BIOLOGICAL SAMPLE ANALYSIS DEVICE
20180257068 ยท 2018-09-13
Inventors
Cpc classification
B01L2200/18
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0627
PERFORMING OPERATIONS; TRANSPORTING
G01N33/243
PHYSICS
B01L2300/027
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/046
PERFORMING OPERATIONS; TRANSPORTING
B01L3/508
PERFORMING OPERATIONS; TRANSPORTING
G01N21/75
PHYSICS
B01L3/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
G01N33/00
PHYSICS
Abstract
A biological sample analysis device that is an easily portable free-standing device for determining the rate of deterioration of biological samples.
Claims
1: A portable reusable biological sample analysis device for analyzing one or more biological samples, the device comprising: a biological sample chamber; a data collection and analysis unit having a gas emissions sensing unit that is connected to a data analysis and display unit, the gas emissions sensing unit being able to detect gas emissions that are emitted by the biological samples; and wherein the data collection and analysis unit is connectable to the biological sample chamber.
2: The portable reusable biological sample analysis device of claim 1, wherein the data collection and analysis unit is a cover for the biological sample chamber, the data collection and analysis unit further including a bottom side and a top side, the bottom side including the gas emissions sensing unit and the top side containing the data analysis and display unit, and wherein the data collection and analysis unit is affixable to the biological sample chamber so as to create an airtight enclosure within the biological sample chamber.
3: The portable reusable biological sample analysis device of claim 2, wherein the biological sample chamber has an open top having a plurality of ridges and wherein the bottom side of the data collection and analysis unit has a plurality of ridges and a seal, and wherein the plurality of ridges on the biological chamber interlock with the plurality of ridges on the data collection and analysis unit.
4: The portable reusable biological sample analysis device of claim 2, wherein the gas emissions sensing unit includes an infrared sensor that is coupled to a sensor circuit board, the infrared sensor being capable of detecting gas emission data that are emitted by the biological sample and the sensor circuit board being programmable and able to receive and transmit the gas emission data.
5: The portable reusable biological sample analysis device of claim 4, wherein the infrared sensor is a nondispersive infrared sensor.
6: The portable reusable biological sample analysis device of claim 4, wherein data analysis and display unit includes a display and an analysis circuit board that is connected to the display, the display and analysis circuit board being connectable to the sensor circuit board and able to receive gas emission data from the sensor circuit board, the display and analysis circuit board further being able to calculate respiration rates and show the respiration rates on the display.
7: The portable reusable biological sample analysis device of claim 6, wherein the display and analysis circuit board has an external communication link that is connectable to a user interface device and wherein the display and analysis circuit board is able to transmit and receive data to and from the user interface device.
8: The portable reusable biological sample analysis device of claim 4, wherein a temperature sensor that is able to measure temperature data is affixed to the gas emissions sensing unit and wherein the sensor circuit board is able to read and transmit the temperature data.
9: The portable reusable biological sample analysis device of claim 1, further comprising a reading chamber, and wherein the data collection and analysis unit is affixed to the reading chamber and wherein a first air tube connects the reading chamber to the biological sample chamber.
10: The portable reusable biological sample analysis device of claim 9, further comprising a second air tube having an air pump and wherein the air pump pulls air through the second air tube from the biological sample chamber to the reading chamber and wherein the first air tube transfers air from the reading chamber to the biological sample chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The present invention is described with reference to the accompanying drawings. In the drawings, like reference numbers indicate identical or functionally similar elements. The drawings are not drawn to scale.
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[0017]
DETAILED DESCRIPTION OF THE INVENTION
[0018] The present invention will now be described more fully in detail with reference to the accompanying drawings, in which the preferred embodiments of the invention are shown. This invention should not, however, be construed as limited to the embodiments set forth herein; rather, they are provided so that this disclosure will be complete and will fully convey the scope of the invention to those skilled in the art.
