IP Library Granted Patent US 11,538,543
Granted Patent B2
US 11,538,543 · App. 16/834,464 · Granted Dec 27, 2022

Noise injection for power noise susceptibility test for memory systems

Inventors: Xiaofang Chen (Milpitas, CA); Wenwei Wang (San Jose, CA); Satish Pratapneni (Milpitas, CA)
Assignee: SK hynix Inc.
G11C29/021G01R29/0871G01R29/26G11C29/025
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Quick Facts
Patent No.
US 11,538,543
App. No.
16/834,464
Granted
Dec 27, 2022
Kind
B2
Abstract

Noise injection systems and methods for conducting power noise susceptibility tests on memory systems, including solid state drives. A noise injection system comprises a power selector to deliver a voltage at a first or second level according to a frequency level indicated by a frequency select signal; a noise signal relay to receive a frequency noise signal and to deliver a low or high frequency noise component of the frequency noise signal according to the frequency level of the frequency select signal; and an amplification assembly, responsive to the frequency select signal and which receives the first or second level voltage based on the frequency level of the frequency select signal, receives and amplifies the high frequency noise component when the frequency select signal indicates a high frequency level, and receives and amplifies the low frequency noise component when the frequency select signal indicates a low frequency level.

Claims (40)

1. A noise injection system comprising:

a power amplifier configured to generate a combined voltage and noise signal for injecting noise into a memory data storage device under test (DUT);

a function generator coupled to the power amplifier to deliver voltage boosted noise to a non-inverting input of the power amplifier,

wherein the power amplifier is configured to generate the combined voltage and noise signal having substantially the same amplitude across a 99 kHz frequency range.

2. The noise injection system of claim 1 , wherein the power amplifier comprises a high power operational amplifier.

3. The noise injection system of claim 1 , further comprising:

a power supply coupled to a positive input of the DUT.

4. The noise injection system of claim 3 , further comprising:

an inductor coupled between a positive voltage terminal of the power supply and the positive input of the DUT.

5. The noise injection system of claim 4 , further comprising:

a capacitor coupled between an output terminal of the power amplifier and the positive input of the DUT.

6. The noise injection system of claim 5 , wherein the power amplifier is configured to generate the combined voltage and noise signal at substantially the same amplitude across the 99 kHz frequency range and further across a 4 MHz frequency range.

7. The noise injection system of claim 1 , further comprising:

a first power supply coupled to a positive input of the DUT; and

a second power supply coupled to the power amplifier.

8. A noise injection system comprising:

a power selector configured to deliver a voltage at a first level or a voltage at a second level according to a frequency level indicated by a frequency select signal;

a noise signal relay configured to receive a frequency noise signal and to deliver according to the frequency level indicated by the frequency select signal a low frequency noise component when the frequency select signal indicates a low frequency level of the frequency noise signal and a high frequency noise component when the frequency select signal indicates a high frequency level of the frequency noise signal; and

an amplification assembly, responsive to the frequency select signal and configured to

receive the first level voltage or the second level voltage based on the frequency level of the frequency select signal,

receive and amplify the high frequency noise component when the frequency select signal indicates a high frequency level, and

receive and amplify the low frequency noise component when the frequency select signal indicates a low frequency level.

9. The noise injection system of claim 8 , further comprising:

an output relay to select power at the first voltage level and the amplified low frequency noise component or power at the second voltage level and the amplified high frequency noise component according to the frequency level indicated by the frequency select signal.

10. The noise injection system of claim 8 , wherein the power selector comprises a single pole double throw (SPDT) switch and is configured to receive an input voltage signal at various voltage levels.

11. The noise injection system of claim 8 , wherein the amplification assembly comprises a low frequency amplification section and a high frequency amplification section.

12. The noise injection system of claim 11 , wherein the low frequency amplification section comprises a power amplifier.

13. The noise injection system of claim 11 , wherein the high frequency amplification section comprises an operational amplifier.

14. The noise injection system of claim 13 , wherein the amplification assembly comprises a capacitor injection component that is operably coupled to the operational amplifier for processing the high frequency noise component.

15. A method for injecting noise into a device under test (DUT), the method comprising:

selecting a first voltage level or a second voltage level according to a frequency level indicated by a frequency select signal;

transmitting power at the first voltage level to an amplification assembly when the frequency select signal indicates a low frequency level, and transmitting power at the second voltage level to the amplification assembly when the frequency select signal indicates a high frequency level;

delivering a low frequency noise component of inputted frequency noise to a power amplifier of the amplification assembly for amplification when the frequency select signal indicates the low frequency level, and delivering a high frequency noise component of the inputted frequency noise to an operational amplifier of the amplification assembly for amplification when the frequency select signal indicates the high frequency level; and

outputting power at the first voltage level and the amplified low frequency noise component when the frequency select signal indicates the low frequency level, and outputting power at the second voltage level and the amplified high frequency noise component when the frequency select signal indicates the high frequency level.

16. The method of claim 15 , further comprising:

delivering the high frequency noise component output from the operational amplifier to a capacitor injection component operably coupled to the operational amplifier when the frequency select signal indicates the high frequency level.

17. The method of claim 15 , wherein the delivering is carried out using a relay switch configured to receive the inputted frequency noise and to output one of the low frequency noise component and the high frequency noise component in response to the frequency level of the frequency select signal.

18. The method of claim 15 , wherein the outputting is carried out using a relay switch.

19. The method of claim 15 , wherein the selecting and transmitting is carried out using a relay switch that is configured to receive an input voltage signal at various voltage levels.

20. The method of claim 15 , wherein the low frequency level has a range of about 200 kHz and the output is at substantially the same amplitude across the 200 kHz frequency range.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 16, 2021
From: SK HYNIX MEMORY SOLUTIONS AMERICA INC.
To: SK HYNIX INC.
Reel/Frame 056883/0151 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2020
From: CHEN, XIAOFANG; WANG, WENWEI; PRATAPNENI, SATISH
To: SK HYNIX MEMORY SOLUTIONS AMERICA INC.
Reel/Frame 052262/0253 →
Continuity (1)
Related Publication 20210304833A1 · Sep 30, 2021