A1183LUA-T ALLEGRO | Alldatasheet

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A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000

115 Northeast Cutoff, Box 15036

www.allegromicro.com Allegro MicroSystems, Inc. AB SO LUTE MAX I MUM RAT INGS Operating Temperature Ambient, T On-chip protection y Supply transient protection y Reverse-battery protection y On-board voltage regulator y 3.5 V to 24 V operation Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall-Effect Switches Package LH, 3-pin SOT Features and Benefi ts 1. VCC 2. No connection 3. GND NC 1 2 1 2 3 1. VCC 2. GND 3. GND Package UA, 3-pin SIP Chopper stabilization y Low switchpoint drift over operating temperature range y Low stress sensitivity Field-programmable for optimized switchpoints The A1180, A1181, A1182, and A1183 devices are sensitive, two-wire, unipolar, Hall effect switches. The operate point, BOP, can be fi eld-programmed, after fi nal packaging of the sensor and placement into the application. This advanced feature allows the optimization of the sensor switching performance, by effectively accounting for variations caused by mounting tolerances for the device and the target magnet. This family of devices are produced on the Allegro MicroSystems advanced BiCMOS wafer fabrication process, which implements a patented, high-frequency, chopper-stabilization technique that achieves magnetic stability and eliminates the offsets that are inherent in single-element devices exposed to harsh applica- tion environments. Commonly found in a number of automotive applications, the A1180-83 family of devices are utilized to sense: seat track position, seat belt buckle presence, hood/trunk latching, and shift selector position. Two-wire unipolar switches are particularly advantageous in price-sensitive appli- cations, because they require one less wire than the more traditional open-collec- tor output switches. Additionally, the system designer gains inherent diagnostics because output current normally fl ows in either of two narrowly-specifi ed ranges. Any output current level outside of these two ranges is a fault condition. The A1180-83 family of devices also features on-chip transient protection, and a Zener clamp to protect against overvoltage conditions on the supply line. The output currents of the A1181 and A1183 switch HIGH in the presence of a south polarity magnetic fi eld of suffi cient strength; and switch LOW otherwise, including when there is no signifi cant magnetic fi eld present. The A1180 and A1182 have inverted output current levels: switching LOW in the presence of a south polarity magnetic fi eld of suffi cient strength, and HIGH otherwise. The devices also differ in their specifi ed LOW current supply levels. Both devices are offered in two package styles: LH, a SOT-23W miniature low- profi le package for surface-mount applications, and UA, a three-lead ultramini Single Inline Package (SIP) for through-hole mounting. Each package is available in a lead (Pb) free version (suffi x, –T) with 100% matte tin plated leadframe. Factory-programmed versions are also available. Refer to: A1140, A1141, A1142, A1143, A1145, and A1146.

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Product Selection Guide Part Number Pb- free Packing1 Mounting Ambient, TA (°C) Output South (+) Field2 Supply Current at Low Output, ICC(L) (mA) A1180ELHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 85 Low 2 to 5 A1180ELHLT-T Yes A1180EUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1180EUA-T Yes A1180LLHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 150 A1180LLHLT-T Yes A1180LUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1180LUA-T Yes A1181ELHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 85 High A1181ELHLT-T Yes A1181EUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1181EUA-T Yes A1181LLHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 150 A1181LLHLT-T Yes A1181LUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1181LUA-T Yes A1182ELHLT3 – 7-in. reel, 3000 pieces/reel Surface mount –40 to 85 Low 5 to 6.9 A1182ELHLT-T Yes A1182EUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1182EUA-T Yes A1182LLHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 150 A1182LLHLT-T Yes A1182LUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1182LUA-T Yes A1183ELHLT3 – 7-in. reel, 3000 pieces/reel Surface mount –40 to 85 High A1183ELHLT-T Yes A1183EUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1183EUA-T Yes A1183LLHLT – 7-in. reel, 3000 pieces/reel Surface mount –40 to 150 A1183LLHLT-T Yes A1183LUA – Bulk, 500 pieces/bag 4-pin SIP through hole A1183LUA-T Yes 1Contact Allegro for additional packing options. 2South (+) magnetic fields must be of sufficient strength. 3These variants are in production but have been determined to be NOT FOR NEW DESIGN. This classification indicates that sale of this device is cur- rently restricted to existing customer applications. The device should not be purchased for new design applications because obsolescence in the near future is probable. Samples are no longer available. Status date change May 2, 2005.

