Figure 1.
Overview of a pico-grid in a building at SIT Punggol Campus.
Figure 1.
Overview of a pico-grid in a building at SIT Punggol Campus.
Figure 2.
Proposed topology used in BESS.
Figure 2.
Proposed topology used in BESS.
Figure 3.
Proposed control algorithm used to control BESS.
Figure 3.
Proposed control algorithm used to control BESS.
Figure 4.
Proposed topology used in single-phase inverter.
Figure 4.
Proposed topology used in single-phase inverter.
Figure 5.
Proposed control algorithm used to control single-phase inverter.
Figure 5.
Proposed control algorithm used to control single-phase inverter.
Figure 6.
Overview of nano-grid system of a building at SIT Punggol Campus.
Figure 6.
Overview of nano-grid system of a building at SIT Punggol Campus.
Figure 7.
Proposed topology used in solar PV boost converter.
Figure 7.
Proposed topology used in solar PV boost converter.
Figure 8.
Proposed control algorithm used to control boost converter.
Figure 8.
Proposed control algorithm used to control boost converter.
Figure 9.
Proposed topology used in three-phase inverter.
Figure 9.
Proposed topology used in three-phase inverter.
Figure 10.
Proposed control algorithm used to control three-phase inverter.
Figure 10.
Proposed control algorithm used to control three-phase inverter.
Figure 11.
Simulation model of BESS integration with single-phase inverter.
Figure 11.
Simulation model of BESS integration with single-phase inverter.
Figure 12.
Load demand estimation of DC (top) and AC (bottom) loads for pico-grid system.
Figure 12.
Load demand estimation of DC (top) and AC (bottom) loads for pico-grid system.
Figure 13.
The SOC level of the BESS during discharging in pico-grid system.
Figure 13.
The SOC level of the BESS during discharging in pico-grid system.
Figure 14.
The battery voltage of the BESS during discharging in pico-grid system.
Figure 14.
The battery voltage of the BESS during discharging in pico-grid system.
Figure 15.
Battery current of BESS during discharging in pico-grid system.
Figure 15.
Battery current of BESS during discharging in pico-grid system.
Figure 16.
Battery capacity of BESS during discharging in pico-grid system.
Figure 16.
Battery capacity of BESS during discharging in pico-grid system.
Figure 17.
Voltage level at DC busbar in pico-grid system.
Figure 17.
Voltage level at DC busbar in pico-grid system.
Figure 18.
Surplus power delivered to the grid in pico-grid system.
Figure 18.
Surplus power delivered to the grid in pico-grid system.
Figure 19.
SOC level of the BESS during charging in pico-grid system.
Figure 19.
SOC level of the BESS during charging in pico-grid system.
Figure 20.
Battery voltage of the BESS during charging in pico-grid system.
Figure 20.
Battery voltage of the BESS during charging in pico-grid system.
Figure 21.
DC bus voltage of the BESS during charging in pico-grid system.
Figure 21.
DC bus voltage of the BESS during charging in pico-grid system.
Figure 22.
Battery current of BESS during charging in pico-grid system.
Figure 22.
Battery current of BESS during charging in pico-grid system.
Figure 23.
Battery capacity of BESS during charging in pico-grid system.
Figure 23.
Battery capacity of BESS during charging in pico-grid system.
Figure 24.
Supplying power from the grid to charge the battery in pico-grid system.
Figure 24.
Supplying power from the grid to charge the battery in pico-grid system.
Figure 25.
Two parallel pico-grids connected to the single-phase grid.
Figure 25.
Two parallel pico-grids connected to the single-phase grid.
Figure 26.
DC (top) and AC loads (bottom) of two pico-grids system.
Figure 26.
DC (top) and AC loads (bottom) of two pico-grids system.
Figure 27.
Surplus power from the system sent to the grid for two pico-grids system.
Figure 27.
Surplus power from the system sent to the grid for two pico-grids system.
Figure 28.
Simulation model of integration of solar PV and BESS with three-phase inverter.
Figure 28.
Simulation model of integration of solar PV and BESS with three-phase inverter.
Figure 29.
