 2023-09-19
Assignee
Inventors
Cpc classification
International classification
Abstract
An apparatus and method for rotating a part includes a sequence of relays to rotate the part given number of degrees. The apparatus does not require software or complex mechanical gearing.
Claims
1. A control circuit for controlling rotation of a mechanical device comprising: a. a positive direction rotation sensor having a positive sensor output for outputting a positive direction signal; b. a negative direction rotation sensor having a negative sensor output for outputting a negative direction signal; c. a positive relay having an positive relay input coupled to receive said positive direction signal and having a positive relay output; d. a negative relay having a negative relay input coupled to receive said negative direction signal and having a negative relay output; e. a positive limiter having a output for outputting a positive limiter state signal wherein said positive limiter has one of an active and inactive positive limiter states; f. a negative limiter having an output for outputting a negative limiter state signal wherein said negative limiter has one of an active and inactive negative limiter states; g. a latching relay including: i. a first input coupled to said positive relay output; ii. a second input coupled to said negative relay output; iii. a third input coupled to receive said positive limiter state signal; iv. a fourth input coupled to receive said negative limiter state signal; and v. an output coupled to said positive limiter and to said negative limiter for outputting a command signal to at least one of said positive limiter and said negative limiter to change state; and h. wherein said mechanical device rotates when both said positive limiter and said negative limiter are in an inactive state.
2. A system for controlling rotation through a predefined degree of arc, said system comprising: a. a rotating wheel having a notch; b. a positive direction rotation sensor having a positive sensor output for outputting a positive direction signal when said notch passes over said positive direction sensor; c. a negative direction rotation sensor having a negative sensor output for outputting a negative direction signal when said notch passes over said negative direction sensor; d. a positive relay having an positive relay input coupled to receive said positive direction signal and having a positive relay output; e. a negative relay having a negative relay input coupled to receive said negative direction signal and having a negative relay output; f. a positive limiter having a output for outputting a positive limiter state signal wherein said positive limiter has one of an active and inactive positive limiter states; g. a negative limiter having an output for outputting a negative limiter state signal wherein said negative limiter has one of an active and inactive negative limiter states; h. a latching relay including: i. a first input coupled to said positive relay output; ii. a second input coupled to said negative relay output; iii. a third input coupled to receive said positive limiter state signal; iv. a fourth input coupled to receive said negative limiter state signal; and v. an output coupled to said positive limiter and to said negative limiter for outputting a command signal to at least one of said positive limiter and said negative limiter to change state; and i. wherein said mechanical device rotates when both said positive limiter and said negative limiter are in an inactive state.
3. The system of claim 2 wherein the predefined degree of arc is greater than 360 degrees.
4. The system of claim 2 further including a part coupled to said rotating wheel.
5. A method for controlling rotation of a mechanical device through a predefined degree of arc greater than 360 degrees comprising the steps of: a. sensing rotation of said device through a first number of degrees of rotation; b. sensing rotation of said device through a second number of degrees of rotation; c. receiving at a relay circuit a first and a second signals indicative of said first number and said second number of degrees of rotation; d. outputting from said relay circuit a command to change a state of a limit switch from inactive to active after said device passes through said first and said second number of degrees of rotation; e. sensing rotation of said device through a third number of degrees of rotation substantially equal to said predefined degree of arc; and f. outputting from said limit switch a third signal to halt rotation of said device when said limit switch is activated and when said device rotates through said third number of degrees of rotation.
6. The method of claim 5 wherein the step of outputting said third signal to halt rotation comprises sending said third signal from said limit switch to a drive mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(12) Like reference numerals refer to similar elements or features throughout the drawings.
DESCRIPTION OF EXEMPLARITY EMBODIMENTS OF THE INVENTION
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(14) As drawn in
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(17) The design and operation of the invention are best explained via an illustrative example using
(18) Electromechanical rotation limiter 100 is controlled by a rotation circuit 200 as illustrated in
(19) As drawn in
(20) According to one possible embodiment of the invention, relays 225, 230 comprise Omron G2R-2 SNDI DC24 (S). Relay 235 comprises a TE connectivity RT 424A24. Similar types of relays as known to those of skill in the art may also be used. Limiters 205 and 210 and negative and positive directional sensors 215 and 220 comprise a Panasonic GX-H8A-P-R inductive switch. Other inductive switches and sensors known to those of skill in the art can also be used. In one embodiment of the invention, communication connection 225 comprises a return current terminal, for example a terminal of opposite polarity to terminal 250. Other communications switches known to those of skill in the art can also be used.
