R5486K NISSHINBO | Alldatasheet
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Li-Ion/Li-Polymer 1-Cell Protector NO. EA-339-231108 OUTLINE The R5486 K is a n overcharge protection IC for Lithium -ion (Li+)/Lithium polymer secondary battery. This device can detect over-charge, over-discharge, excess discharge and excess charge current of one-cell Li-ion (Li+)/Li-ion polymer battery. T he external resistor added to the RSENS pin can enhance a high precision overcurrent detection. The excess discharge current detection has two stages of detections to ensure the detection accuracy. The current consumption after the over-discharge detection is suppressed by stopping the internal circuits.
FEATURES
Detector Thresholds Accuracy ±3.1 mV (VDET31 < 0.038 V) (Note1) ±3.1 mV (VDET32 < 0.038 V) (Note2) ±3 mV (VDET4 > −0.02 V) (Note3) (Note1) VDET31 Setting Range Accuracy 0.015 V to 0.037 V ±3.1 mV Equivalent Range: ±8.4% (VDET31 = 0.037 V) to ±20.6% (VDET31 = 0.015 V) (Note2) VDET32 Setting Range Accuracy 0.025 V to 0.037 V ±3.1 mV Equivalent Range: ±8.4% (VDET32 = 0.037 V) to ±12.4% (VDET32 = 0.025 V) (Note3) VDET4 Setting Range Accuracy −0.019 V to −0.015 V ±3.0 mV Equivalent Range: ±15.8% (VDET4 = −0.019 V) to ±20% (VDET4 = −0.015 V)
NO. EA-339-231108 Detector Thresholds Range Detector Thresholds Range (R5486KxxxCG) (Note4) VDET31 Setting Range VDET32 Setting Range VDET31 ≤ 0.030 V VDET32 ≥ VDET31 + 0.015 V 0.031 V ≤ VDET31 ≤ 0.035 VDET32 ≥ 0.051 V VDET31 ≥ 0.036 V VDET32 ≥ VDET31 + 0.015 V Detector Thresholds Range (R5486KxxxCM) Output Delay Time
- Over-charge Detector Output Delay (tVDET1)……………………………1.0 s
- Over-discharge Detector Output Delay (tVDET2)………………………...20 ms
- Excess Discharge Current Detector Output Delay 2 (tVDET32)………...12 ms
- Excess Charge Current Detector Output Delay (tVDET4)……………….16 ms Output Delay Time (R5486KxxxCG)
- Excess Discharge Current Detector Output Delay 1 …………………..selectable from 3 s, 4 s or 5 s Functions −2.0 V, the output Delay time of detect the over-charge and over-discharge can be reduced. (Delay Time for over-charge becomes about 1/100 of normal state.)
NO. EA-339-231108
APPLICATIONS
- Li+/Li Polymer Protector of Over-charge, Over-discharge, Excess-current for Battery Pack
- High Precision Protectors for Smartphones and Electronic Gadgets using On-board Li+/Li Polymer Battery SELECTION GUIDE The input threshold of over-charge, over-discharge and excess discharge current are user-selectable options. Selection Guide Product Name Package Quantity per Reel Pb Free Halogen Free R5486Kxxx$∗-TR DFN(PL)1414-6 5,000 pcs Yes Yes xxx: Set Output Voltage Code Refer to R5486K Code List. $: Delay Time Version Version tVDET1 (s) tVDET2 (ms) tVDET32 (ms) tVDET4 (ms) tSHORT (μs) C 1 20 12 16 250 ∗: Function Version Version Return from Over-Charge Return from Over-Discharge VDET31 0-V Charge G Latch-type Latch-type Enable NG M Latch-type Latch-type Disable NG
NO. EA-339-231108 Product Code List R5486KxxxCG Code List Code Set Voltage [V] DelayTime[s] VDET1 VDET2 VDET31 VDET32 VDET4 VSHORT VNOCHG tVDET31 R5486KxxxCG: R5486KxxxCM:
NO. EA-339-231108 R5486KxxxCM Code List (Continued) Code Set Voltage [V] DelayTime[s] VDET1 VDET2 VDET31 VDET32 VDET4 VSHORT VNOCHG tVDET31
NO. EA-339-231108 BLOCK DIAGRAMS Short Detector Oscillator VD1 Level Shift VD3-1 Counter Logic Circuit Delay Logic Circuit DS Circuit VD4 VD2 VD3-2 RSENS VSS DOUT COUT V- VDD R5486KxxxCG Block Diagram R5486KxxxCM Block Diagram Short Detector Oscillator VD1 Level Shift Counter Logic Circuit Delay Logic Circuit DS Circuit VD4 VD2 VD3 RSENS VSS DOUT COUT V- VDD
NO. EA-339-231108 PIN DESCRIPTION ∗ The tab on the bottom of the package shown by blue circle is no connection. R5486K Pin Description Pin No. Symbol Description 1 VSS VSS pin. Ground pin for the IC 2 VDD Power supply pin, the substrate voltage level of the IC.
