Changes for page 2. Installation and connection
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... ... @@ -1,1 +1,1 @@ 1 -2. Connection1 +2. Installation and connection - Parent
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... ... @@ -1,1 +1,1 @@ 1 - Additionalmodules.BMS Main 2\.1.WebHome1 +Battery management systems.BMS Main 2\.1.WebHome - Content
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... ... @@ -1,20 +1,49 @@ 1 -= Headers = 1 +(% data-numbered-headings-start="2" style="--numbered-headings-start: 1;font-size: 0px;color: rgba(0, 0, 0, 0.0);margin-bottom: 0px; margin-top: 0px;" %) 2 += Installation and connection = 2 2 4 +== Installation procedure == 5 + 6 +Overall and mounting dimensions of the BMS Main 2.1 are shown below. 7 + 8 +[[image:1732198397369-222.png||data-xwiki-image-style-alignment="center" height="393" width="556"]] 9 + 10 +|**Parameter**|**Value** 11 +|Overall dimensions (length × width × height), mm|120 × 120 × 32 12 +|Mounting dimensions (length × width), mm|114 × 114 13 +|Mounting holes|M3 14 + 15 +== Connection procedure == 16 + 17 +The mounting area of the BMS Main 2.1 must be protected from mechanical particles (dust, dirt, large objects) and water. The installation site must provide convenient access for subsequent connection to the device’s headers. 18 + 19 +1. Connect the charging and discharging contactors to the P6-P9 headers. 20 +1. Connect a current sensor to the P12 header according to its documentation. The positive current direction (indicated by an arrow on the sensor) corresponds to the battery charging. It is recommended to use a shielded cable to connect the current sensor, the shield should be grounded on the side of the current sensor. The cable should be positioned as far as possible from the high current circuits. If the current sensor has a reference voltage line, connect it to pin 4 of the P12 header. 21 +1. Connect the BMS Main 2.1 to the on-board CAN network. Observe the rules for connecting CAN devices. If the BMS Main 2.1 is the last device on a bus, close pins 1-2 on the P21 jumper, otherwise leave the jumper on pins 2-3. 22 +1. Connect a power supply to the P1 header. It is not recommended to power the BMS Main 2.1 from the battery only, since at a critical discharge of the battery, it is not possible to turn on the BMS and close the charging contactor. 23 + 24 +== Headers description == 25 + 3 3 The BMS Main 2.1 headers are shown in figure below. 4 4 5 -[[ The BMS Main 2.1 headers>>image:1731516393377-928.jpeg||height="430" width="428"]]28 +[[image:1731516393377-928.jpeg||alt="1731517946345-632.png" data-xwiki-image-style-alignment="center" height="417" width="451"]] 6 6 7 -== P1 – header for power supply == 30 +(% class="box warningmessage" %) 31 +((( 32 +**Attention!** 33 +All headers are shown from the device side! 34 +))) 8 8 9 - [[image:1731516593096-166.png||data-xwiki-image-style-alignment="center"height="93" width="49"]]36 +=== P1 – header for power supply === 10 10 38 +[[image:1732198827034-560.png||data-xwiki-image-style-alignment="center" height="78" width="41"]] 39 + 11 11 |**Pin**|**Name**|**Description** 12 12 |**1**|**GND**|Ground 13 13 |**2**|**V+**|Supply voltage 9-30V 14 14 15 -== P15 – header for BMS Logic == 44 +=== P15 – header for BMS Logic === 16 16 17 -[[image:1731 516577472-301.png||data-xwiki-image-style-alignment="center" height="90" width="83"]]46 +[[image:1732198890482-787.png||data-xwiki-image-style-alignment="center" height="77" width="71"]] 18 18 19 19 |**Pin**|**Name**|**Description** 20 20 |**1**|**RS485_A**|RS-485 line A for communication with BMS Logic ... ... @@ -22,9 +22,9 @@ 22 22 |**3**|**+5V**|Supply voltage for BMS Logic 23 23 |**4**|**GND**|Ground 24 24 25 -== 54 +=== P12 – header for current sensor === 26 26 27 -[[image:1731 516685999-633.png||data-xwiki-image-style-alignment="center" height="98" width="90"]]56 +[[image:1732198890482-787.png||data-xwiki-image-style-alignment="center" height="77" width="71"]] 28 28 29 29 |**Pin**|**Name**|**Description** 30 30 |**1**|**+5V**|Supply voltage for the current sensor 5V, max 50 mA ... ... @@ -32,6 +32,159 @@ 32 32 |**3**|**Vcs**|ADC input (current sensor output) 33 33 |**4**|**Vref**|ADC input (current sensor reference signal) 34 34 35 -P13 – header for humidity sensor 64 +=== P13 – header for humidity sensor === 36 36 66 +[[image:1732198896526-660.png||data-xwiki-image-style-alignment="center" height="70" width="64"]] 67 + 68 +|**Pin**|**Name**|**Description** 69 +|**1**|**+5V**|Supply voltage 5 V, max 50 mA 70 +|**2**|**GND**|Ground 71 +|**3**|**Vhs**|ADC input (humidity sensor output) 72 +|**4**|**Vts**|ADC input (temperature sensor output) 73 + 74 +=== P8 – header of relay 1 === 75 + 76 +[[image:1732198827034-560.png||data-xwiki-image-style-alignment="center" height="78" width="41"]] 77 + 78 +By default, relay 1 is used to control the discharging contactor. 79 + 80 +|**Pin**|**Name**|**Description** 81 +|**1**|**V+**|Switching voltage (up to 55V, max 2A) 82 +|**2**|**NO**|Normally open contact 83 + 84 +=== P9 – header of relay 2 === 85 + 86 +[[image:1732198827034-560.png||data-xwiki-image-style-alignment="center" height="78" width="41"]] 87 + 88 +By default, relay 2 is used to output the “Allow charging” signal. 89 + 90 +|**Pin**|**Name**|**Description** 91 +|**1**|**V+**|Switching voltage (up to 55V, max 2A) 92 +|**2**|**NO**|Normally open contact 93 + 94 +=== P6 – header of relay 3 === 95 + 96 +[[image:1732198827034-560.png||data-xwiki-image-style-alignment="center" height="78" width="41"]] 97 + 98 +By default, relay 3 is used to control the charging contactor. 99 + 100 +|**Pin**|**Name**|**Description** 101 +|**1**|**V+**|Switching voltage (up to 55V, max 8A) 102 +|**2**|**NO**|Normally open contact 103 + 104 +=== P7 – header of relay 4 === 105 + 106 +[[image:1732198827034-560.png||data-xwiki-image-style-alignment="center" height="78" width="41"]] 107 + 108 +By default, relay 4 is used to control the heater. 109 + 110 +|**Pin**|**Name**|**Description** 111 +|**1**|**V+**|Switching voltage (up to 55V, max 8A) 112 +|**2**|**NO**|Normally open contact 113 + 114 +=== P14 – header for CAN and RS-485 interfaces === 115 + 116 +[[image:1731517180930-597.png||data-xwiki-image-style-alignment="center" height="81" width="113"]] 117 + 118 +(% style="width:641px" %) 119 +|**Pin**|**Name**|**Description** 120 +|**1**|**EXT_RS485_A**|RS-485 line A for communication with external equipment 121 +|**2**|**CAN_H**|CAN H line for communication with external equipment 122 +|**3**|**+5V_CAN**|Supply voltage 5V for external devices, max 200 mA 123 +|**4**|**EXT_RS485_B**|RS-485 line B for communication with external equipment 124 +|**5**|**CAN_L**|CAN L line for communication with external equipment 125 +|**6**|**GND_CAN**|Ground 126 + 127 +=== P21 – CAN termination resistor jumper === 128 + 129 +[[image:1731517188900-976.png||data-xwiki-image-style-alignment="center" height="78" width="149"]] 130 + 131 +To connect the termination resistor between the lines **CAN_H** and **CAN_L**, install a jumper, according to the P21 pinout: 132 + 133 +|**Pin**|**Name**|**Description** 134 +|**1-2**|**120 Ohm**|Termination resistor 120 Ohm is connected 135 +|**2-3**|**-**|Termination resistor 120 Ohm is not connected 136 + 137 +=== P22 - RS-485 termination resistor jumper === 138 + 139 +[[image:1731517195672-298.png||data-xwiki-image-style-alignment="center" height="81" width="155"]] 140 + 141 +To connect the termination resistor between the **EXT_RS485_A** and **EXT_RS485_B** lines, install a jumper according to the P22 pinout: 142 + 143 +|**Pin**|**Name**|**Description** 144 +|**1-2**|**120 Ohm**|Terminating resistor 120 Ohm is connected 145 +|**2-3**|**-**|Terminating resistor 120 Ohm is not connected 146 + 147 +=== P11 – header for discrete inputs/outputs === 148 + 149 +[[image:1732198937514-731.png||data-xwiki-image-style-alignment="center" height="85" width="272"]] 150 + 151 +|**Pin**|**Name**|**Description** 152 +|**16**|**IN_1**|Discrete input #1 “dry contact” (+5V) 153 +|**8**|**GND_1**|Discrete input #1 “dry contact” (ground) 154 +|**15**|**IN_2**|Discrete input #2 “dry contact” (+5V) 155 +|**7**|**GND_2**|Discrete input #2 “dry contact” (ground) 156 +|**14**|**IN_3**|Discrete input #3 “dry contact” (+5V) 157 +|**6**|**GND_3**|Discrete input #3 “dry contact” (ground) 158 +|**13**|**IN_4**|Discrete input #4 “dry contact” (+5V) 159 +|**5**|**GND_4**|Discrete input #4 “dry contact” (ground) 160 +|**12**|**OUT_4**|Discrete output #4 (+5V, 20mA) 161 +|**4**|**GND_OUT_4**|Discrete output #4 (ground) 162 +|**11**|**OUT_3**|Discrete output #3 (+5V, 20mA) 163 +|**3**|**GND_OUT_3**|Discrete output #3 (ground) 164 +|**10**|**OUT_2**|Discrete output #2 (+5V, 20mA) 165 +|**2**|**GND_OUT_2**|Discrete output #2 (ground) 166 +|**9**|**OUT_1**|Discrete output #1 (+5V, 20mA) 167 +|**1**|**GND_OUT_1**|Discrete output #1 (ground) 168 + 169 +== Indicators == 170 + 171 +=== DS1 – power indicator === 172 + 173 +|**State**|**Description** 174 +|**Lights red**|The device is powered 175 +|**Off**|The device is not powered 176 + 177 +=== DS2 – operation indicator === 178 + 179 +|**State**|**Description** 180 +|**Blinking green**|The BMS firmware is running 181 +|**Off**|The BMS firmware is not running 182 + 183 +=== DS3 – communication indicator === 184 + 185 +|**State**|**Description** 186 +|**Blinking yellow (2Hz)**|Initializing communication with BMS Logic boards 187 +|**Blinking yellow (25Hz)**|Communication with BMS Logic is established 188 + 189 +=== DS4 – error indicator === 190 + 191 + 192 +|(**State**|**Description** 193 +|(**Blinking red**|Errors in communication with BMS Logic 194 + 195 +=== DS7 – relay 1 indicator === 196 + 197 +|**State**|**Description** 198 +|**Lights green**|Relay #1 is closed 199 +|**Off**|Relay #1 is opened 200 + 201 +=== DS8 – relay 2 indicator === 202 + 203 +|**State**|**Description** 204 +|**Lights green**|Relay #2 is closed 205 +|**Off**|Relay #2 is opened 206 + 207 +=== DS5 – relay 3 indicator === 208 + 209 +|**State**|**Description** 210 +|**Lights green**|Relay #3 is closed 211 +|**Off**|Relay #3 is opened 212 + 213 +=== DS6 – relay 4 indicator === 214 + 215 +|**State**|**Description** 216 +|**Lights green**|Relay #4 is closed 217 +|**Off**|Relay #4 is opened 218 + 37 37
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