CATALYST PELLET
20200384452 ยท 2020-12-10
Inventors
Cpc classification
B01J8/02
PERFORMING OPERATIONS; TRANSPORTING
B01J19/30
PERFORMING OPERATIONS; TRANSPORTING
B01J35/56
PERFORMING OPERATIONS; TRANSPORTING
B01J35/50
PERFORMING OPERATIONS; TRANSPORTING
B01J35/30
PERFORMING OPERATIONS; TRANSPORTING
B01J2219/30475
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A catalyst pellet has the shape of a column and has a cross-section having the shape of an ellipse in a direction perpendicular to an axis.
Claims
1. A catalyst pellet having a shape of a column, and having a cross-section having a shape of an ellipse in a direction perpendicular to an axis.
2. The catalyst pellet according to claim 1, wherein the ellipse has a length denoted by 2a and a width denoted by 2b, and
1.0<a/b2.0.
3. The catalyst pellet according to claim 2, wherein
1.2a/b1.8.
4. The catalyst pellet according to claim 3, wherein
1.4a/b1.6.
5. The catalyst pellet according to claim 1, wherein the ellipse has a length denoted by 2a and a width denoted by 2b, the column has a height denoted by t, and
0.8(2(ab).sup.0.5)/t2.0.
6. The catalyst pellet according to claim 5, wherein
0.9(2(ab).sup.0.5)/t1.6.
7. The catalyst pellet according to claim 1, wherein the catalyst pellet is formed of a crystalline substance.
8. The catalyst pellet according to claim 2, wherein the column has a height denoted by t, and
0.8(2(ab).sup.0.5)/t2.0.
9. The catalyst pellet according to claim 8, wherein
0.9(2(ab).sup.0.5)/t1.6.
10. The catalyst pellet according to claim 3, wherein the column has a height denoted by t, and
0.85(2(ab).sup.0.5)/t2.0.
11. The catalyst pellet according to claim 10, wherein
0.9(2(ab).sup.0.5)/t1.6.
12. The catalyst pellet according to claim 4, wherein the column has a height denoted by t, and
0.8(2(ab).sup.0.5)/t2.0.
13. The catalyst pellet according to claim 12, wherein
0.9(2(ab).sup.0.5)/t1.6.
14. The catalyst pellet according to claim 2, wherein the catalyst pellet is formed of a crystalline substance.
15. The catalyst pellet according to claim 3, wherein the catalyst pellet is formed of a crystalline substance.
16. The catalyst pellet according to claim 4, wherein the catalyst pellet is formed of a crystalline substance.
17. The catalyst pellet according to claim 5, wherein the catalyst pellet is formed of a crystalline substance.
18. The catalyst pellet according to claim 6, wherein the catalyst pellet is formed of a crystalline substance.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF EMBODIMENTS
[0032] Hereinafter, embodiments will be described in detail with reference to drawings.
[0033] This embodiment relates to catalyst pellets packed into a reactor in refrigerant manufacturing equipment. As illustrated in
[0034] As illustrated in
[0035] Hereinafter, the results of mean stress and bulk density of catalyst pellets (10) will be described with reference to
[0036]
[0037]
[0038]
[0039] In both of Examples 1 and 2, when the length-width ratio a/b satisfies 1.0<a/b2.0, the bulk densities are almost certainly higher than those of the circular cross-section catalyst pellets. In particular, when a/b=1.5, the bulk density substantially reaches the maximum value. Thus, this length-width ratio (a/b=1.5) is the optimum value of catalyst pellets (10) having an elliptical cross-section. Practically, when 1.4a/b1.6, the bulk density substantially becomes maximal. Even when the length-width ratio a/b is set to 1.25a/b1.8, the resultant bulk density values are higher and better than those of the circular cross-section pellets.
[0040] Referring to
[0041]
0.8(2(ab).sup.0.5)/t2.0,
[0042] conditions are satisfied that provide lower mean stress and higher bulk density. In particular, when the relation is
0.9(2(ab).sup.0.5)/t1.6,
[0043] the conditions are more effectively satisfied that provide lower mean stress and higher bulk density.
[0044] When the mean stress is lowered, catalyst pellets (10) having low strength can be packed in the reactor (20) without disintegration and used for reactions, which is advantageous. In particular, this is suitable for catalyst pellets (10) formed of crystalline powders having relatively low strength.
