IP Library Granted Patent US 10,190,961
Granted Patent B2
US 10,190,961 · App. 15/163,541 · Granted Jan 29, 2019

Sample analyzer and sample analyzing method thereof

Inventors: Xiansuan Du (Shenzhen, CN); Yong Dai (Shenzhen, CN)
Assignee: Shenzhen Mindray Bio-Medical Electronics Co., Ltd.
G01N15/1434G01N15/1459G01N21/4738G01N21/6428G01N2015/0076G01N2015/0084G01N2015/1006G01N2015/1402G01N2201/06113G01N2201/124
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Quick Facts
Patent No.
US 10,190,961
App. No.
15/163,541
Granted
Jan 29, 2019
Kind
B2
Abstract

A sample analyzer with an optical detection device and a sample analysis method of the sample analyzer are disclosed. The optical detection device includes a fluid chamber, a light source and a light detector. The fluid chamber includes an illumination zone. An analyte flows through the illumination zone so as to form a sample stream. The light source illuminates the illumination zone to excite cell articles, reacted with a reagent, of the sample stream to emit a light signal. The light detector detects the fluorescent lights and transforms it into an electric signal. The light detector can include a silicon photomultiplier.

Claims (42)

1. A sample analyzer, comprising:

a sample collection device for collecting a sample quantitatively, wherein the sample comprises cell particles;

a reagent supplement device for providing a reagent, wherein the reagent is able to react with the cell particles;

a sample reaction device for receiving the sample from the sample collection device and the reagent from the reagent supplement device, wherein the reagent reacts with the cell particles to generate an analyte;

an analyte delivery device for delivering the analyte for optical measurement; and

an optical measurement device for measuring a light signal generated from the analyte to generate light signal information, wherein the optical measurement device comprises:

a fluid chamber comprising an illumination zone, wherein the analyte from the analyte delivery device flows through the illumination zone to form a sample stream;

a light source for illuminating the illumination zone to generate the light signal from the sample stream; and

a light detector for detecting the light signal and transforming the light signal into the light signal information, wherein the light detector comprises at least one silicon photomultiplier, wherein a light sensing area of the silicon photomultiplier is smaller than a threshold value, a distortion of a pulse amplitude of an electrical signal is triggered when the light sensing area of the silicon photomultiplier exceeds the threshold value, and the electrical signal is generated according to an amount of a dark pulse count overlapping on a single one of the cell particles.

2. The sample analyzer of claim 1 , wherein the light source comprises a laser generator, the output power of the laser generator is between 1 to 20 mW.

3. The sample analyzer of claim 1 , wherein the light source comprises a laser generator, the output power of the laser generator is between 1 to 15 mW.

4. The sample analyzer of claim 1 , wherein the silicon photomultiplier comprises a plurality of light sensing units arranged in an array configuration, an illumination area of each light sensing unit is smaller than an imaging area of a single cell particle, a size of the light sensing unit is between 10 μm to 50 μm.

5. The sample analyzer of claim 1 , wherein the silicon photomultiplier comprises a plurality of light sensing units arranged as array configuration, the number of the light sensing units is larger or equal to 500 units.

6. The sample analyzer of claim 1 , wherein the silicon photomultiplier comprises a plurality of light sensing units arranged as array configuration, preferably, the number of the light sensing units is larger or equal to 1280 units.

7. The sample analyzer of claim 1 , wherein a light sensing area of the silicon photomultiplier is between 1-36 mm2, the light sensing area is a circle with a diameter between 2 mm to 6 mm.

8. The sample analyzer of claim 1 , wherein a light sensing area of the silicon photomultiplier is between 1-36 mm2, the light sensing area is a square with a length between 1 mm to 6 mm.

9. The sample analyzer of claim 1 , wherein the optical measurement device further comprises: an optical path, configured between the fluid chamber and the light detector, for converging the light signal to form a facula on a light sensing area of the silicon photomultiplier, the facula is between 50% to 78% of the light sensing area.

10. The sample analyzer of claim 1 , further comprising a controller for controlling a reverse bias voltage applied on the silicon photomultiplier to keep an overvoltage between 0 to 5 volt, the overvoltage is a differences between the reverse bias voltage and a breakdown voltage of the silicon photomultiplier.

11. The sample analyzer of claim 10 , wherein the controller adjusts the reverse bias voltage applied on the silicon photomultiplier according to different operation modes to control the overvoltage.

12. The sample analyzer of claim 1 , further comprising a temperature control device for controlling a temperature of the silicon photomultiplier at a configuration temperature, the configuration temperature is selected between 20° C. to 40° C.

13. The sample analyzer of claim 1 , further comprising a temperature compensation device for adjusting a reverse bias voltage applied on the silicon photomultiplier according to a temperature of the silicon photomultiplier so as to keep an overvoltage constant.

14. The sample analyzer of claim 13 , wherein the temperature compensation device comprises a temperature sensor, a temperature detection circuit, an AD converter, a temperature compensation module, a DA converter, a voltage adjustment circuit and a regulation power supply with an adjustable output, wherein the temperature sensor and the temperature detection circuit detect the temperature of the silicon photomultiplier and generate a temperature signal, the AD converter converters the temperature signal into a digital signal, the temperature compensation module calculates a target value of the reverse bias voltage of the silicon photomultiplier, the controller adjusts a circuit parameter of the voltage adjustment circuit by controlling the DA converter to cause an output voltage of the adjustable regulation power supply to reach the target value of the reverse bias voltage.

15. A sample analyzer, comprising:

a sample collection device for collecting a sample quantitatively, wherein the sample comprises cell particles;

a reagent supplement device for providing a reagent, wherein the reagent is able to react with the cell particles;

a sample reaction device for receiving the sample from the sample collection device and the reagent from the reagent supplement device, wherein the reagent reacts with the cell particles to generate an analyte;

an analyte delivery device for delivering the analyte for optical measurement; and

an optical measurement device for measuring a light signal generated from the analyte to generate light signal information, wherein the optical measurement device comprises:

a fluid chamber comprising an illumination zone, wherein the analyte from the analyte delivery device flows through the illumination zone to form a sample stream;

a light source for illuminating the illumination zone to generate the light signal from the sample stream;

a light detector for detecting the light signal and transforming the light signal into the light signal information, wherein the light detector comprises at least one silicon photomultiplier; and

a controller for controlling a reverse bias voltage applied on the silicon photomultiplier to keep an overvoltage between 0 to 5 volts, the overvoltage is a differences between the reverse bias voltage and a breakdown voltage of the silicon photomultiplier.

16. A sample analyzer, comprising:

a sample collection device for collecting a sample quantitatively, wherein the sample comprises cell particles;

a reagent supplement device for providing a reagent, wherein the reagent is able to react with the cell particles;

a sample reaction device for receiving the sample from the sample collection device and the reagent from the reagent supplement device, wherein the reagent reacts with the cell particles to generate an analyte;

an analyte delivery device for delivering the analyte for optical measurement; and

an optical measurement device for measuring a light signal generated from the analyte to generate light signal information, wherein the optical measurement device comprises:

a fluid chamber comprising an illumination zone, wherein the analyte from the analyte delivery device flows through the illumination zone to form a sample stream;

a light source for illuminating the illumination zone to generate the light signal from the sample stream;

a light detector for detecting the light signal and transforming the light signal into the light signal information, wherein the light detector comprises at least one silicon photomultiplier; and

a temperature compensation device for adjusting a reverse bias voltage applied on the silicon photomultiplier according to a temperature of the silicon photomultiplier so as to keep an overvoltage constant.

Assignments (2)
LICENSE Recorded Jun 24, 2022
From: SHENZHEN MINDRAY BIOMEDICAL ELECTRONICS CO., LTD.
To: SHENZHEN MINDRAY ANIMAL MEDICAL TECHNOLOGY CO., LTD.
Reel/Frame 060440/0796 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2016
From: DU, XIANSUAN; DAI, YONG
To: SHENZHEN MINDRAY BIO-MEDICAL ELECTRONICS CO., LTD.
Reel/Frame 038788/0745 →
Priority Claims (1)
CN 2016 1 0156013 · Mar 18, 2016 · national
Continuity (1)
Related Publication 20170315046A1 · Nov 2, 2017
Cited By (3)
US 12,332,265 US 12,584,902 US 12,693,287