3 RSENS Input of overcurrent detection
4 V− Pin for charger negative input
5 COUT Output of over-charge detection, CMOS output
6 DOUT Output of over-discharge detection, CMOS output
R5486K (DFN(PL)1414-6) Pin Configuration
NO. EA-339-231108 ABSOLUTE MAXIMUM RATINGS Absolute Maximum Ratings ( Ta = 25°C, VSS = 0 V) Symbol Parameter Rating Unit VDD Supply Voltage −0.3 to 12 V V− V− Pin Input Voltage VDD −30 to VDD +0.3 V VRSENS RSENS Pin Input Voltage VSS −0.3 to VDD +0.3 V VCOUT COUT Pin Output Voltage VDD −30 to VDD +0.3 V VDOUT DOUT Pin Output Voltage VSS −0.3 to VDD +0.3 V PD Power Dissipation 150 mW Tj Junction Temperature Range −40 to 125 °C Tstg Storage Temperature Range −55 to 125 °C ABSOLUTE MAXIMUM RATINGS Electronic and mechanical stress momentarily exceeded absolute maximum ratings may cause permanent damage and may degrade the lifetime and safety for both device and system using the device in the field. The functional operation at or over these absolute maximum ratings is not assured. RECOMMENDED OPERATING CONDITIONS Recommended Operating Conditions Symbol Parameter Rating Unit VDD1 Operating Input Voltage 1.5 to 5.0 V Ta Operating Temperature Range −40 to 85 °C RECOMMENDED OPERATING CONDITIONS All of electronic equipment should be designed that the mounted semiconductor devices operate within the recommended operating conditions. The semiconductor devices cannot operate normally over the recommended operating conditions, even if they are used over such conditions by momentary electronic noise or surge. And the semiconductor devices may receive serious damage when they continue to operate over the recommended operating conditions.
NO. EA-339-231108
ELECTRICAL CHARACTERISTICS
Symbol Parameter Conditions Min. Typ. Max. Unit VNOCHG Maximum Operating Voltage for Inhibition of Charger Voltage Defined as VDD‒VSS, VDD − V− = 4 V VNOCHG −0.3 VNOCHG VNOCHG +0.3 V VDET1 Over-charge Threshold Voltage R1 = 330 Ω VDET1 ≤ 4.5V VDET1 −0.020 VDET1 VDET1 +0.020 V VDET1 > 4.5V VDET1 −0.025 VDET1 +0.025 tVREL1 Release Delay for VD1 VDD = 3.9 V, V− = 0 V → 1 V 11 16 21 ms VDET2 Over-discharge Threshold Detect falling edge of supply voltage VDET2 −0.035 VDET2 VDET2 +0.035 V tVDET2 Output Delay of Over-discharge VDD = VDET2 + 0.13 V → VDET2 − 0.08 V 14 20 26 ms VDET31 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage VDET31 < 0.038 V VDET31 −0.0031 VDET31 VDET31 +0.0031 V VDET31 ≥ 0.038 V VDET31 ×0.92 VDET31 VDET31 ×1.08 V tVDET31 Output Delay of Excess Discharge-current 1 VDD = 3.0 V, VRSENS = 0 V to VDET31 x 1.18 V− = VRSENS tVDET31 ×0.7 tVDET31 tVDET31 ×1.3 s VDET32 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage, V− = 0 V VDET32 < 0.038 V VDET32 −0.0031 VDET32 VDET32 +0.0031 V VDET32 ≥ 0.038 V VDET32 ×0.92 VDET32 VDET32 ×1.08 V tVDET32 Output Delay of Excess Discharge-current 2 VDD = 3.0 V, VRSENS = 0 V to 0.1 V, V− = VRSENS 8 12 16 ms tVREL3 Output Delay of Release from Excess Discharge-current VDD = 3.1 V, V− = 3.1 V to 0 V V− = VRSENS 0.7 1.2 1.7 ms VSHORT Short Protection Voltage VDD = 3.1 V, VRSENS = V− VSHORT −0.045 VSHORT VSHORT +0.045 V tSHORT Delay Time for Short Protection (1) VDD = 3.1 V, VRSENS = 0 V to 3.1 V, V− = VRSENS 180 250 425 µs RSHORT Reset Resistance for Excess Current Protection VDD = 3.6 V, V− = 1.0 V 20 45 70 kΩ VDET4 Excess Charge-current Threshold Detect falling edge of RSENS pin voltage, V− = 0 V VDET4 > −0.02 V VDET4 −0.003 VDET4 VDET4 +0.003 V VDET4 ≤ −0.02 V VDET4 ×1.15 VDET4 VDET4 ×0.85 V (1) Output Delay Time for Release from Short Protection is the same value as tVREL3.
