Wiki source code of Power controller

Last modified by Mathias Larsen on 2026/09/24 21:21

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1 {{wikibox title="Power controller" image="https://wiki.alignracing.no/bin/download/Electrical/Power%20controller/WebHome/Screenshot%202026-09-22%20211347.png?rev=1.1" caption="3D model of the Power controller from Altium Designer" width="30" labelWidth="50"}}
2 Supply voltage=12–24 V DC
3 Fused circuits=9 (5 × 24 V outputs, fan outputs, digital outputs, 12 V circuit, internal electronics)
4 24 V outputs=5
5 24 V fan outputs=2 (shared fuse)
6 12 V outputs=2
7 Digital outputs (shared fuse)=2 × 12 V switched (5 A), 2 × 24 V switched (330 mA), 2 × PWM
8 Communication interface=CAN FD
9 Maximum data rate=1 Mbps
10 {{/wikibox}}
11
12 == Table of contents ==
13
14 ----
15
16 {{toc/}}
17
18
19
20 == Pinout ==
21
22 === Connector pinout ===
23
24 |=(% style="width: 281px;" %)Pin|=(% style="width: 135px;" %)Signal|=(% style="width: 157px;" %)Comment|=(% style="width: 132px;" %)
25 |(% style="width:281px" %)1|(% style="width:135px" %)CANH|(% style="width:157px" %) |(% style="width:132px" %)
26 |(% style="width:281px" %)2|(% style="width:135px" %)CANL|(% style="width:157px" %) |(% style="width:132px" %)
27 |(% style="width:281px" %)3|(% style="width:135px" %)FAN 1 PWM|(% style="width:157px" %) |(% style="width:132px" %)
28 |(% style="width:281px" %)4|(% style="width:135px" %)FAN 2 PWM|(% style="width:157px" %) |(% style="width:132px" %)
29 |(% style="width:281px" %)5|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
30 |(% style="width:281px" %)6|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
31 |(% style="width:281px" %)7|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
32 |(% style="width:281px" %)8|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
33 |(% style="width:281px" %)9|(% style="width:135px" %)Accumulator|(% style="width:157px" %) |(% style="width:132px" %)
34 |(% style="width:281px" %)10|(% style="width:135px" %)Front|(% style="width:157px" %) |(% style="width:132px" %)
35 |(% style="width:281px" %)11|(% style="width:135px" %)Power fan|(% style="width:157px" %) |(% style="width:132px" %)
36 |(% style="width:281px" %)12|(% style="width:135px" %)Power fan|(% style="width:157px" %) |(% style="width:132px" %)
37 |(% style="width:281px" %)13|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
38 |(% style="width:281px" %)14|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
39 |(% style="width:281px" %)15|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
40 |(% style="width:281px" %)16|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
41 |(% style="width:281px" %)17|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
42 |(% style="width:281px" %)18|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
43 |(% style="width:281px" %)19|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
44 |(% style="width:281px" %)20|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
45 |(% style="width:281px" %)21|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
46 |(% style="width:281px" %)22|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
47 |(% style="width:281px" %)23|(% style="width:135px" %)GND|(% style="width:157px" %) |(% style="width:132px" %)
48 |(% style="width:281px" %)24|(% style="width:135px" %)12V|(% style="width:157px" %) |(% style="width:132px" %)
49 |(% style="width:281px" %)25|(% style="width:135px" %)12V|(% style="width:157px" %) |(% style="width:132px" %)
50 |(% style="width:281px" %)26|(% style="width:135px" %)12V power pump 1|(% style="width:157px" %) |(% style="width:132px" %)
51 |(% style="width:281px" %)27|(% style="width:135px" %)12V power pump 2|(% style="width:157px" %) |(% style="width:132px" %)
52 |(% style="width:281px" %)28|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
53 |(% style="width:281px" %)29|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
54 |(% style="width:281px" %)30|(% style="width:135px" %)GND|(% style="width:157px" %)Solder blob|(% style="width:132px" %)
55 |(% style="width:281px" %)31|(% style="width:135px" %)Buzzer|(% style="width:157px" %)Is brake light in wiring harness|(% style="width:132px" %)
56 |(% style="width:281px" %)32|(% style="width:135px" %)Brake light|(% style="width:157px" %)Is buzzer in wiring harness|(% style="width:132px" %)
57 |(% style="width:281px" %)33|(% style="width:135px" %)24V|(% style="width:157px" %)Reserve|(% style="width:132px" %)
58 |(% style="width:281px" %)34|(% style="width:135px" %)24V|(% style="width:157px" %)Reserve|(% style="width:132px" %)
59 |(% style="width:281px" %)35|(% style="width:135px" %)24V|(% style="width:157px" %)Sensor card|(% style="width:132px" %)
60
61 === Microcontroller pinout ===
62
63 The power controller uses a microcontroller to control the pumps, fans, buzzer and brake light. It also handles current monitoring and the LED indicators. The microcontroller used in this system is the STM32G431CBT6.