Solar PV array waveform.
Figure 29.
Solar PV array waveform.
Figure 30.
Load demand estimation of AC loads in nano-grid system.
Figure 30.
Load demand estimation of AC loads in nano-grid system.
Figure 31.
SOC of battery during discharging in nano-grid system.
Figure 31.
SOC of battery during discharging in nano-grid system.
Figure 32.
Battery voltage of the BESS during discharging in nano-grid system.
Figure 32.
Battery voltage of the BESS during discharging in nano-grid system.
Figure 33.
Battery current of BESS during discharging in nano-grid system.
Figure 33.
Battery current of BESS during discharging in nano-grid system.
Figure 34.
Power supplied by battery of BESS during discharging in nano-grid system.
Figure 34.
Power supplied by battery of BESS during discharging in nano-grid system.
Figure 35.
Voltage level at DC busbar in nano-grid system.
Figure 35.
Voltage level at DC busbar in nano-grid system.
Figure 36.
Surplus power delivered to the grid in nano-grid system.
Figure 36.
Surplus power delivered to the grid in nano-grid system.
Figure 37.
Simulation model to demonstrate charging of battery.
Figure 37.
Simulation model to demonstrate charging of battery.
Figure 38.
SOC of battery during charging in nano-grid system.
Figure 38.
SOC of battery during charging in nano-grid system.
Figure 39.
Battery voltage of the BESS during charging in nano-grid system.
Figure 39.
Battery voltage of the BESS during charging in nano-grid system.
Figure 40.
Voltage level at DC busbar in nano-grid system (Test Condition 1).
Figure 40.
Voltage level at DC busbar in nano-grid system (Test Condition 1).
Figure 41.
Battery current of BESS during charging in nano-grid system.
Figure 41.
Battery current of BESS during charging in nano-grid system.
Figure 42.
Battery capacity of BESS during charging in nano-grid system.
Figure 42.
Battery capacity of BESS during charging in nano-grid system.
Figure 43.
Drawing power from the grid to charge the battery in nano-grid system.
Figure 43.
Drawing power from the grid to charge the battery in nano-grid system.
Figure 44.
Simulation model to demonstrate a rainy-day operation.
Figure 44.
Simulation model to demonstrate a rainy-day operation.
Figure 45.
Solar PV power in nano-grid system.
Figure 45.
Solar PV power in nano-grid system.
Figure 46.
Load demand of AC loads in nano-grid system.
Figure 46.
Load demand of AC loads in nano-grid system.
Figure 47.
Power supplied by the grid to the load in nano-grid system.
Figure 47.
Power supplied by the grid to the load in nano-grid system.
Figure 48.
Simulation model to demonstrate a sunny-day operation.
Figure 48.
Simulation model to demonstrate a sunny-day operation.
Figure 49.
Load demand estimation of AC loads in nano-grid system (Test Condition 3).
Figure 49.
Load demand estimation of AC loads in nano-grid system (Test Condition 3).
Figure 50.
Solar PV power generated in nano-grid system.
Figure 50.
Solar PV power generated in nano-grid system.
Figure 51.
SOC of battery during charging in nano-grid system (Test Condition 3).
Figure 51.
SOC of battery during charging in nano-grid system (Test Condition 3).
Figure 52.
Battery capacity of BESS during charging in nano-grid system (Test Condition 3).
Figure 52.
Battery capacity of BESS during charging in nano-grid system (Test Condition 3).
Figure 53.
Surplus power delivered to the grid in nano-grid system (Test Condition 3).
Figure 53.
Surplus power delivered to the grid in nano-grid system (Test Condition 3).
Figure 54.
Two parallel nano-grids connected to the three-phase grid.
Figure 54.
Two parallel nano-grids connected to the three-phase grid.
Figure 55.
AC loads before an increase for two nano-grids system.
Figure 55.
AC loads before an increase for two nano-grids system.
Figure 56.
Surplus power from the system sent to the grid for a two-nano-grid system.
Figure 56.
Surplus power from the system sent to the grid for a two-nano-grid system.
Table 1.
SS530 lighting power density guideline.
Table 1.