NO. EA-339-231108 Symbol Parameter Conditions Min. Typ. Max. Unit tVDET4 Output Delay of Excess Charge-current VDD = 3.1 V, VRSENS = 0 V to −0.5 V, V− = VRSENS 11 16 21 ms tVREL4 Output Delay of Release from Excess Charge-current VDD = 3.1 V, V− = −0.5 V to 0 V, V− = VRSENS 0.7 1.2 1.7 ms VDS Delay Time Shortening Mode Voltage VDD = 3.6 V −2.6 −2.0 −1.4 V VOL1 Nch ON-Voltage of COUT Iol = 50 µA, VDD = 4.55 V 0.4 0.5 V VOH1 Pch ON-Voltage of COUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V VOL2 Nch ON-Voltage of DOUT Iol = 50 µA, VDD = 1.9 V 0.2 0.5 V VOH2 Pch ON-Voltage of DOUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V IDD Supply Current VDD = 3.9 V, V− = 0 V 4.0 8.0 µA Istandby Standby Current VDD = 2.0 V 0.1 µA
NO. EA-339-231108 All of these specifications are guaranteed by design, not tested in mass production. Symbol Parameter Conditions Min. Typ. Max. Unit VNOCHG Maximum Operating Voltage for Inhibition of Charger Voltage Defined as VDD‒ VSS, VDD − V− = 4 V VNOCHG −0.43 VNOCHG VNOCHG +0.4 V VDET1 Over-charge Threshold Voltage R1 = 330 Ω VDET1 ≤ 4.5V VDET1 −0.025 VDET1 VDET1 +0.025 V VDET1 > 4.5V VDET1 −0.030 VDET1 +0.030 tVREL1 Release Delay for VD1 VDD = 3.9 V, V− = 0 V → 1 V 10.2 16 24.4 ms VDET2 Over-discharge Threshold Detect falling edge of supply voltage VDET2 −0.040 VDET2 VDET2 +0.040 V tVDET2 Output Delay of Over-discharge VDD = VDET2 + 0.13 V → VDET2 − 0.08 V 13.1 20 30 ms VDET31 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage VDET31 < 0.038 V VDET31 −0.0042 VDET31 VDET31 +0.0042 V VDET31 ≥ 0.038 V VDET31 ×0.89 VDET31 VDET31 ×1.11 V tVDET31 Output Delay of Excess Discharge-current 1 VDD = 3.0 V, VRSENS = 0 V to VDET31 x 1.18 V− = VRSENS tVDET31 ×0.66 tVDET31 tVDET31 ×1.47 s VDET32 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage, V− = 0 V VDET32 < 0.038 V VDET32 −0.0042 VDET32 VDET32 +0.0042 V VDET32 ≥ 0.038 V VDET32 ×0.89 VDET32 VDET32 ×1.11 V tVDET32 Output Delay of Excess Discharge-current 2 VDD = 3.0 V, VRSENS = 0 V to 0.1 V, V− = VRSENS 7.4 12 18.5 ms tVREL3 Output Delay of Release from Excess Discharge-current VDD = 3.1 V, V− = 3.1 V to 0 V V− = VRSENS 0.65 1.2 1.9 ms VSHORT Short Protection Voltage VDD = 3.1 V, VRSENS = V− VSHORT −0.050 VSHORT VSHORT +0.050 V tSHORT Delay Time for Short Protection (1) VDD = 3.1 V, VRSENS = 0 V to 3.1 V, V− = VRSENS 160 250 490 µs RSHORT Reset Resistance for Excess Current Protection VDD = 3.6 V, V− = 1.0 V 17.1 45 71 kΩ VDET4 Excess Charge-current Threshold Detect falling edge of RSENS pin voltage, V− = 0 V VDET4 > −0.02 V VDET4 −0.0040 VDET4 VDET4 +0.0040 V VDET4 ≤ −0.02 V VDET4 ×1.17 VDET4 VDET4 ×0.83 V (1) Output Delay Time for Release from Short Protection is the same value as tVREL3.