64
65
66 |=Physical pin|=Electrical pin|=Description
67 |1|VBAT|Backup battery supply, used if an RTC is needed (connected to +3V3 in this design)
68 |5|OSC_IN|Clock input (8 MHz oscillator)
69 |7|NRST|Active-low reset, can be connected to a button (connected to +3V3)
70 |8|PA0|Analog signal: Current 6, supply 24 V reserve
71 |9|PA1|Analog signal: Current 7, supply 24 V reserve
72 |10|PA2|Analog signal: Current 5, supply sensor card
73 |11|PA3|Analog signal: Current 4, supply front
74 |12|PA4|Analog signal: Current 3, supply accumulator
75 |13|PA5|Analog signal: Current 2, supply fans
76 |14|PA6|Digital output: LED 9
77 |15|PA7|Digital output: LED 2
78 |16|PB0|Analog signal: Current 8, supply buzzer and brake light
79 |17|PB1|PWM: Enable fan 1
80 |18|PB2|Input: V-sense
81 |19|VSSA|Voltage source: Ground
82 |20|VREF|Voltage reference (internal voltage reference)
83 |21|VDDA|Voltage source: Power (+3V3)
84 |22|PB10|Digital output: LED 8
85 |23|VSS|Voltage source: Ground
86 |24|VDD|Voltage source: Power (+3V3)
87 |25|PB11|Analog signal: Current 1, internal components
88 |26|PB12|Analog signal: Current 9, supply 12 V pumps, inverter and data logger
89 |29|PB15|PWM: Enable fan 2
90 |30|PA8|Digital output: Enable buzzer (on the car it is the brake light)
91 |31|PA9|Digital output: Enable brake light (on the car it is the buzzer)
92 |32|PA10|Input: ASMS signal
93 |33|PA11|CAN bus RXD
94 |34|PA12|CAN bus TXD
95 |35|VSS|Voltage source: Ground
96 |36|VDD|Voltage source: Power (+3V3)
97 |37|PA13|SWDIO
98 |38|PA14|SWCLK
99 |40|PB3|Digital output: LED 3
100 |41|PB4|Digital output: LED 4
101 |42|PB5|Digital output: LED 5
102 |43|PB6|Digital output: Enable pump 1
103 |44|PB7|Digital output: Enable pump 2
104 |45|PB8|Digital output: LED 6
105 |46|PB9|Digital output: LED 7
106 |47|VSS|Voltage source: Ground
107 |48|VDD|Voltage source: Power (+3V3)
108
109 == Distribution circuit ==
110
111 The board has 9 distribution circuits, one for each fused output group. All 9 circuits use the same design, and the component reference designators follow the circuit number (circuit 1 uses R101–R104, C101, D101 and F101, circuit 2 uses R201–R204, and so on). Each circuit consists of:
112
113 * A fuse in a Littelfuse nano fuse holder, so the fuse can be replaced without soldering
114 * A 2 mΩ shunt resistor for current measurement
115 * A current sense amplifier channel and a low-pass filter to the microcontroller ADC
116 * An RGB LED, where the green channel shows that the fuse is intact and the red channel is controlled by the microcontroller
117
118 [[image:1790100104451-169.png]]
119
120 === Green LED ===
121
122 The green LED indicates whether the fuse is intact. It is connected from the output side of the fuse to ground through a 4.7 kΩ resistor. When the fuse is intact, the LED lights up. If the fuse blows, the LED loses its supply and turns off. This makes it easy to find a blown fuse by looking at the board.
