Solar water heating system
Systems and methods for a thermosyphonic water heating system for a storage tank. A DC heat pump receives power from a DC power source and heats water via a heat exchanger using a thermosyphonic piping system. A passive back-flushing having a cold water inlet pipe connected to the hot water return pipe draws cold water into the storage tank through the heat exchanger. A vertical array of temperature sensors distributed throughout the storage tank monitor temperature of stored water at multiple heights and a communication unit communicates monitored data to an external control device.
1. A water heating system comprising:
at least one storage tank;
a heat exchanger;
at least one DC heat pump operable to receive power from a DC power source and to heat water via the heat exchanger;
a cold water advance pipe extending from a lower portion of the storage tank to a lower portion of the heat exchanger;
a hot water return pipe extending from an upper portion of the heat exchanger to an upper portion of the storage tank;
a passive back-flushing module comprising a cold water inlet pipe connected to the hot water return pipe and configured such that whenever hot water is drawn from the storage tank, cold water is drawn into the storage tank through the heat exchanger and the cold water advance pipe;
a vertical array of temperature sensors distributed throughout the storage tank, the sensors operable to monitor temperature of stored water at multiple heights; and
a communication unit operable to communicate monitored data to an external control device,
the system further comprising a common array of solar panels electrically connected to a plurality of the DC heat pumps, each the DC heat pump associated with a thermosyphonic water heating unit operable to heat water stored in an associated storage tank.
2. A water heating system comprising:
at least one storage tank;
a heat exchanger;
at least one DC heat pump operable to receive power from a DC power source and to heat water via the heat exchanger;
a cold water advance pipe extending from a lower portion of the storage tank to a lower portion of the heat exchanger;
a hot water return pipe extending from an upper portion of the heat exchanger to an upper portion of the storage tank;
a passive back-flushing module comprising a cold water inlet pipe connected to the hot water return pipe and configured such that whenever hot water is drawn from the storage tank, cold water is drawn into the storage tank through the heat exchanger and the cold water advance pipe;
a vertical array of temperature sensors distributed throughout the storage tank, the sensors operable to monitor temperature of stored water at multiple heights; and
a communication unit operable to communicate monitored data to an external control device,
the system further comprising a DC deactivation unit operable to disconnect the DC heat pump from the DC power source, the DC deactivation unit comprising:
at least one DC circuit breaker comprising a first DC switch configured to disconnect a positive terminal of the DC power source from the DC heat pump and a second DC switch configured to disconnect a negative terminal of the DC power source from the DC heat pump; and
at least one current monitor configured and operable to trigger the at least one DC circuit breaker if a current leakage is detected thereby disconnecting DC heat pump from the DC power source.