Patents Assigned to Microchip Technology Incorporated
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Patent number: 9664571Abstract: An integrated temperature sensor device has a temperature sensor providing an analog signal corresponding to an ambient temperature, an analog-to-digital converter coupled to the sensor conditioning circuit and receiving the analog temperature signal, and a timer and control circuit which is operable to be configured to control the temperature sensor device to perform a sequence of temperature measurements and shut-down time periods, wherein multiple temperature measurements are taken during the measurement period, wherein the timer and control circuit is further operable to be programmed to set the number of temperature measurements and the length of the shut-down period.Type: GrantFiled: December 4, 2014Date of Patent: May 30, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Ezana Aberra, Patrick Richards
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Publication number: 20170146600Abstract: A system for scanning a circuit includes flip-flops and latches includes a multiplexer to couple an output of a flip-flop with an input of a latch. The multiplexer has an input receiving an input signal for the latch and another input coupled with output of the flip-flop. The system further another multiplexer to couple output of the first multiplexer with an input of another flip-flop. The system also includes scan logic for controlling multiplexers to load test data into the flip-flop and into the latch from the flip-flop. The system also includes scan logic for passing output of the flip-flop and the latch into portions of the circuit to be tested.Type: ApplicationFiled: November 23, 2016Publication date: May 25, 2017Applicant: Microchip Technology IncorporatedInventors: Athmanathan Vaidyanathan, Eric Schroeder
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Patent number: 9660535Abstract: A switch mode power supply (SMPS) converter is periodically run backwards by using a synchronous switch instead of the normally used commutating diode. By running the SMPS converter backwards the SMPS output capacitor can be discharged very quickly to provide a fast turn off of (no current through) the LED's, thereby solving the color shift problem. This enables positioning the output voltage of the SMPS up or down by actively charging or discharging the bulk output capacitor. Having the capability of actively charging or discharging the bulk output capacitor allows generation of a current source comprising substantially square, e.g., substantially full current when on and substantially no current when off, current pulses that are preferable for driving LED lighting applications.Type: GrantFiled: November 8, 2012Date of Patent: May 23, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Scott Dearborn, Terry Cleveland
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Publication number: 20170139540Abstract: In a method for performing a touch determination with a capacitive sensor, a self capacitance measurement of a capacitive sensor is initiated, wherein at the same time a mutual capacitance measurement including the capacitive sensor is performed. Such a method can be performed such that the self capacitance measurement and the mutual capacitance measurement differentially cancel with ungrounded conductive objects approaching or touching the capacitive sensor and additively combine for grounded objects approaching or touching the capacitive sensor.Type: ApplicationFiled: January 9, 2017Publication date: May 18, 2017Applicant: Microchip Technology IncorporatedInventors: Burke Davison, Xiang Gao, Yann LeFaou
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Patent number: 9630352Abstract: A method for manufacturing open cavity integrated circuit packages, the method comprising: placing a wire-bound integrated circuit in a mold; forcing a pin to contact a die of the wire-bound integrated circuit by applying a force between the pin and the mold; injecting plastic into the mold; allowing the plastic to set around the integrated circuit to form a package having an open cavity defined by the pin; and removing the open cavity integrated circuit package from the mold. A mold for forming a package for an integrated circuit sensor device, comprising: a bottom part for supporting an integrated circuit die; a top part that is operable to be placed on top of said bottom part to form a cavity into which a plastic material can be injected to form the package, wherein the top part of the mold comprises a spring-loaded pin arrangement comprising a cover that covers a sensor area on the integrated circuit die and provides for an opening when the plastic material is injected.Type: GrantFiled: February 22, 2016Date of Patent: April 25, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Joseph D. Fernandez, Sombat Kittiphinijnanta, Nutthiwut Yamputchong, Surachai Lertruttanaprecha, Viwat Maikuthavorn
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Patent number: 9632526Abstract: A microcontroller has a numerical controlled oscillator receiving a primary clock signal and is configured to provide an internal system clock of the microcontroller. A method for operating a microcontroller performs the following steps: Selecting a primary clock signal from a plurality of clock signals; feeding the primary clock signal to a numerical controlled oscillator; configuring the numerical controlled oscillator to generate a numerical controlled clock signal; and providing the numerical controlled clock signal as an internal system clock for the microcontroller.Type: GrantFiled: November 22, 2013Date of Patent: April 25, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Sean Steedman, Fanie Duvenhage
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Patent number: 9634135Abstract: A field-effect transistors (FET) cell structure has a substrate, an epitaxial layer of a first conductivity type on the substrate, first and second base regions of the second conductivity type arranged within the epitaxial layer or well and spaced apart, and first and second source regions of a first conductivity type arranged within the first and second base region, respectively. Furthermore, a gate structure insulated from the epitaxial layer by an insulation layer is provided and arranged above the region between the first and second base regions and covering at least partly the first and second base region, and a drain contact reaches from a top of the device through the epitaxial layer to couple a top contact or metal layer with the substrate.Type: GrantFiled: February 27, 2013Date of Patent: April 25, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Greg A. Dix, Dan Grimm