123
124 The LED is powered directly from the output voltage, so the current depends on the supply. At 24 V the current is roughly 4–5 mA, and at 12 V it is about 2 mA. This turned out to be brighter than necessary.
125
126 [[image:1790098808447-123.png]]
127
128 === Current sense ===
129
130 The current in each circuit is measured by passing it through a shunt resistor with a very low resistance and measuring the voltage drop across it. This small voltage is amplified, filtered and read by the microcontroller's ADC.
131
132 ==== Shunt resistor ====
133
134 A 2 mΩ shunt resistor is placed in series with the load. The voltage drop across it is 2 mV per ampere of current (0.002 V/A).
135
136 The shunt is a Vishay WSLF2512 metal strip resistor with 1 % tolerance and a 5 W rating. The low resistance keeps the losses small: at 8 A the voltage drop is only 16 mV and the power loss is about 0.13 W.
137
138 [[image:1790100157872-786.png]]
139
140 ==== Amplifier ====
141
142 The amplifier is a quad-channel current sense amplifier with a gain of 200 V/V. When the measured voltage drop passes through the amplifier, the output is therefore 0.4 V per ampere.
143
144 The board uses three INA4180A4 amplifiers (U3, U4, U5) from Texas Instruments. This gives 12 channels, of which 9 are used. The INA4180 measures on the high side and accepts a common-mode voltage of up to 26 V, so it can measure directly on the 24 V outputs.
145
146 With the 3.3 V ADC on the microcontroller, the maximum measurable current is about 8 A (3.3 V / 0.4 V/A ≈ 8.25 A). Above this, the amplifier output saturates.
147
148 |=Current|=Shunt voltage|=Amplifier output
149 |1 A|2 mV|0.4 V
150 |2.5 A|5 mV|1.0 V
151 |5 A|10 mV|2.0 V
152 |8 A|16 mV|3.2 V
153
154 ==== Filter ====
155
156 The filter is a low-pass filter with a cutoff frequency of 1.6 kHz.
157
158 It is an RC filter made of a 10 kΩ resistor and a 10 nF capacitor between the amplifier output and the ADC pin: f,,c,, = 1 / (2π × 10 kΩ × 10 nF) ≈ 1.6 kHz. The filter removes high-frequency noise, for example from PWM-controlled fans and switching loads, before the signal is sampled. The capacitor also acts as a charge reservoir for the ADC's sampling capacitor.
159
160 === Power amplifier ===
161
162 [[image:1790101431805-672.png]]
163
164 === Voltage measurement ===
165
166 The supply voltage is measured so the microcontroller can monitor the LV battery voltage. The signal is read on pin PB2 (V-sense).
167
168 A voltage divider with a ratio of 1:11 is used, so 24 V corresponds to 2.182 V on the microcontroller pin.
169
170 The input voltage is calculated in firmware as V,,in,, = V,,pin,, × 11. With a 3.3 V ADC, the highest voltage that can be measured is about 36 V, which gives good margin above the 24 V supply.
171
172 |=Supply voltage|=Voltage on pin
173 |12 V|1.09 V
174 |20 V|1.82 V
175 |24 V|2.18 V
176 |30 V|2.73 V
177
178 [[image:1790101449150-901.png]]
179
180 === 12 V supply (did not work) ===
181
182 The 12 V supply is a synchronous buck converter that steps the 24 V supply down to 12 V for the pumps, inverter and data logger. It is built around an LM5148 buck controller (U801) from Texas Instruments, which drives two external N-channel power MOSFETs (IAUCN04S7L028, Q901 and Q902) as the high-side and low-side switches. The output inductor is a 0.65 µH Coilcraft XAL7070 (L901), and a 3 mΩ resistor (R910) is used for current sensing in the controller.
183
184 The buck converter overheated under load and made a whining sound.
185
186 [[image:1790102044737-969.png||height="368" width="925"]]
187
188 A Mateksys PM20S-2 power module was used as a quick fix to provide 12 V for the competition.
189
190 === 5 V, 3.3 V and CAN bus ===
191
192 Uses the standard Align template.
193
194 * **5 V:** An AP64060 synchronous buck converter (U6) steps the input voltage down to 5 V. It accepts 4.5–40 V in and delivers up to 0.6 A.