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Functional Block Diagram Amp Regulator Program/Lock Low-Pass Filter GND VCC GND Programming Logic Package UA Only 0.01 uF Offset Clock/Logic Dynamic Offset Cancellation Sample and Hold

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 MAGNETIC CHARACTERISTICS1 over the operating voltage and temperature range, unless otherwise specifi ed Characteristic Symbol Test Conditions Min. Typ. Max. Units Programmable Operate Point Range B OPrange ICC = ICC(H) for A1180 and A1182 ICC = ICC(L) for A1181 and A1183 60 – 200 G Initial Operate Point Range B OPinit VCC = 12 V – 33 60 G Switchpoint Step Size2 BRES VCC = 5 V, TA = 25°C 4 8 12 G Number of Programming Bits – Switchpoint setting – 5 – Bit Programming locking – 1 – Bit Temperature Drift of BOP ΔBOP – – ±20 G Hysteresis B HYS BHYS = BOP – BRP 51 5 3 0G 1Relative values of B use the algebraic convention, where positive values indicate south magnetic polarity, and negative values indicate north magnetic polarity; therefore greater B values indicate a stronger south polarity fi eld (or a weaker north polarity fi eld, if present). 2The range of values specifi ed for BRES is a maximum, derived from the cumulative programming bit errors. ELECTRICAL CHARACTERISTICS over the operating voltage and temperature range, unless otherwise specifi ed Characteristic Symbol Test Conditions Min. Typ. Max. Units Supply Voltage1 VCC Device powered on 3.5 – 24 V Supply Current2 ICC(L) B >BOP for A1180; B <BRP for A1181 2 – 5 mA B >BOP for A1182; B <BRP for A1183 5 – 6.9 mA ICC(H) B >BOP for A1181, A1183 B <BRP for A1180, A1182 12 – 17 mA Supply Zener Clamp Voltage V Z(supply) ICC = ICC(L)(max) + 3 mA; TA = 25°C 28 – 40 V Supply Zener Clamp Current I Z(supply) VZ(supply) = 28 V – – ICC(L)(max) + 3 mA mA Reverse Supply Current I RCC VRCC = –18 V – – –1.6 mA Output Slew Rate3 di/dt No bypass capacitor; capacitance of the oscilloscope performing the measurement = 20 pF – 36 – mA/ μs Chopping Frequency f C – 200 – kHz Power-On Time4 ton After factory trimming; with and without bypass capacitor (CBYP = 0.01 μF) –– 2 5 μs Power-On State5,6 POS t on ≤ ton(max); VCC slew rate ≥ 25 mV/μs – HIGH – – 1VCC represents the generated voltage between the VCC pin and the GND pin. 2Relative values of B use the algebraic convention, where positive values indicate south magnetic polarity, and negative values indicate north magnetic polarity; therefore greater B values indicate a stronger south polarity fi eld (or a weaker north polarity fi eld, if present). 3Measured without bypass capacitor between VCC and GND. Use of a bypass capacitor results in slower current change. 4Measured with and without bypass capacitor of 0.01 μF. Adding a larger bypass capacitor causes longer Power-On Time. 5POS is defi ned as true only with a V CC slew rate of 25 mV / μs or greater. Operation with a V CC slew rate less than 25 mV / μs can permanently harm device performance. 6POS is undefi ned for t > ton or BRP < B < BOP .

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Characteristic Data -50 0 50 100 150 200 -50 0 50 100 150 200 -50 0 50 100 150 200 -50 0 50 100 150 200 -50 0 50 100 150 200 ICC(L) versus Ambient Temperature at Various Levels of VCC (A1180, A1181) Hysteresis versus Ambient Temperature at Various Levels of VCC (A1180, A1181, A1182, A1183) ICC(H) versus Ambient Temperature at Various Levels of VCC (A1180, A1181, A1182, A1183) Ambient Temperature, TA (°C) Ambient Temperature, TA (°C) Ambient Temperature, TA (°C) Ambient Temperature, T A (°C) ICC(H) (mA) ICC(L) (mA)Average BOP (G) BHYS (G) VCC (V) 3.5 VCC (V) 3.5 VCC (V) 3.5 ICC(L) versus Ambient Temperature at Various Levels of VCC (A1182, A1183) Ambient Temperature, TA (°C) ICC(L) (mA) VCC (V) 3.5 100 125 150 175 200 Average BOP Bits versus Ambient Temperature (A1180, A1181, A1182, A1183) BOPinit Bit 1 Bit 2 Bit 3 Bit 4 Bit 5

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Device Qualifi cation Program EMC (Electromagnetic Compatibility) Requirements Test Name Reference Speci fi cation ESD – Human Body Model AEC-Q100-002 ESD – Machine Model AEC-Q100-003 Conducted Transients ISO 7637-1 Direct RF Injection ISO 11452-7 Bulk Current Injection ISO 11452-4 TEM Cell ISO 11452-3 Contact Allegro for information. Contact your local representative for EMC results.

