AC/DC, DC-DC Bi-Directional Converters For Energy Storage and EV Applications
AC/DC, DC-DC Bi-Directional Converters For Energy Storage and EV Applications
                                                                  2
Applications of Bi-Directional
         Converters
What is a Bi-Directional Converter
Bi-directional converters use the same power stage to transfer power in
either directions in a power system.
                                                                          4
Use Case of Bi-Directional Converters
                  Super Chargers                                  Vehicle to Grid
                             AC/DC                                                   Bi-Directional
                                                                   HOME                 AC/DC
                            Bi-       Battery                                            VEHICLE
                        Directional
   VEHICLE               DC-DC
                                                • V2G needs “Bi-Directional” Power Flow.
• Helps reduce peak demand tariff.              • Ability to change direction of power transfer quickly.
• Reduces load transients.                      • High efficiency >97% (End to End) at power levels
                                                  up to 22KW.
• Needs Bi-Directional DC-DC stage                                                                  5
EVSE/ESS Power Stage
                                 AC/DC                                   DC/DC
Aux CAN
                                                                                                                          6
Active Clamp Current Fed
       Full Bridge
Backup Mode : Active Clamp Current Fed Full Bridge
snubber
                                                                                  8
Battery Charging Mode : Phase Shift Full Bridge
control used
                                                                                9
Boost Mode ZVS Waveform
IL
VDS_Q1 VDS_Q1
VGS_Q1 VGS_Q1
Ids_Q1
ZVS Turn on of LV Mosfet when Input Current > 15A, ZCS turn on at <15A
                                                                                           10
Mode Transition Waveform
50 uSec
   When Bus voltage drops to 370V, Mode transition from charging to backup begins (soft start).
   When Bus voltage drops to 360V, full backup in boost mode starts
                                                                                                   11
Backup Supply Efficiency
Target Applications
• Energy storage systems
• Automotive
                                                             16
DAB - Zero Voltage Switching
Switching transition from interval 1 to 2:
                                                                          17
Test Results
                                                                                                          19
Bi-Directional Dual Active Bridge (DAB) DC:DC Design
Features                                                             Benefits
•   Input Voltage: 700-800-V DC (HV-Bus voltage/Vienna output)       • Single phase shift modulation provides easy control loop
•   Output Voltage: 380-500 V (Battery)                                implementation. Can be extended to dual phase shift
•   Output power level: 10 kW                                          modulation for better range of ZVS and efficiency.
•   Single phase DAB capable of bi-directional operation             • SiC devices offer best in class power density and efficiency
•   Soft switching operation of switches over a wide range           • Dual channel reinforced gate driver UCC21530 reduces the
•   Achieves peak efficiency – 98.2%, full load efficiency – 97.5%     total component count for driving SiC MOSFETS
•   Less than 3% ripple target for output voltage                    • Provides modularity and ease of bidirectional operation
•   Dual channel reinforced isolated gate driver
•   Snubber less devices reduce parasitic device volume
•   Single phase shift modulation
•   Switching frequency -100 kHz, Power density – 2.25 KW/L
Applications
                                    • EV charging stations, On
                                      board chargers
                                    • Power conversion
                                      systems (PCS) in energy
                                      storage
                                                                                                                                20
Bi-Direction Resonant
      Converters
Bi-Directional LLC
                                                                          23
The Gain Curve
  Fr2                                                    At Resonance Fr1
ILR
        Capacitive
        Region
                                                IQ9
                                                           VdsQ2
                                                           VgsQ2
                                  Inductive
                                          Vo Region
ILR
   •   The second conditioner stage boosts the batter voltage to a fixed 72V (an example).
   •   This can help operate the LLC converter operate at fixed frequency.
   •   This enables use of HV Si Mosfets for cost optimized applications.
                                                                                             26
Battery Charging Mode: Full Bridge LC
                         ─ In this mode power transfer from high voltage
                            DC Bus to battery.
                         ─ Power stage work as ‘LC Converter’
                         ─ The High voltage mosfet achieve ZVS turn-on.