NO. EA-339-231108 Symbol Parameter Conditions Min. Typ. Max. Unit tVDET4 Output Delay of Excess Charge-current VDD = 3.1 V, VRSENS = 0 V to −0.5 V, V− = VRSENS 10.7 16 23.6 ms tVREL4 Output Delay of Release from Excess Charge-current VDD = 3.1 V, V− = −0.5 V to 0 V, V− = VRSENS 0.65 1.2 1.93 ms VDS Delay Time Shortening Mode Voltage VDD = 3.6 V −2.7 −2.0 −1.2 V VOL1 Nch ON-Voltage of COUT Iol = 50 µA, VDD = 4.55 V 0.4 0.5 V VOH1 Pch ON-Voltage of COUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V VOL2 Nch ON-Voltage of DOUT Iol = 50 µA, VDD = 1.9 V 0.2 0.5 V VOH2 Pch ON-Voltage of DOUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V IDD Supply Current VDD = 3.9 V, V− = 0 V 4.0 8.7 µA Istandby Standby Current VDD = 2.0 V 0.12 µA
NO. EA-339-231108 All of these specifications are guaranteed by design, not tested in mass production. (1) Output Delay Time for Release from Short Protection is the same value as tVREL3. Symbol Parameter Conditions Min. Typ. Max. Unit VNOCHG Maximum Operating Voltage for Inhibition of Charger Voltage Defined as VDD‒VSS, VDD − V− = 4 V VNOCHG −0.423 VNOCHG VNOCHG +0.44 V VDET1 Over-charge Threshold Voltage R1 = 330 Ω VDET1 ≤ 4.5V VDET1 −0.033 VDET1 VDET1 +0.031 V VDET1 > 4.5V VDET1 −0.038 VDET1 +0.036 tVREL1 Release Delay for VD1 VDD = 3.9 V, V− = 0 V → 1 V 10.2 16 26.0 ms VDET2 Over-discharge Threshold Detect falling edge of supply voltage VDET2 −0.043 VDET2 VDET2 +0.040 V tVDET2 Output Delay of Over- discharge VDD = VDET2 + 0.13 V → VDET2 − 0.08 V 13.1 20 31.8 ms VDET31 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage VDET31 < 0.038 V VDET31 −0.0042 VDET31 VDET31 +0.0042 V VDET31 ≥ 0.038 V VDET31 ×0.89 VDET31 VDET31 ×1.11 V tVDET31 Output Delay of Excess Discharge-current 1 VDD = 3.0 V, VRSENS = 0 V to VDET31 x 1.18 V− = VRSENS tVDET31 ×0.66 tVDET31 tVDET31 ×1.57 s VDET32 Excess Discharge-current Threshold Detect rising edge of RSENS pin voltage, V− = 0 V VDET32 < 0.038 V VDET32 −0.0042 VDET32 VDET32 +0.0042 V VDET32 ≥ 0.038 V VDET32 ×0.89 VDET32 VDET32 ×1.11 V tVDET32 Output Delay of Excess Discharge-current 2 VDD = 3.0 V, VRSENS = 0 V to 0.1 V, V− = VRSENS 7.4 12 19.7 ms tVREL3 Output Delay of Release from Excess Discharge-current VDD = 3.1 V, V− = 3.1 V to 0 V V− = VRSENS 0.65 1.2 2.0 ms VSHORT Short Protection Voltage VDD = 3.1 V, VRSENS = V− VSHORT −0.050 VSHORT VSHORT +0.050 V tSHORT Delay Time for Short Protection (1) VDD = 3.1 V, VRSENS = 0 V to 3.1 V, V− = VRSENS 160 250 495 µs RSHORT Reset Resistance for Excess Current Protection VDD = 3.6 V, V− = 1.0 V 14.4 45 71 kΩ VDET4 Excess Charge-current Threshold Detect falling edge of RSENS pin voltage, V− = 0 V VDET4 > −0.02 V VDET4 −0.0041 VDET4 VDET4 +0.0042 V VDET4 ≤ −0.02 V VDET4 ×1.17 VDET4 VDET4 ×0.83 V