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Patent number: 9627246Abstract: A method of forming a trench isolation (e.g., an STI) for an integrated circuit includes forming a pad oxide layer and then a nitride layer over a semiconductor substrate, performing a trench etch through the structure to form a trench, depositing a trench oxide layer over the structure to form a filled trench, depositing a sacrificial planarizing layer, which is etch-selective to the trench oxide layer, over the deposited oxide, performing a planarizing etch process that removes the sacrificial planarizing layer and decreases surface variations in an upper surface of the trench oxide layer, performing an oxide etch process that is selective to the trench oxide layer to remove remaining portions of the trench oxide layer outside the filled trench, and removing the remaining nitride layer such that the remaining oxide-filled trench defines a trench isolation structure that projects above an exposed upper surface of the semiconductor substrate.Type: GrantFiled: June 10, 2015Date of Patent: April 18, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Justin Hiroki Sato, Gregory Allen Stom
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Patent number: 9625997Abstract: A method for state tracking based gesture recognition engine for a sensor system has the steps of: defining a plurality of sequential states of a finite-state machine, determining a Sequence Progress Level (SPL) for each state, mapping a state probability distribution to a (single) SPL on run-time, and utilizing the mapped SPL estimate as an output value of the sensor system.Type: GrantFiled: July 10, 2014Date of Patent: April 18, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventor: Axel Heim
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Publication number: 20170102815Abstract: A method or sensor arrangement for providing capacitive sensor detection with at least one capacitive sensor comprises a transmitting electrode and a receiving electrode. A stimulus at the transmitting electrode is generated and a signal is received from the receiving electrode and data packets are generated, each packet comprising a plurality of samples. The plurality of samples are weighted by providing less gain at a beginning and end of each packet with respect to a center of each packet; and the weighted samples are integrated to generate an output signal for each packet.Type: ApplicationFiled: October 6, 2016Publication date: April 13, 2017Applicant: Microchip Technology IncorporatedInventor: Lionel Portmann
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Patent number: 9619231Abstract: A central processing unit (CPU) having an interrupt unit for interrupting execution of instructions, a plurality context defining register sets, wherein each set of registers having the same number of CPU registers, a switching unit for coupling a selected register set within the CPU, wherein the switching unit switches to a predetermined register set of the plurality of context defining register sets upon occurrence of an exception, and a control register configured to control selection of a register set of the plurality of context defining register initiated by an instruction and further operable to indicate a currently used context.Type: GrantFiled: March 7, 2014Date of Patent: April 11, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Michael I. Catherwood, Bryan Kris, David Mickey, Joseph Kanellopoulos
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Publication number: 20170099708Abstract: A ripple reduction circuit is provided. The ripple reduction circuit may include a ripple capacitor configured to drive at least a first segment of a string of light emitting diodes (LEDs), a first diode having an anode coupled to the ripple capacitor, and a cathode configured to be coupled to an input end of the first LED segment, a second diode having a cathode coupled to the ripple capacitor and the anode of the first diode, and an anode configured to be coupled between the first LED segment and a second LED segment of the string of LEDs, a third diode having an anode coupled to the ripple capacitor, and a cathode configured to be coupled to a last LED segment of the string of LEDs, and a fourth diode having a cathode coupled to the ripple capacitor and the anode of the third diode.Type: ApplicationFiled: September 27, 2016Publication date: April 6, 2017Applicant: Microchip Technology IncorporatedInventor: Scott Lynch
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Publication number: 20170094733Abstract: A sequential linear LED driver circuit is provided. The sequential linear LED driver circuit may include a plurality of current sinks, wherein each of the plurality of current sinks is configured to be coupled to a segment of a string of light-emitting diodes (LEDs), and a voltage divider that generates a plurality of reference voltages, wherein each of the plurality of reference voltages is applied to a respective current sink of the plurality of current sinks. The output of each current sink of the plurality of current sinks may be connected at a summing node.Type: ApplicationFiled: September 26, 2016Publication date: March 30, 2017Applicant: Microchip Technology IncorporatedInventor: Scott Lynch
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Publication number: 20170093313Abstract: Low cost linear Hall Effect sensors are used for determining motor shaft positions and generating voltages proportional to the motor shaft positions. The voltages from the linear Hall Effect sensors are compared to a triangle waveform and PWM signals are generated therefrom. A constant current source and constant current sink are used in the triangle waveform generator. The voltages from the linear Hall Effect sensors are adjusted to change the PWM duty cycles used to startup and vary the speed of the motor. Comparators compare the voltages from the Hall Effect sensors and product the PWM signals having duty cycles proportional to the voltage drive requirements of the motor.Type: ApplicationFiled: September 28, 2016Publication date: March 30, 2017Applicant: Microchip Technology IncorporatedInventors: Ward R. Brown, Howard Hendricks