                         ─ The body diode of the low voltage mosfet have
                            high di/dt at turn-off. Some have some Qrr loss.
                         ─ At light load, need to operate in burst mode.
                         ─ Efficiency upto 95% possible when the Low
                            voltage mosfet is operated as synchronous
                            rectifier.
                                                                           27
Mode Transition Waveform: Charging to Backup
   Peak Efficiency 96.9% in prototype Board   Peak Efficiency 95.2% in prototype Board
                                                                                         29
    Key Points for Fix Frequency Resonant Converters
                   ADVANTAGES                                            DIS-ADVANTAGES
•    Topology capable of achieving high efficiency.   •       Slightly Complex topology for control
•    High switching frequency possible to increase    •       Using high voltage mosfet limit operating range.
     power density.                                   •       Preferable to use SiC or GaN
•    Backup mode efficiency ~97.5% possible.          •       Topology    suitable    for   limited   input/output
•    Using C-LLC, battery charging mode efficiency            voltage range region.
     also can be further increased.
                                                          •   ESS
                                                          •   EV/HEV OBC /Off Board (SiC)
                                                                                                              30
Phase Shift Resonant
    Converters
Hybrid Control Strategy for Wide Input and Output
Voltage Range Applications
                                                                                       32
  Case #2 Battery Voltage Between 410 – 450V
                                                                     Key operating waveform
500V
                                                         410–
                                                         460V
Gain Boost
 •     Secondary side phase shift + Resonant LLC                 •    Green waveform shows the secondary SiC
       operation.                                                     current. Can clearly see the non ZCS
 •     Very little reduction switching frequency. This results        operation at turn off, resulting in slight
       in reduced increase in RMS current                             increase in switching loss.
 •     Achieves high efficiency.
 •     ZVS for primary mosfet. Slight turn-off loss for          •    Blue waveform shows the GaN switch
       secondary mosfet.                                              current indicated ZVS.
                                                                                                             33
Case #3 Battery Voltage between 250-310V
                                                                 Key operating waveform
                                                                              Gain Buck
390V
                                                     250 –
                                                     310V
                                                                                                       34
Case #4 Enhanced Case #3 with Range Extension
                               •   At very light loads and lower voltage
                                   range, primary phase shift cannot
                                   gaurantee ZVS turn-on of the GaN
390V
                       250V-
                                   switches.
                       270V
                                                                        36
    Key Points for Phase Shift LLC
                   ADVANTAGES                                              DIS-ADVANTAGES
•    Topology capable of achieving wide range input       •       Complex topology for control
     and output voltage variation with high efficiency.   •       Needs high bandwidth isolated current sensing
•    High switching frequency possible to increase
     power density.
•    In some applications, can eliminate a second
     stage DC/DC .
•    Backup mode efficiency ~97.5% possible.
                                                              •   ESS
•    Enables single stage LLC operation using Si
                                                              •   EV/HEV OBC /Off Board (SiC)
     Mosfet for wide line and load ranges.
                                                                                                            37
97.5% Efficient, 3.3KW Off Board EV Charger with GaN
                                                                                                                 In Design
Features                                                          Benefits
•    Dual Phase shift FB LLC topology                             • Dual phase shift resonant control enables wide output battery
•    Full load efficiency >97% with peak efficiency >97.5%          voltage range.
•    Extended battery voltage support from 250V to 450V DC        • Minimal DC Bus voltage variation limited to 390-480V DC.
•    Compact form factor 179x100x45mm                             • LLC stage switching between 200KHz to 500KHz enabling a
•    Using GaN for LLC primary stage, SiC for LLC secondary         compact power stage while optimizing efficiency.