195 * **3.3 V:** An AP2112K-3.3 LDO regulator (U7) generates 3.3 V for the microcontroller and the current sense amplifiers.
196 * **CAN bus:** An NCV7344 CAN FD transceiver (U2) connects the microcontroller to the CAN bus. The transceiver supports up to 5 Mbps, and the bus runs at 1 Mbps. A common-mode choke (L1) reduces noise on the bus lines, and a TVS diode (D1) protects them against ESD and voltage spikes.
197
198 The whole board is protected by a 400 W power TVS diode (D2) on the input, which clamps voltage spikes on the supply.
199
200 == Control logic ==
201
202 === Sourced from the microcontroller ===
203
204 The programmable red light is part of the same RGB LED as the green fuse indicator. It is controlled by the firmware and can be used to show the status of each circuit, for example an overcurrent or an output that is switched off.
205
206 Current is sourced directly from the microcontroller through a 350 Ω series resistor. When the pin is driven high (3.3 V), current flows through the resistor and the red LED to ground. The STM32 pins can supply up to about 20 mA each, so no transistor is needed. This gives an LED current of roughly 3–4 mA, which made the LEDs too bright. The resistor value should be increased on the next version.
207
208 [[image:1790098512666-432.png]]
209
210 === High-side switching ===
211
212 The buzzer, brake light and pumps are switched on the high side. The load's negative side is permanently connected to ground, and the controller switches the positive supply. This means a short from the output wire to chassis cannot turn the load on, and the load is completely unpowered when it is off.
213
214 Each output uses a P-channel MOSFET as the main switch between the supply and the load. A P-channel MOSFET is used because it can switch the high side without a charge pump or gate driver. It turns on when its gate is pulled below its source (the supply voltage).
215
216 The microcontroller runs on 3.3 V and cannot pull the gate of the P-channel MOSFET far enough on its own. A small N-channel MOSFET is therefore used as a level shifter:
217
218 * **Output off:** The microcontroller pin is low, so the N-channel MOSFET is off. A pull-up resistor holds the P-channel gate at the supply voltage, so V,,GS,, = 0 V and the P-channel MOSFET is off.
219 * **Output on:** The microcontroller pin goes high (3.3 V) and turns on the N-channel MOSFET. This pulls the P-channel gate towards ground, V,,GS,, becomes negative and the P-channel MOSFET turns on.
220
221 A 1 kΩ series resistor on the N-channel gate limits the current from the microcontroller pin, and a 10 kΩ pull-down keeps the output off while the microcontroller is starting up or in reset.
222
223 ==== Buzzer and brake light ====
224
225 The buzzer and brake light are switched on the high side using an N-channel MOSFET (BSS123NH6327XTSA1) that drives a P-channel MOSFET (BSS83PH6327XTSA1).
226
227 These outputs run on 24 V. The BSS83P is rated for -60 V and -0.33 A, which limits each output to 330 mA. This is enough for the buzzer and an LED brake light. The maximum gate-source voltage of the BSS83P is ±20 V, so the gate must not be pulled all the way to ground from 24 V. The two 10 kΩ resistors on the P-channel gate form a voltage divider that limits V,,GS,, to about half the supply (≈ -12 V).
228
229 [[image:1790181075885-591.png||height="343" width="367"]]
230
231 ==== Pump ====
232
233 The N-channel MOSFET (BSS123NH6327XTSA1) is the same as for the buzzer and brake light, but the P-channel MOSFET (BSC084P03NS3GATMA1) has a much higher current rating.
234
235 The pumps run on 12 V and draw considerably more current. The BSC084P03 is a power MOSFET rated for -30 V and -78.6 A, with an on-resistance of about 8.4 mΩ. At 5 A this gives a loss of only about 0.2 W, so no heatsink is needed. Since the supply is 12 V, the gate can be pulled fully to ground without exceeding the ±20 V gate-source rating.
236
237 [[image:1790181054296-268.png||height="306" width="371"]]
238
239 == Known issues ==
240
241 * The 12 V supply did not work.