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Publication number: 20170090022Abstract: A ranging function is implemented using a collection of core independent peripherals (CIPs) in a microcontroller without software overhead to the central processor during operation thereof. A pulse width modulation (PWM) peripheral generates a high frequency drive signal, a counter to set the duration of the PWM drive signal (pulse), and a second timer coupled to a comparator to measure the time it takes to receive back a reflection of the ranging signal from an object. The ranging peripheral starts ranging with ultrasonic pulses, and when corresponding reflected ultrasonic pulse are receives an interrupt signal is provided when the ranging measurement is complete. Time dependent sensitivity and/or gain adjustments are contemplated. The ultrasonic ranging peripheral uses on chip resources for most of its functions and therefore requires very few external components. It's set and forget nature may be based on CIP based timers, signal generators and configurable logic cells.Type: ApplicationFiled: September 28, 2016Publication date: March 30, 2017Applicant: Microchip Technology IncorporatedInventors: Keith Curtis, Anthony Stram, Kristine Angelica Sumague
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Patent number: 9607978Abstract: A double-diffused metal oxide semiconductor (DMOS) structure is configured as an open drain output driver having electrostatic discharge (ESD) protection and a reverse voltage blocking diode inherent in the structure and without requiring metal connections for the ESD and reverse voltage blocking diode protections.Type: GrantFiled: January 29, 2014Date of Patent: March 28, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Philippe Deval, Marija Fernandez, Patrick Besseux, Rohan Braithwaite
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Patent number: 9601615Abstract: A method of forming an integrated DMOS transistor/EEPROM cell includes forming a first mask over a substrate, forming a drift implant in the substrate using the first mask to align the drift implant, simultaneously forming a first floating gate over the drift implant, and a second floating gate spaced apart from the drift implant, forming a second mask covering the second floating gate and covering a portion of the first floating gate, forming a base implant in the substrate using an edge of the first floating gate to self-align the base implant region, and simultaneously forming a first control gate over the first floating gate and a second control gate over the second floating gate. The first floating gate, first control gate, drift implant, and base implant form components of the DMOS transistor, and the second floating gate and second control gate form components of the EEPROM cell.Type: GrantFiled: December 9, 2015Date of Patent: March 21, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Bomy Chen, Sonu Daryanani
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Patent number: 9602895Abstract: If an enclosure of a metering device is opened or vandalized, application software must determine when the metering history information became unreliable, and further notification to the utility may be desirable. Likewise, a shipping container or suitcase that has been opened or mishandled during shipping transient may be attributed to a particular location and/or handling person(s) when the time and date of the mishandling occurrence are known. A transition on a special device input from a tamper or mishandling sensor captures real-time clock/calendar (RTCC) information that provides to a software application the time and date of the detected tampering or mishandling event. This transition may also cause memory storage of the RTCC information related to the event. Thus, an integrated circuit device, for example a microcontroller or any other integrated circuit device may comprise such an RTCC and external input, and, optionally, memory storage of the RTCC event occurrence.Type: GrantFiled: November 11, 2014Date of Patent: March 21, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: Stephen Bowling, Michael Simmons
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Patent number: 9602101Abstract: A method for controlling a configuration in an integrated circuit device with at least one controllable input/output port having a data output driver, a data input driver, a controllable pull-up resistor, a controllable pull-down resistor, each connected with an external pin of the integrated circuit device, has the steps of: enabling only the pull-up resistor and reading the associated input through the data input driver as a first bit; enabling only the pull-down resistor and reading the associated input through the data input driver as a second bit; tri-stating the first port and reading the associated input through the data input driver as another bit; encoding a value from the read bits; and determining a firmware operation form the encoded value.Type: GrantFiled: October 3, 2014Date of Patent: March 21, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventor: Atish Ghosh
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Patent number: 9590649Abstract: A micro-coded sequencer controls complex conversion sequences independent of a central processing unit (CPU). Micro-coding provides for easily adding new process steps and/or updating existing process steps. Such a programmable sequencer in combination with an analog-to-digital conversion module such as an analog-to-digital converter (ADC) or a charge time measurement unit (CTMU), and digital processing circuits may be configured to work independently of the CPU in combination with the micro-coded sequencer. Thereby providing self-sufficient operation in low power modes when the CPU and other high power modules are in a low power sleep mode. Such a peripheral can execute data collection and processing thereof, then wake the CPU only when needed, thereby saving power. Furthermore, this peripheral does not require CPU processing so that time critical applications that do require control by the CPU can operate more efficiently and with less operating overhead burden.Type: GrantFiled: October 15, 2015Date of Patent: March 7, 2017Assignee: MICROCHIP TECHNOLOGY INCORPORATEDInventors: James E. Bartling, Igor Wojewoda, Kevin Kilzer