US 12,463,840 B2
Hot pluggable packet energy transfer receiver
Charles Noah Lutz, Providence, RI (US); Jonathan Casey, North Kingstown, RI (US); Stanley Mlyniec, Coventry, RI (US); and William J. Fox, Raleigh, NC (US)
Assigned to VoltServer Inc., East Greenwich, RI (US)
Filed by VoltServer Inc., East Greenwich, RI (US)
Filed on Nov. 8, 2023, as Appl. No. 18/504,603.
Prior Publication US 2025/0150292 A1, May 8, 2025
This patent is subject to a terminal disclaimer.
Int. Cl. H04L 12/10 (2006.01); G06F 1/28 (2006.01)
CPC H04L 12/10 (2013.01) [G06F 1/28 (2013.01)] 51 Claims
OG exemplary drawing
 
1. A packet energy transfer (PET) receiver configured to be electrically connected to at least one energized PET transmission line, the at least one energized PET transmission line configured to be electrically connected to a PET transmitter, the PET receiver comprising:
receiver front-end circuitry including:
a front-end input configured to be electrically connected to the at least one energized PET transmission line;
a front-end output; and
at least one switch connected at the front-end output;
receiver output control and conditioning circuity including:
an input connected to the at least one switch of the receiver front-end circuitry; and
an output configured to be connected to an electrical load;
a synchronizer circuit configured to detect a start of a first plurality of transfer periods by the PET transmitter, the synchronizer circuit causing the at least one switch of the receiver front-end circuitry to close in order to allow power to flow into the receiver output control and conditioning circuitry for a predetermined period of time during each of the first plurality of transfer periods and then causing the at least one switch of the receiver front-end circuitry to open in order to prevent power to flow into the receiver output circuitry during a first plurality of sample periods of the PET transmitter; and
a load controller operably connected to the receiver front-end circuitry, the receiver output control and conditioning circuity, and the synchronizer circuit; wherein after the first plurality of transfer periods, the load controller disables the synchronizer circuit and operates the at least one switch to close the at least one switch in order to allow power to flow into the receiver output control and conditioning circuitry during subsequent transfer periods and to cause the at least one switch to open in order to prevent power to flow into the receiver output circuitry during a subsequent sample periods.