[0019]
[0020] Together, the biological sample chamber 10 and data collection and analysis unit 20 are of a relatively small size such that the device 100 is easily portable and free-standing. For example, a biological sample chamber 10 that is cylindrical in shape and that has a volume in the range of approximately 450 cubic centimeters to approximately 1 liter is reasonable. The biological sample analysis device 100 also accommodates a wide range of biological sample S sizes; for example, a device 100 having a biological sample chamber 10 with a volume of roughly 1 liter is able to accommodate a biological sample ranging in mass from approximately 5 grams to approximately 500 grams.
[0021] The rate of deterioration, which also may be called carbon dioxide (CO2) respiration or, simply, CO2 respiration, may be represented severally as the change in atmospheric CO2 inside the biological sample chamber 10 or converted via the Ideal Gas Law to a mass of CO2 milligrams (mg) which may be divided into the sample rate for a relative decay rate. Relative decay may be represented in the device as mg CO2/kilograms (kg) of sample, or reduced to mg CO2-C, as carbon, equivalent to sample weight times the carbon content. The difference between the starting weight in total carbon of the sample and the atmospheric CO2 converted via the Ideal Gas Law to mass is therefore the amount of decay, deterioration or respiration the sample has undergone in a period of time.
[0022] The biological sample chamber 10 is a gas-tight enclosure, such as a glass jar. The data collection and analysis unit 20 includes a number of components that detect the gas emission data, analyzes the gas emission data, and displays results, i.e. the rate of deterioration, to the user. More specifically, the data collection and analysis unit 20 is integrated into the cover 22, the cover having a bottom side 23 that includes a gas emissions sensing unit 27 and a top side 25 that includes a data analysis and display unit 36 for calculating and displaying pertinent data, such as the rate of deterioration.
[0023] The gas emissions sensing unit 27 includes an Infrared (IR) sensor 26, best illustrated in
[0024] The sensor circuit board 28 connects to one or more wires 32 that extend through a gas-tight opening 33 in the cover 22 and connect to the data analysis and display unit 36. The data analysis and display unit 36 includes a display and analysis circuit board 34, best shown in
[0025] The display and analysis circuit board 34 also has an external communication link 35, such as a universal serial bus (USB) port or a Power over Ethernet (POE) system, that allows the user to connect the biological sample analysis device 100 to the user interface device (not shown) such as a computer, smart phone or tablet, by a cable or wireless signal for transferring additional data inputs and outputs between the user to the data collection and analysis unit 20. This link 35 may also serve as a connection to a power source for the biological sample analysis device 100 by conveying electricity from the user interface device or by being directly connected to an electrical outlet using conventional means such as, for example, a USB cable.
[0026] More specifically, the display and analysis circuit board 34 is programmed using conventional techniques to receive sensor data from the sensor circuit board 28, accept input from the user through the user interface device, such as the weight of the sample and volume of the biological sample chamber 10. Based on these inputs, the display and analysis circuit board 34 calculates the concentration of CO2 gas and from this the rate of sample deterioration. A display 39 mounted in the data analysis and display unit 36 displays data, such as the rate of deterioration, to the user. In the embodiment shown, the display 39 is a display that uses an array of light-emitting diodes (LEDs) as pixels for a video display. Any form of display with suitable units for alphanumeric characters is suitable for use with the device 100.
[0027] The bottom side of the cover 22 has a suitable number of ridges 24, for example five ridges 24 are included in the embodiment shown, that work in conjunction with an approximately corresponding number of ridges 12, shown in
[0028] The cover 22 may also include air-tight accessible sample ports 37, shown in
[0029] Also attached to the sensor circuit board 28 is a temperature sensor 31, shown in
[0030]
[0031] It is understood that the embodiments described herein are merely illustrative of the present invention. Variations in the construction of the biological sample analysis device may be contemplated by one skilled in the art without limiting the intended scope of the invention herein disclosed and as defined by the following claims.