NO. EA-339-231108 Symbol Parameter Conditions Min. Typ. Max. Unit tVDET4 Output Delay of Excess Charge-current VDD = 3.1 V, VRSENS = 0 V to −0.5 V, V− = VRSENS 10.7 16 28.3 ms tVREL4 Output Delay of Release from Excess Charge-current VDD = 3.1 V, V− = −0.5 V to 0 V, V− = VRSENS 0.65 1.2 2.04 ms VDS Delay Time Shortening Mode Voltage VDD = 3.6 V −2.7 −2.0 −1.2 V VOL1 Nch ON-Voltage of COUT Iol = 50 µA, VDD = 4.55 V 0.4 0.5 V VOH1 Pch ON-Voltage of COUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V VOL2 Nch ON-Voltage of DOUT Iol = 50 µA, VDD = 1.9 V 0.2 0.5 V VOH2 Pch ON-Voltage of DOUT Ioh = −50 µA, VDD = 3.9 V 3.4 3.7 V IDD Supply Current VDD = 3.9 V, V− = 0 V 4.0 9.08 µA Istandby Standby Current VDD = 2.0 V 0.12 µA
NO. EA-339-231108
APPLICATION INFORMATION
0.1µF 1kΩ 330Ω R5486K RSENS 10mΩ R5486K Typical Application Circuit
- R1 and C1 stabilize a supply voltage to the R5486K. A recommended R1 value is equal or less than 1 kΩ. A large value of R1 makes detection voltage shift higher because of the conduction current flowed in the R5486K. Further, to stabilize the operation of R5486K, use the C1 with the value of 0.01 µF or more.
- R1 and R2 can operate also as parts for current limit circuit against reverse charge or applying a charger with excess charging voltage to the R5486K, battery pack. W hile small value of R1 and R2 may cause over the power dissipation rating of the R5486K, therefore a total of “R1+R2” should be 1 k Ω or more. Besides, if a large value of R2 is set, release from over -discharge by connecting a charger might not be possible. Recommended R2 value is equal or less than 10 kΩ.
- R3 is a resistor for sensing an excess current. If the resistance value is too large, power loss becomes also large. By the excess current, if the R3 is not appropriate, the power loss may be beyond the power dissipation of R3. Choose an appropriate R3 according to the cell specification.
- The typical application circuit diagram is just an example. This circuit performance largely depends on the PCB layout and external components. In the actual application, fully evaluation is necessary.
- Over-voltage and the over current beyond the absolute maximum rating should not be forced to the protection IC and external components. Although the short protection circuit is built in the IC, if the positive terminal and the negative terminal of the battery pack are short, during the delay time of short limit detector, large current flows through the FET. Select an appropriate FET with large enough current capacity to prevent the IC from burning damage.