242 * The current measurement has not been tested.
243
244 == Features to add ==
245
246 * Add MOSFETs to cut power if the LV battery voltage is too low, to save power.
247 * Add power distribution for the autonomous system.
248
249 == BOM (bill of materials) ==
250
251 |=Part Number|=Description|=Ref Des|=Qty|=Manufacturer|=MPN
252 |CC0603KRX5R6BB475|Chip Capacitor, 4.7µF +/-20%, 10V, 0603|C1|1|Yageo Group|CC0603KRX5R6BB475
253 |CL10B104KA8NNNC|MLCC, 0.1 uF, 25V, ±10%, X7R, 0603|C2, C3, C4, C8, C9, C10, C14, C15, C16|9|Samsung Electro-Mechanics|CL10B104KA8NNNC
254 |CL10B105KA8NFNC|MLCC, 1uF, 25V, 10%, X7R, 0603|C5, C7|2|Samsung Electro-Mechanics|CL10B105KA8NFNC
255 |CL10B103KB8NNNC|MLCC, 10nF, 50V, +125C, X7R, ±10%, 0603|C6, C101, C201, C301, C401, C501, C601, C701, C801, C901|10|Samsung Electro-Mechanics|CL10B103KB8NNNC
256 |885012206020|MLCC, General Purpose, 0603, 100nF, 10V|C11|1|Wurth Elektronik|885012206020
257 |885012006051|MLCC, General Purpose, 0603, 10pF, 50V|C12, C13|2|Wurth Elektronik|885012006051
258 |885012208124|MLCC, General Purpose, 1206, 2.2µF, 100V|C17, C19|2|Wurth Elektronik|885012208124
259 |885012108022|MLCC, General Purpose, 1206, 10µF, 50V|C18|1|Wurth Elektronik|885012108022
260 |885012206071R|MLCC, General Purpose, 0603, 100nF, 25V|C20|1|Wurth Elektronik|885012206071R
261 |885012107014|MLCC, General Purpose, 0805, 10µF, 16V|C21, C22|2|Wurth Elektronik|885012107014
262 |MBASU105SB5104KFNA01|MLCC, 50V, 10%, X5R, 0.1uF, 0402|C23, C24|2|TAIYO YUDEN|MBASU105SB5104KFNA01
263 |GRM32ER71H475KA88L|MLCC, 1210, 4.7uF, 50V, ±10%, X7R|C902, C903|2|Murata|GRM32ER71H475KA88L
264 |GRM188R71A225KE15D|MLCC, 0603, 2.2uF, X7R, 10V|C904|1|Murata|GRM188R71A225KE15D
265 |CC0402KRX7R6BB104|Chip Capacitor, 100nF +/-20%, 10V, 0402|C905, C908|2|Yageo Group|CC0402KRX7R6BB104
266 |GRM1555C1H102JA01J|MLCC, 0402, 1nF, 50V, ±5%, C0G|C906|1|Murata|GRM1555C1H102JA01J
267 |GRM1555C1H4R3CA01D|MLCC, 0402, 4.3pF, 50V, C0G, ±0.25pF|C907|1|Murata|GRM1555C1H4R3CA01D
268 |GRM32ER61E226KE15L|MLCC, 1210, 22uF, 25V, X5R|C909, C910, C911, C912|4|Murata|GRM32ER61E226KE15L
269 |824094024|WE-TVS TVS Diode, SOT23-3L, 2 Channel, 24V, 38pF|D1|1|Wurth Elektronik|824094024
270 |824500261|WE-TVSP SMT Power TVS Diode, DO-214AC, 400W, 26VDC|D2|1|Wurth Elektronik|824500261
271 |150282M167310|WL-SFTD Full-color Top LED, 2828, R/G/B, 70°|D101, D201, D301, D402, D501, D601, D701, D801, D901|9|Wurth Elektronik|150282M167310
272 |01550900DR|Fuseholder - Acs Nano|F101, F201, F301, F401, F501, F601, F701, F801, F901, F902, F903, F904|12|Littelfuse|01550900DR
273 |0466.125NR|Electric Fuse, Very Fast Blow, 0.125A, 125VAC/VDC, 1206|F102|1|Littelfuse|0466.125NR