[0045]
Advantageous Effects of Embodiment
[0046] In this embodiment, the catalyst pellets (10) are provided so as to have a cross-section having the shape of an ellipse as defined above, and the length-width ratio (a/b) and the relation among length 2a, width 2b, and height t are defined as described above; this enables uniform packing of the catalyst pellets (10) in the reactor (20) at a predetermined bulk density. Thus, this embodiment enables suppression of the decrease in the reaction efficiency in the reactor (20).
[0047] In addition, this embodiment provides, during packing of the catalyst into the reactor (20), a high bulk density without application of vibrations to the reactor (20). This eliminates the necessity of the mechanism of applying vibrations to the reactor (20), resulting in suppression of complication of the apparatus. Furthermore, this embodiment also suppresses disintegration (described later) of the catalyst pellets (10) due to the vibrations.
[0048] In the above-described embodiment, the catalyst pellets (10) are provided so as to have a cross-section having the shape of an ellipse to achieve a high bulk density. This lowers the stress generated in each of the catalyst pellets (10) packed in the reactor (20), which suppresses insufficiency of the strength of the catalyst pellets (10).
[0049] On the other hand, some existing catalyst pellets have low strength. When such pellets are packed into the reactor (20), they are subjected to stress applied by the surrounding pellets, and may be destroyed and disintegrated. Such disintegration of the pellets lowers the diffusibility of the reaction gas, and may result in blocking of the flow of the reaction gas (occurrence of clogging). Thus, disintegration of a large number of pellets requires extra procedures: the reaction is terminated, the catalyst pellets including disintegrated pellets are taken out from the reactor (20), and catalyst pellets from which the disintegrated pellets have been removed are again packed.
[0050] By contrast, in the above-described embodiment, the catalyst pellets (10) are provided so as to have a cross-section having the shape of an ellipse, so that the stress is lowered and disintegration becomes less likely to occur, which also suppresses lowering of the diffusibility of the reaction gas. In particular, for catalyst pellets (10) formed of a crystalline substance such as chromium oxide (Cr.sub.2O.sub.3), zinc oxide (ZnO), or aluminum oxide (Al.sub.2O.sub.3) and having relatively low strength, insufficiency of the strength is effectively suppressed.
[0051] In the case where a large number of pellets are disintegrated and catalyst pellets are packed in the reactor (20) again, the reaction product cannot be manufactured with the reactor (20) during the re-packing process, which lowers the productivity. By contrast, the above-described embodiment also suppresses the lowering of the productivity due to re-packing.
OTHER EMBODIMENTS
[0052] The above-described embodiment may be modified as follows.
[0053] For example, in the above-described embodiment, the length 2a, width 2b, and height tare specified. Alternatively, catalyst pellets (10) according to the present disclosure may be provided such that the length-width ratio a/b alone satisfies the range of the above-described embodiment. The catalyst pellets (10), which are not limited to those that satisfy the above-described numerical ranges, at least have a cross-section having the shape of the above-defined ellipse in a direction perpendicular to the axis. Even in this case, compared with the circular cross-section catalyst pellets (10), a high bulk density is achieved during packing into the reactor (20), which suppresses lowering of the reactivity, compared with the circular catalyst pellets.
[0054] The present disclosure is not limited to catalyst pellets (10) used in refrigerant manufacturing equipment, and is also applicable to catalyst pellets in other applications.
[0055] The embodiment has been described above in terms of catalyst pellets including a powder (catalyst particles) of a crystalline substance such as chromium oxide (Cr.sub.2O.sub.3), zinc oxide (ZnO), or aluminum oxide (Al.sub.2O.sub.3). However, the present disclosure is also applicable to catalyst pellets in other forms such as columnar catalyst pellets including catalyst layers (layered catalyst).
[0056] Incidentally, the above-described embodiments are intrinsically preferred examples, and are not intended to limit the present disclosure, articles to which the present disclosure is applied, or the scope of applications of the present disclosure.
INDUSTRIAL APPLICABILITY
[0057] As has been described so far, the present disclosure is advantageous for catalyst pellets having the shape of a column.
REFERENCE SIGNS LIST
[0058] 10 catalyst pellet [0059] 2a length [0060] 2b width [0061] t height