SS530 lighting power density guideline.
Interior Spaces—Type of Usage | LPD (W/m2) |
---|
Space-by-space method |
Office work and study |
Offices, meeting rooms, copy/print rooms, class rooms, lecture theatres, computer rooms, reading areas | 12 |
Laboratories | 16 |
Atrium, halls and retail |
Entrance halls, atriums, concourses, lobbies, auditoriums and concert halls | 10 |
Multi-purpose halls, conference halls | 16 |
Retail general lighting and (accent, display, decorative) | Jewelry and crystal | 15 (+20) |
Furniture, clothing and accessories, cosmetics, artwork | 15 (+10) |
Others, e.g., supermarket, vehicles, sporting goods, hardware and stationery, pharmacy, and undetermined usage during early design | 15 (+5) |
Food and Relax |
Food courts, canteens, hawker centres (including dining area and food preparation) | 10 |
Restaurants, lounges, bars (including dining area and food preparation, accent, display, decorative) | 12 |
Transport and goods |
Circulation areas, corridors | 7 |
Stairs, escalators, travelators | 6 |
Lift lobbies | 7 |
Carparks | 3 |
Loading docks | 5 |
Warehouses | 7 |
Storage areas | 10 |
Table 2.
Receptacle load values for different spaces.
Table 2.
Receptacle load values for different spaces.
Receptacle Loads | Nominal Values |
---|
Computer-intensive office | 22 W/m2 |
General office areas | 16 W/m2 |
Large conference areas | 11 W/m2 |
Schools (tertiary/IHLs) | 8 W/m2 |
Schools (primary/secondary) | 5 W/m2 |
Server/computer rooms | 540 W/m2 |
Table 3.
DC load estimation of levels B1 to B2 of SIT Punggol Campus.
Table 3.
DC load estimation of levels B1 to B2 of SIT Punggol Campus.
BUILDING LIGHTING POWER BUDGET |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Lighting Power Budget (W/m2) | Lighting Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Lighting Power Budget (W/m2) |
---|
B1 to B2 of SIT Punggol Campus |
Carpark | 700 | 3 | 0.5 | 1050 | 2100 | 3 |
Facilities office | 100 | 12 | 0.5 | 600 | 1200 | 12 |
Stairs | 100 | 6 | 0.5 | 300 | 600 | 6 |
Lift Lobby A | 100 | 7 | 0.5 | 350 | 700 | 7 |
Total | 1000 | | | 2300 | 4600 | |
Table 4.
AC load estimation of levels B1 to B2 of SIT Punggol Campus.
Table 4.
AC load estimation of levels B1 to B2 of SIT Punggol Campus.
BUILDING RECEPTACLE LOAD |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Power Budget (W/m2) | Power Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Power Budget (W/m2) |
---|
B1 to B2 of SIT Punggol Campus |
Carpark | 700 | 0 | 0 | 0 | 0 | 0 |
Facilities office | 100 | 16 | 0.5 | 800 | 1600 | 16 |
Stairs | 100 | 1 | 0.5 | 50 | 100 | 1 |
Lift Lobby A | 100 | 5 | 0.5 | 250 | 500 | 5 |
Total | 1000 | | | 1100 | 2200 | |
Table 5.
Estimated load demand of electric charging stations for B1 and B2.
Table 5.
Estimated load demand of electric charging stations for B1 and B2.
ELECTRIC CHARGING STATIONS POWER BUDGET |
---|
Levels | Space Type | Quantity | Power (W/unit) | Power Diversity Factor | Total Power Consumption (W) |
---|
B1 | Electric Charging stations | 2 | 7000 | 0.5 | 7000 |
B2 | Electric Charging stations | 2 | 7000 | 0.5 | 7000 |
Total (W) | | | | | 14,000 |
Table 6.
DC load estimation of levels L1 to L3 of SIT Punggol Campus.
Table 6.
DC load estimation of levels L1 to L3 of SIT Punggol Campus.