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 THERMAL CHARACTERISTICS may require derating at maximum conditions, see application information Characteristic Symbol Test Conditions* Value Units Package Thermal Resistance RθJA Package LH, 1-layer PCB with copper limited to solder pads 228 ºC/W Package LH, 2-layer PCB with 0.463 in.2 of copper area each side connected by thermal vias 110 ºC/W Package UA, 1-layer PCB with copper limited to solder pads 165 ºC/W *Additional thermal information available on Allegro Web site. 20 40 60 80 100 120 140 160 180 Temperature (ºC) Maximum Allowable VCC (V) Power Derating Curve (RθJA = 228 ºC/W) 1-layer PCB, Package LH (RθJA = 110 ºC/W) 2-layer PCB, Package LH (RθJA = 165 ºC/W) 1-layer PCB, Package UA VCC(min) VCC(max) 100 200 300 400 500 600 700 800 900 1000 1100 1200 1300 1400 1500 1600 1700 1800 1900 20 40 60 80 100 120 140 160 180 Temperature (°C) Power Dissipation, PD (mW) Power Dissipation versus Ambient Temperature θJA = 165 ºC/ 1-laye r PCB, P ackag e UA θJA = 228º C/W) 1-layerP CB, Package LH θJA = 110 ºC/W) 2-layer PCB, Package LH

presence of external mechanical vibration and electrical noise. Figure 1. Alternative switching behaviors are available in the A118x device family. On the horizontal axis, the B+ direction indicates case of increasing north polarity).

Figure 2. Chopper stabilization circuit (dynamic quadrature offset cancellation) the signal passes while the modulated dc offset is suppressed. high-density logic integration and sample-and-hold circuits.

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83

Application Information

For additional general application information, visit the Allegro MicroSystems Web site at www. allegromicro.com. GND A118x VCC 0.01 uF A B BGND ECU Package UA OnlyA B Maximum separation 5 mm RSENSE CBYP Figure 3. Typical application circuit tion. As shown in fi gure 3, a 0.01 μF capacitor is typical. the A118x pins are no greater than 5 mm in length. BYP, installed in parallel with the A118x. RSENSE is approximately 100 Ω.

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Power Derating The device must be operated below the maximum junction temperature of the device, TJ(max). Under certain combinations of peak conditions, reliable operation may require derating sup- plied power or improving the heat dissipation properties of the application. This section presents a procedure for correlating factors affecting operating T J. (Thermal data is also available on the Allegro MicroSystems Web site.) The Package Thermal Resistance, RθJA, is a fi gure of merit sum- marizing the ability of the application and the device to dissipate heat from the junction (die), through all paths to the ambient air. Its primary component is the Effective Thermal Conductivity, K, of the printed circuit board, including adjacent devices and traces. Radiation from the die through the device case, R θJC, is relatively small component of RθJA. Ambient air temperature, TA, and air motion are signifi cant external factors, damped by overmolding. The effect of varying power levels (Power Dissipation, PD), can be estimated. The following formulas represent the fundamental relationships used to estimate T J, at PD. PD = VIN × IIN (1) Δ T = PD × RθJA (2) T J = TA + ΔT (3) For example, given common conditions such as: TA= 25°C, VCC = 12 V, ICC = 4 mA, and RθJA = 140 °C/W, then: P D = VCC × ICC = 12 V × 4 mA = 48 mW Δ T = PD × RθJA = 48 mW × 140 °C/W = 7°C T J = TA + ΔT = 25°C + 7°C = 32°C A worst-case estimate, PD(max), represents the maximum allow- able power level (VCC(max), ICC(max)), without exceeding TJ(max), at a selected RθJA and TA. Example: Reliability for VCC at TA = 150°C, package UA, using minimum-K PCB. Observe the worst-case ratings for the device, specifi cally: RθJA = 165°C/W, TJ(max) = 165°C, VCC(max) = 24 V , and ICC(max) = 17 mA. Calculate the maximum allowable power level, PD(max). First, invert equation 3: ΔTmax = TJ(max) – TA = 165 °C – 150 °C = 15 °C This provides the allowable increase to TJ resulting from internal power dissipation. Then, invert equation 2: PD(max) = ΔTmax ÷ RθJA = 15°C ÷ 165 °C/W = 91 mW Finally, invert equation 1 with respect to voltage: VCC(est) = PD(max) ÷ ICC(max) = 91 mW ÷ 17 mA = 5 V The result indicates that, at TA, the application and device can dissipate adequate amounts of heat at voltages ≤VCC(est). Compare VCC(est) to VCC(max). If VCC(est) ≤ VCC(max), then reli- able operation between VCC(est) and VCC(max) requires enhanced RθJA. If VCC(est) ≥ VCC(max), then operation between VCC(est) and VCC(max) is reliable under these conditions.