NO. EA-339-231108 Sense resistance and on-resistance of the MOSFET selection guideline Short mode is detected by the current base or the relation between V DD at short and total on- resistance of external MOSFETs for COUT and DOUT. If short must be detected by the current base determined by V SHORT and R3, the next formula must be true, otherwise, the short current limit becomes (VDD – 0.9) / (R3 + RSS (on)) 𝑉𝑉𝐷𝐷𝐷𝐷 − 0.9 𝑅𝑅3 + 𝑅𝑅𝑆𝑆𝑆𝑆 (𝑜𝑜𝑜𝑜) ≥ 𝑉𝑉𝑆𝑆𝑆𝑆𝑆𝑆𝑆𝑆𝑆𝑆 𝑅𝑅3 V SHORT = Short Protection Voltage (V) R3 = External Current Sense Resistance (Ω) RSS (on) = External MOSFETs’ Total On-Resistance (Ω) VDD = VDD level at short mode. If VDD goes down by the short current, the lowest level is VDD. Ex. 1 As the RSENSE, in case that the 5 m Ω is selected as R3 and if the V DD becomes 3.0 V, to detect short at 36 A with VSHORT = 0.18 V, the RSS (on) must be 53 mΩ or lower. Ex. 2 As the R SENSE, in case the 10 mΩ is selected as R3 and if the VDD becomes 3.0 V, to detect short at 18 A with VSHORT = 0.18 V, the RSS (on) must be 106 mΩ or lower. If the RSS (on) value is higher than the value calculated by this formula, the short current limit will be less than the desired value.
NO. EA-339-231108 TECHNICAL NOTES A peripheral component or the device mounted on PCB should not exceed a rated voltage, a rated current or a rated power. When designing a peripheral circuit, please be fully aware of the following points.
- Please evaluate the product at the PCB level before use, as some symptoms may remain that cannot be confirmed by the evaluation at the IC level.
- When using any coating or underfill to improve moisture resistance or joining strength, evaluate them adequately before using. In certain materials or coating conditions, corrosion by contained constituents, current leakage by moisture absorption, crack and delamination by physical stress can happen. If the curing temperature of the coating material or underfill material exceeds the absolute maximum rating, the electrical characteristics of this product may change.
- When performing X -ray inspection in mass production process and evaluation build stage such as the product functions and characteristics confirmation, please confirm X -ray irradiation does not exceed 1.5Gy (absorbed dose for air).
PACKAGE DIMENSIONS DFN(PL)1414-6 Ver. A i DFN(PL)1414-6 Package Dimensions ∗ The tab on the bottom of the package shown by blue circle is No Connection.
Ver. G i : Product Code … Refer to Part Marking List : Lot Number … Alphanumeric Serial Number R5486K [DFN(PL)1414-6] Part Marking NOTICE There can be variation in the marking when different AOI (Automated Optical Inspection) equipment is used. In the case of recognizing the marking characteristic with AOI, please contact our sales or distributor before attempting to use AOI.
Ver. G ii R5486K Part Marking List Product Name Product Name Product Name R5486K101CG F0 R5486K524CM K1 R5486K102CG F1 R5486K115CG K2 R5486K501CM F2 R5486K525CM K3 R5486K502CM F3 R5486K526CM K4 R5486K503CM F4 R5486K527CM K5 R5486K504CM F5 R5486K528CM K6 R5486K506CM F6 R5486K529CM K7 R5486K103CG F7 R5486K530CM K8 R5486K104CG F8 R5486K116CG K9 R5486K505CM F9 R5486K117CG L0 R5486K507CM G1 R5486K118CG L1 R5486K508CM G2 R5486K119CG L2 R5486K509CM G3 R5486K531CM L3 R5486K510CM G4 R5486K532CM L4 R5486K511CM G5 R5486K533CM L5 R5486K512CM G6 R5486K534CM L6 R5486K513CM G7 R5486K120CG L7 R5486K514CM G8 R5486K121CG L8 R5486K515CM G9 R5486K536CM L9 R5486K516CM H1 R5486K537CM M0 R5486K105CG H2 R5486K538CM M1 R5486K106CG H3 R5486K539CM M2 R5486K107CG H4 R5486K122CG M3 R5486K517CM H5 R5486K123CG M4 R5486K518CM H6 R5486K540CM M5 R5486K519CM H7 R5486K541CM M6 R5486K108CG H8 R5486K542CM M7 R5486K109CG H9 R5486K544CM M8 R5486K520CM J1 R5486K545CM M9 R5486K110CG J2 R5486K546CM N0 R5486K521CM J3 R5486K547CM N1 R5486K111CG J4 R5486K522CM J5 R5486K112CG J6 R5486K523CM J7 R5486K113CG J8 R5486K114CG J9
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