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I am writing the datasheet for the reconfigurable MPPT bidirectional buck/boost flyback invertor microcontroller SoC chips as we speak [1]. Do you have an email
by morphle 3y ago
I am writing the datasheet for the reconfigurable MPPT bidirectional buck/boost flyback invertor microcontroller SoC chips as we speak [1]. Do you have an email I can send it to?
The older white paper is very much related, it describes the large power router chips, the MPPT nano-invertor microcontroller chips for individual solar cells are just a recent adddition to our system of line chips.
The video presentation is about the wafer scale integration, a million core giant version of the same microprocessor as the tiny MPPT chips, so they are very much related.
[1] Morphle MNI003 datasheet:
input voltage: 0.01V-6.01V (solar cell or battery input)
output voltage: 0.6V-12V (aggregated or single output)
can power up from solar cell or battery, 0,02W
External inductor (30-100 μH) needed.
Builtin 8 opamps, 4 power mosfets, 3 capacitors, 3 diodes
Forms a programmable reconfigurable MPPT inverter or a Li-ion (all 6 chemistries) battery charger and discharger.
180 Mhz 64 Bit Microprocessor made from 8 bit ALU slices. Can be configured at runtime as 8 x 8b it, 4 x 16 bit, 2 x 32 bit and 1 x 64 bit processors.
Microcode processor executes X86-64, ArmV8, Risc-V instructions and Python and Squeak bytecodes natively.
4K OTP memory
16K SRAM
SPI interface to external flash
one-wire network over power input and output wire
two-wire 10baseT ethernet to wire all inverters into networks up to 10240 microcontrollers
networked MNI003 chips can aggregate output voltages up to 240V DC
- jbay808 3y agoThanks; I'm working on products in this area and not especially satisfied by the parts available. Especially as Analog seems to be abandoning their micro-MPPT IC product line. My email is jacob at jbaylessconsulting dot ca. One of the common issues with solar micro-MPPT is EMI emissions. Have you tested for compliance with emitted radio-frequency noise standards?
- morphle 3y agoYes and no. If you run the inverters or network at 100Khz up to 1 Mhz you get much different EMI than if you run them at 1 Khz. The inductor and ADC also play a role. We will know this only after we mass produce the chip, my test chips and prototypes (with RP2040 and Padauk PMS150) have similar but not the same EMI emissions. - We could package the chip, for example wrap it entirely with the metal inductor. That works as a faraday cage and block the emissions. But will this raise the price? - You put the chip between the solar cell and the (flat) wires. That works as a faraday cage and block the emissions. Will the solar panel maker do this? - You could have solar cells without the panel, think fo a CD size solar cell encased in plastic just as a CD is a metal foil encased in plastic. Now you can wrap the chip and block the emissions. You can hang the cell from the wires (in a tree or on the distribution wire like christmas lights)
- morphle 3y agoI forgot to mention a single chip has three inverters in it for three solar cells or batteries or a combination of two cells and one battery. There are 6 ADC's on board. The 8 bit cores are very much like the I/O processors of the RP2040 Raspberry Pico chip