BUILDING LIGHTING POWER BUDGET |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Lighting Power Budget (W/m2) | Lighting Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Lighting Power Budget (W/m2) |
---|
L1 to L3 of SIT Punggol Campus |
Classrooms | 200 | 12 | 0.5 | 1200 | 2400 | 12 |
Lecture Theatre | 200 | 15 | 0.5 | 1500 | 3000 | 15 |
Corridors | 300 | 7 | 0.5 | 1050 | 2100 | 7 |
Stairs | 100 | 6 | 0.5 | 300 | 600 | 6 |
Lift Lobby A | 100 | 7 | 0.5 | 350 | 700 | 7 |
Toilets | 100 | 10 | 0.5 | 500 | 1000 | 10 |
Total | 1000 | | | 4900 | 9800 | |
Table 7.
AC load estimation of levels L1 to L3 of SIT Punggol Campus.
Table 7.
AC load estimation of levels L1 to L3 of SIT Punggol Campus.
BUILDING RECEPTACLE LOAD |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Power Budget (W/m2) | Power Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Power Budget (W/m2) |
---|
L1 to L3 of SIT Punggol Campus |
Classrooms | 200 | 8 | 0.5 | 800 | 1600 | 8 |
Lecture Theatre | 200 | 8 | 0.5 | 800 | 1600 | 8 |
Corridors | 300 | 5 | 0.5 | 750 | 1500 | 5 |
Stairs | 100 | 1 | 0.5 | 50 | 100 | 1 |
Lift Lobby A | 100 | 5 | 0.5 | 250 | 500 | 5 |
Toilets | 100 | 5 | 0.5 | 250 | 500 | 5 |
Total | 1000 | | | 4150 | 8300 | |
Table 8.
DC load estimation of Level L4 of SIT Punggol Campus.
Table 8.
DC load estimation of Level L4 of SIT Punggol Campus.
BUILDING LIGHTING POWER BUDGET |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Lighting Power Budget (W/m2) | Lighting Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Lighting Power Budget (W/m2) |
---|
L4 of SIT Punggol Campus |
Server rooms | 100 | 13 | 0.5 | 650 | 1300 | 13 |
Offices | 300 | 10 | 0.5 | 1500 | 3000 | 10 |
Corridors | 300 | 7 | 0.5 | 1050 | 2100 | 7 |
Stairs | 100 | 6 | 0.5 | 300 | 600 | 6 |
Lift Lobby A | 100 | 7 | 0.5 | 350 | 700 | 7 |
Toilets | 100 | 10 | 0.5 | 500 | 1000 | 10 |
Total | 1000 | | | 4350 | 8700 | |
Table 9.
AC load estimation of level L4 of SIT Punggol Campus.
Table 9.
AC load estimation of level L4 of SIT Punggol Campus.
BUILDING RECEPTACLE LOAD |
---|
Description | Areas (m2) | Design Data | SS 530 Requirements |
---|
Design Lighting Power Budget (W/m2) | Lighting Diversity Factor | Total Power Consumption (by Area) (W) | Total Power Consumption (by Area) (W) | Design Lighting Power Budget (W/m2) |
---|
L4 of SIT Punggol Campus |
Server rooms | 100 | 0 | 0 | 0 | 0 | 0 |
Offices | 300 | 16 | 0.5 | 2400 | 4800 | 16 |
Corridors | 300 | 5 | 0.5 | 750 | 1500 | 5 |
Stairs | 100 | 1 | 0.5 | 50 | 100 | 1 |
Lift Lobby A | 100 | 5 | 0.5 | 250 | 500 | 5 |
Toilets | 100 | 5 | 0.5 | 250 | 500 | 5 |
Total | 1000 | | | 3700 | 7400 | |
Table 10.
Estimated load demand of server room.
Table 10.
Estimated load demand of server room.
SERVER ROOM POWER BUDGET |
---|
Levels | Space Type | Quantity | Power (W/unit) | Power Diversity Factor | Total Power Consumption (W) |
---|
L4 | Server Racks | 4 | 5000 | 0.5 | 10,000 |
Total (W) | | | | | 10,000 |
Table 11.
Switching states of the single-phase inverter.
Table 11.
Switching states of the single-phase inverter.
