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certain threshold value due to high and continuous charging of vehicles (stationary battery
is not able to supply the electricity unless being recharged). In the latter, BAC manages the
charging rate of each charger to corresponding vehicle; hence, the contracted power capac-
ity can be maintained avoiding any penalty. Electricity flow in the battery idling mode can
be represented as follows:
P
grid = P
QC1 + P
QC2 + P
loss
. (3)
BAC always maintains that the value of Pgrid must be lower than or maximally equal to the
contracted power capacity. Furthermore, Ploss is the total power loss in the system due to some
factors, such as AC/DC and DC/DC conversions and internally consumed electricity the sys-
tem. Therefore, the value of Ploss in each quick-charging mode might be different.
Table 2 shows the specification of the developed BAC system and the used vehicles during
experiments. Nissan Leaf having battery capacity of 24 kWh is used as the vehicle. Figure 4
shows the results of simultaneous quick charging of two vehicles during winter conducted
using conventional quick charger and BAC under contracted power capacity of 50 kW. The
electricity received from the grid is kept at 50 kW or below. In case of charging using the
conventional charging system, the first connected vehicle is charged with higher charging
rate than the vehicles connected later. This is due to the limit on contracted power capacity
as well as the available power for charging. The charging rate of the second connected vehi-
cle increases gradually as the charging rate of the first connected vehicle starts to decrease;
therefore, the total electricity can be maintained to be lower or equal to the contracted power
Component Property Value
Installed battery in the charger Battery type
Total capacity
Nominal voltage
Maximum charging voltage
Cut-off voltage during discharge
Maximum current during discharge
SOC threshold during charge
SOC threshold during discharge Li-ion
64.2 kWh
364.8 V
393.6 V
336.0 V
176 A
90%
10%
Quick charger Number
Standard
Output voltage
Output current
Rated output power 2 units
CHAdeMO
DC 50–500 V
0–125 A
50 kW
Vehicle Vehicle type
Battery type
Total battery capacity
Maximum voltage
Nominal voltage
Cell rated capacity
Cell average voltage
Cell maximum voltage Nissan Leaf
Laminated li-ion
24 kWh
403.2 V
360 V
33.1 Ah (0.3 C)
3.8 V
4.2 V
Table 2. Specifications of the developed BACS.
Hybrid Electric
Vehicles74
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Buch Hybrid Electric Vehicles"
Hybrid Electric Vehicles
- Titel
- Hybrid Electric Vehicles
- Autor
- Teresa Donateo
- Herausgeber
- InTech
- Ort
- Rijeka
- Datum
- 2017
- Sprache
- englisch
- Lizenz
- CC BY 4.0
- ISBN
- 978-953-51-3298-1
- Abmessungen
- 15.5 x 22.5 cm
- Seiten
- 162
- Schlagwörter
- Physical Sciences, Engineering and Technology, Engineering, Vehicle Engineering, Automobile Engineering
- Kategorie
- Technik