274 |776231-1|Conn Shrouded Header, HDR 35 POS, 4mm, Thru-Hole|J1|1|TE Connectivity|776231-1
275 |76829-0002|Mega-Fit Straight Male Header, 2x2, 5.7mm Pitch|J2|1|Molex|76829-0002
276 |(4 pin header)|2.54mm pitch 1x4 vertical header|J3|1|Generic|
277 |44914-0401|Conn Header Vert 4POS 3mm|J4|1|Molex|44914-0401
278 |1461247-3|Relay, Gen Purpose, SPST, 8A, 24V|K1|1|TE Connectivity|OJ-SH-124LMH,000
279 |784234510|WE-CNSA Common Mode Line Filter, 1210, 7850Ω, 200mA|L1|1|Wurth Elektronik|784234510
280 |74438323100|WE-MAPI SMT Power Inductor, 2510, 10µH, 0.9A, 733mΩ|L2, L3|2|Wurth Elektronik|74438323100
281 |XAL7070-651MEB|General Purpose Inductor, 0.65uH, 20%, 3028|L901|1|Coilcraft|XAL7070-651MEB
282 |BSS123NH6327XTSA1|MOSFET N-CH 100V 0.19A SOT-23|Q201, Q202, Q803, Q804, Q905, Q906|6|Infineon|BSS123NH6327XTSA1
283 |BSS83PH6327XTSA1|SIPMOS Small-Signal Transistor, -0.33A, -60V, SOT-23|Q801, Q802|2|Infineon|BSS83PH6327XTSA1
284 |IAUCN04S7L028ATMA1|Mosfet, N-ch, 40V, 100A|Q901, Q902|2|Infineon|IAUCN04S7L028ATMA1
285 |BSC084P03NS3GATMA1|P-Channel OptiMOS P3, -30V VDS, -78.6A ID, PG-TDSON-8-1|Q903, Q904|2|Infineon|BSC084P03NS3GATMA1
286 |(( TBD ))|Generic Resistor, 350Ω, 0603|R104, R204, R304, R404, R504, R606, R704, R804, R904|9|(( TBD ))|
287 |(( TBD ))|Generic Resistor, 1KΩ, 0603|R205, R206, R807, R808, R913, R914|6|(( TBD ))|
288 |(( TBD ))|Generic Resistor, 10KΩ, 0603|R1, R207, R208, R805, R806, R809, R810, R811, R812, R911, R912, R915, R916|13|(( TBD ))|
289 |(( TBD ))|Generic Resistor, 1.6KΩ, 0603|R2|1|(( TBD ))|
290 |(( TBD ))|Generic Resistor, 2.2Ω, 0603|R3|1|(( TBD ))|
291 |(( TBD ))|Generic Resistor, 27KΩ, 0603|R4|1|(( TBD ))|
292 |(( TBD ))|Generic Resistor, 5.1KΩ, 0603|R5|1|(( TBD ))|
293 |WSLF25122L000FEA|Res Metal Strip 2512, 0.002Ω, 1%, 5W|R101, R201, R301, R401, R501, R601, R701, R801, R901|9|Vishay|WSLF25122L000FEA
294 |CR0603-FX-1002ELF|SMD Resistor, 10kΩ, ±1%, 100mW, 0603|R102, R105, R202, R302, R402, R502, R602, R702, R802, R902|10|Bourns|CR0603-FX-1002ELF
295 |CR0805-JW-472ELF|SMD Resistor, 4.7kΩ, ±5%, 125mW, 0805|R103, R203, R303, R403, R503, R603, R703, R803, R903|9|Bourns|CR0805-JW-472ELF
296 |CR0603-FX-1001ELF|RES SMD 1K Ohm, 1%, 1/10W, 0603|R106|1|Bourns|CR0603-FX-1001ELF
297 |CRCW060347K5FKEA|Res Thick Film 0603, 47.5KΩ, 1%, 1/10W|R905|1|Vishay|CRCW060347K5FKEA
298 |RC0603FR-13100KL|Chip Resistor, 100KΩ, ±1%, 0.1W, 0603|R906|1|Yageo Group|RC0603FR-13100KL
299 |AC0402FR-0712K1L|Res Thick Film 0402, 12.1KΩ, 1%, 1/16W|R907|1|Yageo Group|AC0402FR-0712K1L
300 |CRCW060340K2FKEA|Res Thick Film 0603, 40.2KΩ, 1%, 1/10W|R908|1|Vishay|CRCW060340K2FKEA