•    Output OCP, OVP, Short-circuit Protection, OTP
•    Meets Norms: EN–55022 class A (CE)
    Target Applications
    • Off Board EV Charger
Wide Battery Voltage,    Yes                 No, needs additional    Limited range         Yes (with reduced     Yes (if a 10% bus
Fixed Bus Voltage                            DC/DC stage                                   efficiency)           voltage variation is
                                                                                                                 acceptable)
Efficiency in Backup     Medium              High                    High                  High                  High
Mode         (nominal
voltage)
Efficiency in Charging   High                High                    High                  High                  High
Mode          (nominal
voltage)
Mode change from         Easy                Easy                    Easy                  Easy                  Easy
Buck to Boost (50uS)
Startup procedure (in    Needs a low power   No need for startup     No need for startup   No need for startup   No need       for   startup
cold start condition)    startup winding     winding                 winding               winding               winding
Paralleling Modules      Easy                Intensive               Intensive             Easy                  Intensive
Switching Frequency      Low                 Fixed/ High (Si /SiC)   High                  High                  High (advantage clamp
                                                                                                                 frequency range)
                                                                                                                                        39
AC/DC Topologies
Inverter Topologies
             Two level h-bridge                                        Three level NPC
                                                                              Link
                                                                             Input
                Link
               Input                                                                 N
 •   Simple, well known architecture.                    •   Stacks multiple switching devices to “double” link
                                                             voltage limit.
 •   Low component cost.
                                                         •   Able to use lower voltage/cost devices.
 •   Simple control structure.
                                                         •   Neutral point clamp centers switching devices.
 •   Losses are concentrated in few devices.
                                                         •   Unequal component loss distribution.
 •   Link voltage limited to component voltage rating.
                                                         •   Increased conduction loss.
                                                         •   More complex control structure.
                                                                                                                  41
Inverter Topologies
      Three level ANPC inverter                                 Three level TNPC inverter
                 Link
                Input
                                                                      Link
                                                                             N
                        N                                            Input
 •   Clamping diode replaces with active device.           •   Reduced switching device count.
 •   Similar benefits of NPC.                              •   Lower conduction loss.
 •   More complex control structure.                       •   Simplified driver bias supply vs NPC and ANPC.
 •   Similar losses to NPC, but balanced across devices.   •   Simplified control structure vs NPC and ANPC.
 •   Increased conduction loss.                            •   Primary switches still experience full DC link voltage
                                                               (blocking).
                                                           •   Reduced switching voltage – half DC link voltage
                                                                                                                        42
Test Results – Inverter
100
99
98
                                                Efficiency (%)
                                                                  97
96
95
94
                                                                  93
                                                                       0%         50%          100%
                                                                            Load (% of 10kW)
                                                                                                      43
Test Results – PFC
                                                                                                  45
10KW, 3Ph T-Type PFC/Inverter
  Features                                                                 Benefits
  •   Rated nominal/Max DC voltage at 800V/1000V DC                        • 3-Level T-type inverter topology for reduced ground
  •   3-Ph 3-Level PFC/inverter topology                                     current in transformer-less grid-tie inverter applications
  •   Max 10kW/10KVA power at 400VAC                                       • Reduced size at higher efficiency using low RDS_ON SiC
  •   High Voltage (1200V) SiC MosFET based full bridge PFC/inverter         MOSFETs and higher switching frequency (50kHz) at
      for Peak efficiency of 98.5%                                           higher power (10kW)
  •   PWM Frequency 50KHz, THD<2% at full load.                            • Platform for testing both 2-level and 3-level inverter by
  •   Isolated current sensing using AMC1301 for load current                enabling or disabling middle devices through digital
      monitoring                                                             control
  •   TMS320F28379D Control card for digital control.
  •   Platform for testing both 2-level and 3-level inverter by enabling
      or disabling middle devices through digital control.
  Applications
  • Energy storage systems, solar inverters
LM5180
- 400V
                                                                                                                                                                                                                                                           R
                                                                                  UCC21530
                                                                                                                                               UCC21530
                                                                                                                                                                                                                                                           B
                                       UCC28910, TMS320F28004x
Topology Summary: Bi-Directional AC/DC
                                                                    3-Level TNPC
                       2-Level   3-Level NPC   3-Level ANPC
 THD of output
                        High      Very low        Very low
 current
 Peak voltage stress
 on active and          High        Low             Low           Low /(High Blocking)
 passive devices
 Power density          Low         High           Higher                High
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