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How Semiconductor Tools respond to AC Mains Disturbances Alex McEachern President Power Standards Lab (PSL) 1201 Marina Village Parkway #101 Alameda, CA 94501 W:+001.510 522 4400 M: +001.510.919.4369 [email protected] www.powerstandards.com
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How Semiconductor Tools respond to AC Mains Disturbances

Feb 03, 2022

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Page 1: How Semiconductor Tools respond to AC Mains Disturbances

How Semiconductor Tools respond to AC Mains Disturbances

Alex McEachernPresidentPower Standards Lab (PSL)

1201 Marina Village Parkway #101Alameda, CA 94501W:+001.510 522 4400M: +001.510.919.4369

[email protected]

Page 2: How Semiconductor Tools respond to AC Mains Disturbances

Problem with old approach to Power Quality:

1. Disturbances happen. They cannot be avoided.

2. Power company is responsible for power quality.

3. Success is technically impossible.

Page 3: How Semiconductor Tools respond to AC Mains Disturbances

What if cars were engineered like this?“Make loads tougher, not power better”

Note: requires road that is Note: requires road that is +/+/--10% smooth. Otherwise, 10% smooth. Otherwise, wheels may fall off.wheels may fall off.

Aftermarket roadAftermarket road--smoothers are readily smoothers are readily availableavailable..

Page 4: How Semiconductor Tools respond to AC Mains Disturbances

Basic idea behind new approach to Power Quality

• Power quality is compatibility between source and load, notperfection of source

• There are always two solutions to compatibility

• Either improve the power, ormake the loads tougher.

• How to choose?

Page 5: How Semiconductor Tools respond to AC Mains Disturbances

Consequences of new approach to Power Quality

• Power quality is a shared responsibility: – electric company or FAB must deliver some

level of quality, but not perfection– Customer must buy equipment that tolerates

normal disturbances.

Page 6: How Semiconductor Tools respond to AC Mains Disturbances

New approach:What should be tolerated?

What is “typical” disturbance?

Page 7: How Semiconductor Tools respond to AC Mains Disturbances

•High frequency impulses

•Voltage swells

•Flicker

•Harmonics (Voltage and Current)

•Capacitor switching transients

•Voltage dips

What ACMains disturbances?

Page 8: How Semiconductor Tools respond to AC Mains Disturbances

Introduction to AC Mains disturbances

Voltage sags (or dips – BE) are the most common>90% of all AC mains Disturbances

Cursor: -1ms -38.1 Volts www.PowerStandards.com

-200

-120

-40

40

120

200

Volts

L1-N load - milliseconds - 6/12/2003 7:08:49 AM-40 -8 24 56 88 120 152 184 216 248 280

Page 9: How Semiconductor Tools respond to AC Mains Disturbances

Voltage sag causes in Fabs

1. Either increase in source impedance (rare)2. Or increase in current (common).

Page 10: How Semiconductor Tools respond to AC Mains Disturbances
Page 11: How Semiconductor Tools respond to AC Mains Disturbances
Page 12: How Semiconductor Tools respond to AC Mains Disturbances
Page 13: How Semiconductor Tools respond to AC Mains Disturbances

Voltage Sags on Fab level

Page 14: How Semiconductor Tools respond to AC Mains Disturbances

Remember:

The Tool must continue to run the Process

Without Operator invention

How do semiconductor tools respond to voltage dips?

Page 15: How Semiconductor Tools respond to AC Mains Disturbances

• Extreme #1 – no problem at all

(rare)

• Extreme #2 – explosion, fire,

bearing failure

(extremely rare)

How do semiconductor tools respond to voltage dips?

Page 16: How Semiconductor Tools respond to AC Mains Disturbances

• Extreme #3 – graceful restoration

using power quality sensor, for example

(becoming more common)

How do semiconductor tools respond to voltage dips? (Continued)

Page 17: How Semiconductor Tools respond to AC Mains Disturbances

• Ordinary, common responses

• EMO shutdown

• Small relay failures

• Safety relay failures

• GFI (PE Sense) trip at end of dip

How do semiconductor tools respond to voltage dips? (Continued)

Page 18: How Semiconductor Tools respond to AC Mains Disturbances

• Unbalance sensor trip

• Power supply fuses fail

• Contactor may drop

• Circuit breakers open due to

increased current on

phases without dips

How do semiconductor tools respond to voltage dips? (Continued)

Page 19: How Semiconductor Tools respond to AC Mains Disturbances

• Sensor faults or errors

• flow, temperature,

RF forward or reverse power,

fan speed, pressure

• Can be sensor error, or

software design error

How do semiconductor tools respond to voltage dips? (Continued)

Page 20: How Semiconductor Tools respond to AC Mains Disturbances

• Interaction between sub-systems

during sag

• Communication problems can result

tool to misbehave or stop

• Under-voltage sensor at drives,

and controllers etc. kicks in

How do semiconductor tools respond to voltage dips? (Continued)

Page 21: How Semiconductor Tools respond to AC Mains Disturbances

• DC Power Supply faults

(surprisingly uncommon)

• Lack-of-energy faults

• Shut-down faults

• Effect of universal input

supplies

How do semiconductor tools respond to voltage dips? (Continued)

Page 22: How Semiconductor Tools respond to AC Mains Disturbances

• Robot faults

• Can destroy wafers

• Emergency braking

• Gate closing

• Transport strategy

(software error)

How do semiconductor tools respond to voltage dips? (Continued)

Page 23: How Semiconductor Tools respond to AC Mains Disturbances

• ASD shutdown

• Loss of plasma requiring

manual re-strike

• Main computer re-boots

• Loss of tool’s internal

communication network

• Subsystems in tool get out

of synchronization

How do semiconductor tools respond to voltage dips? (Continued)

Page 24: How Semiconductor Tools respond to AC Mains Disturbances

New approach to power quality –How to make AC mains disturbances

Using a Voltage Sag Generator in Semiconductor Industry.

Page 25: How Semiconductor Tools respond to AC Mains Disturbances

• No simple answer – not just a power supply problem

• Requires testing real tools with real voltage dips

• Requires testing team: power, hardware, software experts

• Solutions rarely require mains power conditioning

• Minor component value changes

• Minor software changes

• More on this topic later!

Conclusion: How do semiconductor tools respond to voltage dips?