Cycle | S1 | S2 | S3 | S4 | Voltage at Bridge Output | State |
---|
Positive half cycle | ON | OFF | OFF | ON | VDC | 1 |
OFF | ON | OFF | ON | 0 | 2 |
Negative half cycle | OFF | ON | ON | OFF | −VDC | 3 |
ON | OFF | ON | OFF | 0 | 4 |
Table 12.
Load demand estimation for centralized cooling.
Table 12.
Load demand estimation for centralized cooling.
BUILDING COOLING POWER BUDGET |
---|
Levels | Space Type | Areas (m2) | No of Floors | Cooling Power (W/m2) | Cooling Power Diversity Factor | Total Power Consumption (by Area) (W) |
---|
L1 to L4 | School building | 1000 | 4 | 20 | 0.5 | 40,000 |
Total (W) | | | | | | 40,000 |
Table 13.
Switching states of the three-phase inverter.
Table 13.
Switching states of the three-phase inverter.
S1 | S2 | S3 | S4 | S5 | S6 | Vab | Vbc | Vca | State No |
---|
ON | OFF | ON | OFF | ON | OFF | 0 | 0 | 0 | 1 |
OFF | ON | ON | OFF | ON | OFF | −VDC | 0 | VDC | 2 |
ON | OFF | OFF | ON | ON | OFF | VDC | −VDC | 0 | 3 |
ON | OFF | ON | OFF | OFF | ON | 0 | VDC | −VDC | 4 |
ON | ON | OFF | OFF | ON | OFF | 0 | −VDC | VDC | 5 |
ON | OFF | OFF | ON | OFF | ON | VDC | 0 | −VDC | 6 |
OFF | ON | ON | OFF | OFF | ON | −VDC | VDC | 0 | 7 |
OFF | ON | OFF | ON | OFF | ON | 0 | 0 | 0 | 8 |
Table 14.
Parameters of BESS for pico-grid system.
Table 14.
Parameters of BESS for pico-grid system.
Parameters | Value |
---|
Battery nominal voltage | Vbatt = 48 V |
Battery rated capacity | Ibatt = 300 Ah |
Initial SOC | SOC = 45% |
Switching frequency | Fsw = 10 kHz |
Inductor value | L = 2.5 mH |
Table 15.
Parameters of single-phase inverter for pico-grid system.
Table 15.
Parameters of single-phase inverter for pico-grid system.
Parameters | Value |
---|
Switching frequency | Fsw = 5 kHz |
Filter inductor | L = 2.5 mH |
Filter capacitor | C = 1000 µF |
DC link voltage | VDC = 400 V |
Distribution grid voltage | Vgrid = 230 V (phase) |
Table 16.
Parameters of solar PV system for nano-grid system.
Table 16.
Parameters of solar PV system for nano-grid system.
Parameters | Value |
---|
Series-connected strings | 10 |
Parallel-connected strings | 10 |
Vmp | Vmp = 40.8 V |
Imp | Imp = 9.81 A |
Sun irradiance | Ir = 1000 W/m2 |
Cell temperature | T = 25 °C |
Table 17.
Parameters of boost converter for nano-grid system.
Table 17.
Parameters of boost converter for nano-grid system.
Parameters | Value |
---|
Switching frequency | Fsw = 5 kHz |
Inductor value | L = 2.5 mH |
Input capacitor value | Cin = 1000 µF |
Output capacitor value | Cout = 4000 µF |
Table 18.
Parameters of BESS for nano-grid system.
Table 18.
Parameters of BESS for nano-grid system.
Parameters | Value |
---|
Battery nominal voltage | Vbatt = 400 V |
Battery rated capacity | Ibatt = 300 Ah |
Initial SOC | SOC = 45% |
Switching frequency | Fsw = 10 kHz |
Inductor value | L = 1 mH |
Table 19.
Parameters of three phase inverter.
Table 19.
Parameters of three phase inverter.
Parameters | Value |
---|
Switching frequency | Fsw = 10 kHz |
Inductor value | L = 10 mH |
DC link voltage | VDC = 1000 V |
Distribution grid voltage | Vgrid = 400 V (line) |