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(22) In step D, notched wheel no continues to move in a clockwise direction. Notch 113 passes over positive direction sensor 130, engaging positive directional sensor 130. Since positive directional sensor 130 is engaged before negative directional sensor 135, positive directional sensor 130 does not result in relay circuit 200 halting motion of wheel no.
(23) In step E, Notch 113 passes over negative directional sensor 135, engaging negative sensor 135. Negative directional sensor 135 is engaged after positive directional sensor 130, causing the relay circuit 200 to send a signal to negative limiter 125 that will stop notched wheel no from continuing to turn when wheel 110 eventually passes over negative limiter 125. Notched wheel no continues to turn in a clockwise direction in step F, passing over positive limiter 120 for a second time. In this example this action produces no effect on wheel motion and relay circuit 200 operates to permit continued rotation of wheel no.
(24) In step G, Notch 113 passes over negative limiter 125 for a second time. Negative limiter 125 has received a signal via relay circuit 200 after wheel no passed negative directional sensor 135 and limiter 125 is now activated to stop notched wheel no from turning. All of the signals passed between the limiters and the directional sensors go to and come from relay circuit 200.
(25) The operation of relay circuit 200 to effect the wheel operation described above is now discussed. The state of the various relays of circuit 200 are shown in
(26) As notched wheel 110 turns, passing over positive limiter 120, a signal travels to rotation circuit 200 to positive limiter 205. Positive limiter 205 sends the signal to latching relay 235. Positive limiter 205 is activated for the first time and before negative limiter 210. Latching relay 235 returns a signal to positive limiter 205 to deactivate. Positive limiter 205 deactivating causes the output of rotation circuit 200 to become null, or neutral.
(27) As notched wheel no passes over negative limiter 125, a signal travels to negative limiter 210. Negative limiter 210 sends the signal to latching relay 235. Negative limiter is activated for the first time and after positive limiter 205. Latching relay 235 returns a signal to negative limiter 210 to deactivate.
(28) Notched wheel no continues to turn, passing over positive directional sensor 130. A signal travels from positive directional sensor 130 to rotation circuit 200 to positive directional sensor 215. Positive directional sensor 215 sends the signal to positive standard relay 225, which sends the signal to latching relay 235. Positive directional sensor 215 is activated before negative directional sensor 220. Latching relay 235 returns a signal to positive directional sensor 215, via positive standard relay 225, to deactivate.
(29) Notched wheel no passes over negative directional sensor 135. A signal travels from negative directional sensor 135 to negative direction sensor 220. Negative directional sensor 220 sends the signal to negative standard relay 230, which sends the signal to latching relay 235. Negative directional sensor 220 is activated after positive directional sensor 215. Latching relay 235 returns a signal to negative directional sensor 220, via negative standard relay 230, to activate and engage negative limiter 125. Activating negative directional sensor 220 changes the state of latching relay 235 to negative.
(30) As notched wheel 110 continues to turn, passing over positive limiter 120, a signal travels to rotation circuit 200 to positive limiter 205. Positive limiter 205 sends the signal to latching relay 235. Positive limiter 205 is activated for the second time but has not received a signal to engage. Latching relay 235 returns a signal to positive limiter 205 to deactivate.
(31) Notched wheel 110 passes over negative limiter 125. Negative limiter 125 receives a signal from negative limiter 220 to engage. Notched wheel no stops turning at negative limiter 125. Negative limiter 125 being engaged changes the output of rotation circuit 200 to negative switching negative limiter output 245 to an on state.
(32) Notched wheel no has turned greater than 360°. Specifically in this example, wheel 110 turns 420 degrees. Other rotation limits and directions are possible according to the teachings of the invention.
(33) In another illustrative example, it is possible for electromechanical rotation limiter 100 to rotate up to 720°. The a degrees of rotation is determined by the location of the limiter being engaged and the starting position of notched wheel 110. There are many layout possibilities.
(34) In these other layouts, additional rotation circuits 200 would be added to a circuit board, as shown in
(35) The subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts are disclosed as example forms of implementing the claims. Many additional changes in the details, materials, steps and arrangement of parts, which have been herein described and illustrated in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims.