MEASUREMENT CELL AND CENTRIFUGAL SEDIMENTATION-TYPE PARTICLE-SIZE DISTRIBUTION MEASURING DEVICE USING SAID MEASUREMENT CELL
20230160801 · 2023-05-25
Inventors
Cpc classification
G01N2035/0405
PHYSICS
G01N35/1009
PHYSICS
International classification
G01N35/10
PHYSICS
Abstract
To improve the measurement accuracy of a particle size distribution measuring device that performs a particle size distribution measurement in a line start mode. A measurement cell used in a line start mode of a centrifugal sedimentation type particle size distribution measuring device includes: a cell main body that has an opening provided on one end and stores therein a density gradient liquid W.sub.DGS; and a cell cap that closes the opening of the cell main body and has an internal passage R provided therein for holding a sample liquid W.sub.SS. When an application of a centrifugal force is received, the sample liquid W.sub.SS is introduced from the internal passage R into the density gradient liquid W.sub.DGS.
Claims
1. A measurement cell used in a line start mode of a centrifugal sedimentation type particle size distribution measuring device, the measurement cell comprising: a cell main body that has an opening on one end and that stores therein a density gradient liquid that is a solution having a density gradient; a cell cap that closes the opening of the cell main body and that is provided with an internal passage for holding a sample liquid, wherein the sample liquid is introduced into the density gradient liquid through the internal passage by receiving an application of a centrifugal force.
2. The measurement cell according to claim 1, wherein the internal passage has a sample inlet provided on one end and a sample outlet provided on another end, and with the cell cap attached to the cell main body, the sample inlet is positioned external of the cell main body and the sample output is positioned internal of the cell main body.
3. The measurement cell according to claim 2, wherein the internal passage includes a liquid reservoir that holds the sample liquid introduced from the sample inlet, and a main passage communicating with the liquid reservoir and communicating with the sample outlet, and when an application of a centrifugal force is received, the sample liquid held in the liquid reservoir flows into the main passage, passes through the main passage, and is introduced into the density gradient liquid.
4. The measurement cell according to claim 3, wherein the main passage includes a small diameter passage portion communicating with the liquid reservoir, and a large diameter passage portion provided downstream of the small diameter passage portion and communicating with the sample outlet.
5. The measurement cell according to claim 3, wherein the internal passage further includes an inlet passage portion that communicates with the sample inlet and the liquid reservoir, and the inlet passage portion is provided along a direction of a rotating shaft of the measurement cell, and the main passage is provided along a direction of a centrifugal force applied to the measurement cell.
6. The measurement cell according to claim 3, wherein the main passage is connected to an upper part of the liquid reservoir, and the liquid reservoir has an inclined surface inclined upward toward the main passage on a side connected with the main passage.
7. The measurement cell according to claim 6, wherein the liquid reservoir has a conical shape or a partial conical shape tapered toward a bottom.
8. The measurement cell according to claim 1, wherein, when the cell cap is attached to the cell main body, a space is ensured between the cell cap and the density gradient liquid.
9. The measurement cell according to claim 1, wherein the cell main body and the cell cap are provided with a restricting mechanism that restricts an orientation in which the cell cap is attached to the cell main body.
10. A centrifugal sedimentation type particle size distribution measuring device comprising: the measurement cell according to claim 1; and a cell rotating mechanism that rotates the measurement cell in such a manner that a centrifugal force in a direction from a low density side toward a high density side of the density gradient is exerted on the measurement cell.
11. The centrifugal sedimentation type particle size distribution measuring device according to claim 10, wherein the cell rotating mechanism includes a cell holder to which the measurement cell is attached, the measurement cell is configured to be removable from the cell holder, and the measurement cell and the cell holder are provided with a restricting mechanism that restricts an orientation in which the measurement cell is attached to the cell holder.
12. A measurement cell used in a centrifugal sedimentation type particle size distribution measuring device, the measurement cell comprising: a storage space that stores therein a dispersion medium; and an internal passage that communicates with the storage space and that holds a sample liquid, wherein the sample liquid is introduced through the internal passage into the dispersion medium by receiving an application of a centrifugal force.
Description
BRIEF DESCRIPTION OF DRAWINGS
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[0042]
REFERENCE SIGNS LIST
[0043] 100 centrifugal sedimentation type particle size distribution measuring device [0044] 2 measurement cell [0045] 3 cell rotating mechanism [0046] 31 cell holder [0047] W.sub.SS sample liquid [0048] W.sub.DGS density gradient liquid [0049] 21H opening [0050] 21 cell main body [0051] R internal passage [0052] 22 cell cap [0053] 2A sample inlet [0054] 2B sample outlet [0055] R1 liquid reservoir [0056] R2 main passage [0057] R2a small diameter passage portion [0058] R2b large diameter passage portion [0059] R3 inlet passage portion [0060] R1x inclined surface [0061] S1 space
DESCRIPTION OF EMBODIMENTS
[0062] A centrifugal sedimentation type particle size distribution measuring device according to an embodiment of the present invention will now be explained with reference to some drawings.
<1. Device Configuration of Particle Size Distribution Measuring Device>
[0063] A centrifugal sedimentation type particle size distribution measuring device 100 according to the present embodiment performs a particle size distribution measurement in a line start mode, and includes, as illustrated in
[0064] The measurement cell 2 is a hollow rectangular cell having a substantially cuboid shape, for example. A density gradient liquid W.sub.DGS that is a solution with a density gradient is stored in the measurement cell 2. The density gradient liquid W.sub.DGS is formed using, for example, a plurality of sucrose solutions having different concentrations, and is stored as a plurality of layers in such a manner that the density gradually increases toward the bottom of the measurement cell 2. In the present embodiment, a reference cell 6 is also provided, and water is stored in the reference cell 6.
[0065] The cell rotating mechanism 3 is configured to rotate the measurement cell 2 in such a manner that a centrifugal force in a direction from a low density side toward a high density side of the density gradient is exerted on the measurement cell 2.
[0066] Specifically, the cell rotating mechanism 3 includes a cell holder 31 to which the measurement cell 2 and the reference cell 6 are removably attached, and a rotating unit 32 that rotates the cell holder 31.
[0067] As illustrated in
[0068] The measurement cell 2 and the reference cell 6 are configured to be removable from the cell holder 31. By configuring the cells 2 and 6 to be removable from the cell holder 31, the cells 2 and 6 are configured to be removable from the device main body. An opening and closing lid 13 is opened when the cells 2 and 6 are to be removed from the device main body.
[0069] A cover body 33 for preventing the measurement cell 2 and the reference cell 6 from being unexpectedly detached during the rotation is provided on the top surface of the cell holder 31 (see
[0070] As an orientation which the measurement cell 2 is attached to the cell holder 31, the measurement cell 2 is attached in such a manner that the high density side is on the radially outer side. As a result, when the cell holder 31 is rotated, a centrifugal force in a direction from a low density side toward a high density side of the density gradient is exerted on the measurement cell 2.
[0071] As illustrated in
[0072] The cell holder 31 is housed in a housing space 100S provided inside the particle size distribution measuring device 100. The rotating shaft 321 of the rotating unit 32 is passed through a bottom wall 11 by which the housing space 100S is formed. A top wall 12 by which the housing space 100S is formed is provided as an opening and closing lid 13 that is opened and closed when the measurement cell 2 is to be attached and removed.
[0073] As illustrated in
[0074] As illustrated in
[0075] A light intensity signal obtained by the light detector 51 is acquired by the particle size distribution computing unit 15, and the particle size distribution computing unit 15 calculates particle size distribution data. The particle size distribution computing unit calculates particle size distribution data using the light intensity signals and a rotation start signal acquired from the control unit 10. The particle size distribution data is displayed on a display by a display unit, not illustrated.
<2. Specific Configuration of Measurement Cell 2>
[0076] As described above, the measurement cell 2 according to the present embodiment is used in the line start mode of the centrifugal sedimentation type particle size distribution measuring device 100.
[0077] Specifically, as illustrated in
[0078] The cell main body 21 is made of a metal such as aluminum, for example, and is provided with the light transmission windows W1 and W2 for transmitting light, on opposing walls 21a and 21b facing each other, respectively. The opposing walls 21a and 21b face each other in a direction orthogonal to the direction of the centrifugal force. By using a metal as the material of the cell main body 21, it is possible to ensure that the cell main body has a strength to withstand the centrifugal force, and an excellent chemical resistance.
[0079] The light transmission windows W1 and W2 are configured by installing glass window members 211 in through holes that are provided in the opposing walls 21a and 21b of the cell main body 21, respectively. Because the window members 211 are made of glass, the window members 211 have excellent chemical resistance. The window members 211 are liquid tightly fixed to through holes, respectively, that are provided in the opposing walls 21a and 21b, respectively, each with a seal member 212 and a fixing member 213 therebetween. At this time, among the light transmission windows W1 and W2, the size of the light transmission window W2 that is the outgoing side of the light is larger than the light transmission window W1 on the incident side of the light. In this manner, it is ensured that, even when the cell rotating mechanism 3 experiences rotational deviations (deviations of the rotating shaft), the light comes out of the light transmission window W2 on the outgoing side of the light.
[0080] The cell cap 22 is made of a resin, for example, and is inserted into the opening 21H of the cell main body 21 and closes the opening 21H, as illustrated in
[0081] A sample inlet 2A is provide on one end of the internal passage R provided to the cell cap 22, and a sample outlet 2B is provided on the other end. With the cell cap 22 attached to the cell main body 21, the sample inlet 2A is positioned external of the cell main body 21, and the sample outlet 2B is positioned internal of the cell main body 21. Specifically, the sample inlet 2A is provided on the top surface of the rear end 22b, and the sample outlet 2B is provided on a tip surface 22x of the inserted portion 22a. With this configuration, when the cell cap 22 is attached to the cell main body 21, the sample liquid W.sub.SS can be introduced into the internal passage R from the sample inlet 2A.
[0082] The internal passage R includes a liquid reservoir R1 for holding the sample liquid W.sub.SS introduced from the sample inlet 2A, and a main passage R2 communicating with the liquid reservoir R1 and communicating with the sample outlet 2B. When the centrifugal force is applied, the sample liquid W.sub.SS held inside the liquid reservoir R1 flows into the main passage R2, passes through the main passage R2, and is introduced into the density gradient liquid W.sub.DGS.
[0083] At this time, the internal passage R also includes an inlet passage portion R3 communicating with the sample inlet 2A and the liquid reservoir R1. The inlet passage portion R3 is provided along the direction of the rotating shaft (in
[0084] The main passage R2 includes a small diameter passage portion R2a that is an upstream passage communicating with the liquid reservoir R2, and a large diameter passage portion R2b that is provided downstream of the small diameter passage portion R2a and that communicates with the sample outlet 2B. The small diameter passage portion R2a is a linear passage having a constant diameter, and the large diameter passage portion R2b is a linear passage having a constant diameter that is larger than the diameter of the small diameter passage portion R2a. The small diameter passage portion R2a and the large diameter passage portion R2b are coaxially provided.
[0085] The liquid reservoir R1 is provided to a pointed end (bottom end) of the inlet passage portion R3, and can temporarily store therein a predetermined amount (for example, 10 μL) of the sample liquid W.sub.SS. At this time, by being connected to the inlet passage portion R3, the liquid reservoir R1 is configured as a space having an opening on the top. The liquid reservoir R1 stores therein substantially the entire sample liquid W.sub.SS to be introduced into the inlet passage portion R3 via the sample inlet 2A.
[0086] The positional relationship between the liquid reservoir R1 and the main passage R2 is configured in such a manner that the main passage R2 is connected to an upper part of the liquid reservoir R1. In other words, the main passage R2 communicates with the liquid reservoir R1 by being connected to the inlet passage portion R3.
[0087] At this time, the liquid reservoir R1 has an inclined surface R1x inclined upwards toward the main passage R2, on the side where the liquid reservoir R1 is connected to the main passage R2 (radially outer side). This configuration allows the sample liquid W.sub.SS stored in the liquid reservoir R1 to flow into the main passage R2 smoothly when an application of a centrifugal force is received. The liquid reservoir R1 according to the present embodiment has a conical shape or a partially conical shape that is tapered toward the bottom, thereby forming the inclined surface R1x.
[0088] Furthermore, in the present embodiment, when the cell cap 22 is attached to the cell main body 21, a space S1 is ensured between the cell cap 22 and the density gradient liquid W.sub.DGS. The space S1 is ensured between the tip surface 22x of the cell cap 22 and the liquid surface of the density gradient liquid W.sub.DGS stored in the cell main body 21. At this time, the surface tension of the density gradient liquid W.sub.DGS stored inside the cell main body 21 keeps the shape of the surface, and even when the measurement cell 2 is tilted sideways, the density gradient liquid W.sub.DGS does not flow toward the side near the cell cap 22, and the space S1 between the tip surface 22x of the cell cap 22 and the liquid surface of the density gradient liquid W.sub.DGS is maintained.
[0089] In addition, hollows 221 are provided to the cell cap 22, as illustrated in
[0090] Furthermore, the cell cap 22 is provided with air vents 222 for letting the air out when the cell cap 22 is attached to the cell main body 21. The air vents 222 are communicating passages each having an opening on the tip surface 22x of the cell cap 22 and communicating with the through hole that is the corresponding hollow 221. When the cell cap 22 is attached to the cell main body 21, the air inside the cell main body 21 passes through the air vents 222 and discharged from the through holes that are the hollows 221.
[0091] Furthermore, on both of the left and the right side surfaces of the cell cap 22, protrusions 223 are provided to ensure adhesion with the left and right inner side surfaces of the cell main body 21, respectively, when the cell cap 22 is attached to the cell main body 21. At this time, because the hollows 221 are provided on the inner sides of the side surfaces where the protrusions 223 are provided, respectively, the side surfaces provided with the respective protrusions 223 become elastically deformed inwards, and the protrusions 223 are elastically brought into close contact with the left and right inner side surfaces of the cell main body 21, respectively.
[0092] In addition, the cell main body 21 and the cell cap 22 are provided with a restricting mechanism that restricts the orientation in which the cell cap 22 is attached to the cell main body 21. Specifically, the restricting mechanism is achieved by the shape of the opening of the cell main body 21 and the shape of the inserted portion 22a inserted into the opening 21H of the cell cap 22. For example, at least one of the four rounded portions of the opening 21H of the cell main body 21 has a different shape, and four round portions 22R1 and 22R2 of the inserted portion 22a of the cell cap portion 22 are provided with the shapes corresponding thereto, respectively (see the front view of
[0093] A line start mode using the measurement cell 2 will now be explained briefly.
[0094] To introduce the sample liquid W.sub.SS into the measurement cell 2, as illustrated in
[0095] After the sample liquid is introduced, the sample inlet 2A may be closed with a lid body 23. By closing the sample inlet 2A with the lid body 23, it is possible to prevent evaporation of the sample liquid W.sub.SS and prevent leakage of the density gradient liquid W.sub.DGS into the internal passage R due to an air pocket formed inside the internal passage R.
[0096] When the measurement cell 2 is then rotated, the sample liquid W.sub.SS receives the centrifugal force and moves from the liquid reservoir R1 toward the small diameter passage portion R2a of the main passage R2, as illustrated in
[0097] The sample liquid W.sub.SS then flows through the small diameter passage portion R2a to the large diameter passage portion R2b, spreads inside the large diameter passage portion R2b, as illustrated in
Advantageous Effects Achieved by Present Embodiment
[0098] With the centrifugal sedimentation type particle size distribution measuring device 100 according to the present embodiment, the sample liquid W.sub.SS is held inside the internal passage R provided inside the cell cap 22, and when a centrifugal force is applied thereto, the sample liquid W.sub.SS is introduced through the internal passage R into the density gradient liquid W.sub.DGS. Therefore, it is possible to establish the timing of the application of the centrifugal force to the measurement cell 2 or the timing of rotating the measurement cell 2 at a predetermined rotation speed as the timing of the start of the measurement in the line start mode. Hence, the measurement accuracy can be improved. Furthermore, because the sample liquid W.sub.SS is held inside of the cell cap 22, it is possible to reduce the distance between the sample liquid W.sub.SS and the density gradient liquid W.sub.DGS, so that it is possible to reduce variations in the time required for the sample liquid W.sub.SS to reach the density gradient liquid W.sub.DGS. With this, too, the measurement accuracy can be improved. Furthermore, because the sample liquid W.sub.SS is held in the measurement cell 2 that is configured to be removable from the device main body, an introducing mechanism for introducing the sample liquid W.sub.SS into the rotating measurement cell 2 from the external can be rendered unnecessary.
[0099] In the present embodiment, because the liquid reservoir R1 is provided to the internal passage R, a predetermined amount of the sample liquid W.sub.SS can be held at a constant position in the internal passage R, so that the reproducibility of the particle size distribution measurement can be improved.
[0100] Furthermore, because the main passage R2 is connected to the upper part of the liquid reservoir R1, and the liquid reservoir R1 has the inclined surface R1x on the side connected with the main passage R2, the inclined surface being inclined upwards toward the main passage R2, it is possible to hold the sample liquid W.sub.SS reliably inside the liquid reservoir R1 before the measurement cell 2 is rotated, and to allow the sample liquid W.sub.SS to flow out of the liquid reservoir R1 smoothly into the main passage R2 while the measurement cell 2 is being rotated.
[0101] At this time, because the liquid reservoir R1 has a conical shape or a partial conical shape tapered toward the bottom, the liquid reservoir R1 can be easily machined into the cell cap 22.
[0102] Furthermore, because, when the cell cap 22 is attached to the cell main body 21, the space S1 is ensured between the cell cap 22 and the density gradient liquid W.sub.DGS, it is possible to alleviate a streaming phenomenon caused by the contact of the density gradient liquid W.sub.DGS with the cell cap 22, to spread the sample liquid W.sub.SS into the density gradient liquid W.sub.DGS reliably, and to improve the measurement accuracy.
Other Embodiments
[0103] Note that the present invention is not limited to the embodiment described above.
[0104] For example, in the above embodiment, the particle size distribution is measured in the line start mode, but according to the present invention, it is possible to configure so as to enable the particle size distribution measurement not only in the line start mode but also in a uniform sedimentation mode. In this mode, sample dispersion stored in the measurement cell 2 contains particles dispersed across a medium. In the uniform sedimentation mode, too, the timing of rotating the measurement cell containing the sample dispersion is used as the timing of the start of the measurement.
[0105] In such an example, as a configuration of the measurement cell, the measurement cell includes a storage space storing therein the dispersion medium, and an internal passage communicating with the storage space and holding the sample liquid, and the sample liquid is introduced through the internal passage into the dispersion medium by receiving an application of a centrifugal force. Specifically, it is possible to configure the measurement cell to include a cell main body that has an opening on one end and that stores therein a dispersion medium, and a cell cap by which the opening of the cell main body is closed and that is provided with an internal passage for holding a sample liquid, and the sample liquid is introduced through the internal passage into the dispersion medium by receiving an application of a centrifugal force. The cell main body and the cell cap may have the same configuration as those according to the embodiment described above. With such a measurement cell, the internal passage communicating with the storage space holds the sample liquid, and the sample liquid is introduced through the internal passage into the dispersion medium by receiving an application of a centrifugal force. Therefore, it is possible to reduce the distance between the sample liquid and the dispersion medium, so that it becomes possible to suppress variations in the time required for the sample liquid to reach the dispersion medium. With this, too, the measurement accuracy can be improved.
[0106] Furthermore, the liquid reservoir R1 according to above embodiment described above has a conical shape or a partial conical shape tapered toward the bottom, but may have various other shapes. For example, the liquid reservoir R1 may have a partial spherical shape, or a polygonal columnar shape, for example. Even with such configurations, it is desirable to have the inclined surface R1x having an upward gradient toward the main passage R2.
[0107] Furthermore, the measurement cell according to the embodiment described above is a rectangular cell having a rectangular cuboidal outer shape, but may also have any other shape.
[0108] In the measurement cell 2 according another embodiment, as illustrated in
[0109] In addition, various modifications and combinations of the embodiments may be made within the scope not deviating from the gist of the present invention.
INDUSTRIAL APPLICABILITY
[0110] According to the present invention, it is possible to improve the measurement accuracy of a particle size distribution measuring device that performs particle size distribution measurement in a line start mode.