301 |CRCW06039K53FKEA|Res Thick Film 0603, 9.53KΩ, 1%, 1/10W|R909|1|Vishay|CRCW06039K53FKEA
302 |WSR33L000FEA|Res Metal Strip 4527, 0.003Ω, 1%, 3W|R910|1|Vishay|WSR33L000FEA
303 |STM32G431CBT6|MCU 32-bit ARM Cortex M4, 128KB Flash, 48-Pin LQFP|U1|1|STMicroelectronics|STM32G431CBT6
304 |NCV7344D13R2G|CAN FD Transceiver, ISO 11898-2, 5Mbps, SOIC-8|U2|1|onsemi|NCV7344D13R2G
305 |INA4180A4IPWR|26V Quad Channel Current Sense Amplifier, 14-TSSOP|U3, U4, U5|3|Texas Instruments|INA4180A4IPWR
306 |AP64060WU-7|DC-DC Synchronous Step Down, 4.5-40V to 0.8-26V, 0.6A, TSOT-26|U6|1|Diodes Inc.|AP64060WU-7
307 |AP2112K-3.3TRG1|Fixed Positive LDO, 3.3V, 0.4V Dropout, PDSO5|U7|1|Diodes Inc.|AP2112K-3.3TRG1
308 |LM5148RGYR|3.5-80V Current Mode Synchronous Buck Controller, 24-VQFN|U801|1|Texas Instruments|LM5148RGYR
309 |ASE-8.000MHz-E-T|Crystal Oscillator, 8MHz, 3.3V, 15pF, 4-Pin SMD|Y1|1|Abracon|ASE-8.000MHZ-E-T
310
311 = AR27 Concept =
312
313 This section describes the concept for AR27.
314
315 == Changes ==
316
317 * Connector
318 ** Change main connector
319 * Circuits
320 ** More dedicated supply circuits
321 ** Keep the same current sensing
322 ** Increase the signal LED resistor on the PCB (the LEDs were too bright)
323 * Microcontroller
324 ** Needs more inputs
325 * Digital signals
326 ** Increase the green signal LED resistor on the PCB (the LEDs were too bright)
327 * 12 V supply
328 ** Three separate 12 V supplies:
329 *** Pump 1
330 *** Pump 2
331 *** Inverter / other 12 V loads
332 * Autonomous
333 ** Supplied by ASMS
334 ** Potentially control ASSI
335 ** ASMS state detection
336
337 == Supply table ==
338
339 === Standard supply table ===
340
341 |= |=Voltage|=Shared supply|=Qty
342 |IPC|24V|Standalone|1
343 |Pumps|12V|Standalone|2
344 |Fans|24V|Standalone|
345 |HV box|24V|Standalone|
346 |Energy meter|12V|Inverter, energy meter|
347 |Inverter|12V|Inverter, energy meter|
348 |Accumulator|24V|Standalone|
349 |Brake light|24V|Buzzer, brake light|
350 |Buzzer|24V|Buzzer, brake light|
351 |Sensor module (rear)|24V|Sensor modules, telemetry|
352 |Sensor module (front)|24V|Sensor modules, telemetry|
353 |Tire temperature|12V|Telemetry, tire temperature|
354 |Telemetry|12V|Telemetry, tire temperature|
355 |Telemetry|24V|Sensor modules, telemetry|
356 |Dashboard|24V|Standalone|
357 |SDC|24V|Standalone|
358 |SDC monitor|24V|Dashboard, telemetry, SDC monitor|
359 |Internal circuitry|24V|Standalone|
360
361 === Autonomous supply table ===
362
363 |= |=Qty|=Current
364 |Steering motor|1|?
365 |ASB/ESB| |?
366 |ASSI|2|?
367 |RES|1|?
368
369 == Relevant rules ==
370
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