1Programming voltages are measured at the VCC pin. provide the current necessary to blow the fuse. Figure 4. Pulse amplitudes and durations software is available free of charge. hysteresis, BHYS , is fi xed. physically represented by 5 bitfi elds in the onboard registers. CC to fall to zero (which clears the registers). pulse is sent at the end of the pulse sequence.

  1. A bitfi eld address sequence.
  2. When permanently setting the bitfi eld, a long VPH fuse-blow-
  3. When permanently setting the bitfi eld, the level of VCC must

preparing to set additional bitfi elds. period, enough to blow the corresponding bitfi eld-level fuse. Figure 6. Pulse sequence to permanently encode calibration value 5 (101 binary, or bitfi eld address 3 and bitfi eld address 1). Figure 5. Pulse sequence to provisionally try calibration value 5.

Figure 8. Pulse sequence to select addresses Figure 9. Pulse sequence to encode lock bit setting the other bitfi elds, as shown in fi gure 9. Figure 7. Addressing mode enable pulse sequence

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 Package LH, 3-Pin (SOT-23W) 2.40 BSC .094 1.00 BSC .039 0.70 BSC .028 3.10 2.90 .122 .114 2.10 1.85 .083 .073 3.00 2.70 .118 .106 0.55 REF .022 1.49 NOM .059 0.28 NOM .011 0.96 NOM .038 0.95 BSC .037 0.95 BSC .037 0.25 MIN .010 0.15 0.00 .006 .000 1.13 0.87 .045 .034 0.20 0.13 .008 .005 0.50 .020 .0120.30 0.25 BSC .010 Gauge Plane Seating Plane Dimensions in millimeters U.S. Customary dimensions (in.) in brackets, for reference only A Hall element B Active Area Depth 0.28 [.011] C C Fits SC–59A Solder Pad Layout A Package UA, 3-Pin B .164 .159 4.17 4.04 .122 .117 3.10 2.97 .062 .058 1.57 1.47 .017 .014 0.44 0.35 .019 .014 0.48 0.36 .640 .600 16.26 15.24 .085 MAX 2.16 .050 BSC 1.27 .031 REF 0.79 .0195 NOM 0.50 .0805 NOM 2.04 1.44.0565 NOM 45° BSC 45° BSC Dimensions in inches Metric dimensions (mm) in brackets, for reference only 231 A A B Dambar removal protrusion Hall element

A1180-DS, Rev. 2 Worcester, Massachusetts 01615-0036 (508) 853-5000 www.allegromicro.com Allegro MicroSystems, Inc. Sensitive Two-Wire Field-Programmable Chopper-Stabilized Unipolar Hall Effect Switches A1180/81/82/83 The products described herein are manufactured under one or more of the following U.S. patents: 5,045,920; 5,264,783; 5,442,283; 5,686,894; 5,694,038; 5,729,130; 5,917,320; and other patents pend- ing. Allegro MicroSystems, Inc. reserves the right to make, from time to time, such de par tures from the detail spec i fi ca tions as may be required to permit improvements in the per for mance, reliability, or manufactur- ability of its products. Before placing an order, the user is cautioned to verify that the information being relied upon is current. Allegro products are not authorized for use as critical components in life-support devices or sys tems without express written approval. The in for ma tion in clud ed herein is believed to be ac cu rate and reli- able. How ev er, Allegro MicroSystems, Inc. assumes no re spon si bil i ty for its use; nor for any in fringe ment of patents or other rights of third parties which may result from its use. Copyright © 2004, 2005 Allegro MicroSystems, Inc.