A REACTOR VESSEL FOR BIOMASS MATERIAL
20210237024 · 2021-08-05
Assignee
Inventors
- Stefan MELLANDER (Alnö, SE)
- Johan Carlsson (Alnö, SE)
- Lars FREDRIKSSON (Alnö, SE)
- Francois LAMBERT (Sundsvall, SE)
Cpc classification
B65G33/14
PERFORMING OPERATIONS; TRANSPORTING
B01J3/03
PERFORMING OPERATIONS; TRANSPORTING
B01J19/20
PERFORMING OPERATIONS; TRANSPORTING
B01J2219/00051
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J19/20
PERFORMING OPERATIONS; TRANSPORTING
B01J3/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A reactor vessel (1) for biomass material, wherein said reactor vessel (1) is a pressurized reactor vessel, said reactor vessel being elongated and comprising: a substantially tubular vessel part (3); two gables (5a, 5b) connected one to each end (19a, 19b) of the tubular vessel part (3), hereby enclosing a vessel internal compartment (7); and a material transporting screw (8) comprising a central shaft (9) provided within the vessel internal compartment (7) extending between the two gables (5a, 5b) along a central axis (A) of the reactor vessel (1), wherein said material transporting screw further comprises screw flight (11) provided around the shaft (9), wherein said material transporting screw is configured for transporting the biomass material through the reactor vessel, wherein both gables (5a, 5b) are inwardly dished.
Claims
1. A reactor vessel for biomass material, wherein said reactor vessel is a pressurized reactor vessel, said reactor vessel being elongated and comprising: a substantially tubular vessel part; two gables connected one to each end of the tubular vessel part, hereby enclosing a vessel internal compartment; and a material transporting screw comprising a central shaft provided within the vessel internal compartment extending between the two gables along a central axis (A) of the reactor vessel, wherein said material transporting screw further comprises screw flight provided around the shaft, wherein said material transporting screw is configured for transporting the biomass material through the reactor vessel, wherein both gables are inwardly dished.
2. A reactor vessel according to claim 1, wherein the central shaft is supported by bearings mounted on the gables in each end such that it can rotate around its longitudinal axis and wherein the central shaft is protruding out through at least one of the gables, wherein said central shaft further is arranged to be connected to a rotation device configured for rotating said central shaft around its longitudinal axis.
3. A reactor vessel according to any one of the preceding claims claim 1, wherein it further comprises: an inlet for receiving said biomass material into said vessel internal compartment, said inlet being provided centered to a first position, which is closer to a first end of said tubular vessel part than a second opposite end of said tubular vessel part; and an outlet for discharging said biomass material out from the vessel internal compartment after having passed through the vessel internal compartment, said outlet being provided centered to a second position which is closer to the second end than the first end of said tubular vessel part.
4. A reactor vessel according to claim 3, wherein said first position is provided at a first distance (d1) from the first end of the tubular vessel part and said second position is provided at a second distance (d2) from the second end of the tubular vessel part.
5. A reactor vessel according to claim 4, wherein said first and second distances (d1, d2) are at least 1/20 of the total length of the reactor vessel.
6. A reactor vessel according to claim 1, wherein a pressure within said vessel internal compartment is 5-50 bar (g) or 10-25 bar (g).
7. A reactor vessel according to claim 1, wherein the reactor vessel is horizontally provided.
8. A reactor vessel according to claim 1, wherein the reactor vessel is substantially cylindrical and at least 1 m in diameter and at least 6 m in length or at least 1.5 m in diameter and at least 8 m in length or at least 2.5 m in diameter and at least 10 m in length.
9. A reactor vessel according to claim 1, wherein a shape of the at least one inwardly dished gable is hemispherical elliptical or spherical.
10. A reactor vessel according to claim 1, wherein a top point of a first end vessel gable and a top point of a second end vessel gable, which top points are the parts of the dished gables provided furthest into the vessel internal compartment, are located between an inlet centerline and a first end of said tubular vessel part and between an outlet centerline and a second end of said tubular vessel part respectively, said inlet centerline passing through a center of an inlet of the reactor and being perpendicular to the central axis (A), said outlet centerline passing through a center of an outlet of the reactor and being perpendicular to the central axis (A).
11. A reactor vessel according to claim 10, wherein a distance between the top point of the first end vessel gable and the first end of the tubular vessel part and a distance between the top point of the second end vessel gable and the second end of the tubular vessel part are at least ⅓ of a radius of the reactor vessel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027]
[0028]
DETAILED DESCRIPTION OF EMBODIMENTS
[0029] According to the invention a reactor vessel for biomass material is provided. This could be a pressurized reaction vessel for treatment of biomass material.
[0030]
[0031] The central shaft 9 is supported by bearings mounted on the gables 5a, 5b in each end such that it can rotate around its longitudinal axis. In this embodiment the central shaft 9 is provided with two protruding ends 13a, 13b, one provided in each end of the central shaft 9. These protruding ends 13a, 13b has a smaller diameter than the central shaft 9 and are therefore more suited for protruding through the gables 5a, 5b. One of the protruding ends 13a of the central shaft 9 is furthermore configured for connection to a rotation device. Hereby the central shaft 9 can be rotated around its longitudinal axis by the rotation device. The central shaft 9 is also sealed typically with stuffing boxes or mechanical sealings where it protrudes through the gables 5a, 5b.
[0032] The reactor vessel 1 according to this embodiment of the invention comprises further an inlet 15a for receiving said biomass material into said vessel internal compartment 7. The inlet 15a is provided centered to a first position 17a in the tubular vessel part 3 which first position 17a is closer to the first end 19a of said tubular vessel part 3 than the second opposite end 19b of said tubular vessel part. The reactor vessel 1 according to this embodiment comprises furthermore an outlet 15b for discharging said biomass material out from the vessel internal compartment 7 after having passed through the vessel internal compartment. The outlet 15b is provided centered to a second position 17b which is closer to the second end 19b than the first end 19a of said tubular vessel part 3. The first position 17a is provided at a first distance d1 from the first end 19a of the tubular vessel part 3 and said second position 17b is provided at a second distance d2 from the second end 19b of the tubular vessel part 3. In one embodiment of the invention said first and second distances d1, d2 are at least 1/20 of the total length of the tubular vessel part. In one embodiment of the invention d1 and d2 are at least ⅓ of a radius of the reactor vessel plus a distance from one side of the inlet/outlet 15a, 15b to a center 16a, 16b of the inlet/outlet, i.e. the distance the inwardly dished gables 5a, 5b are protruding into the reactor vessel, which can be at least ⅓ of a radius of the reactor vessel, plus half the size of the inlet/outlet, which can be the radius of the inlet/outlet if they are cylindrical. Hereby the inwardly dished gables 5a, 5b will not disturb the material transport through the reactor vessel.
[0033] The inlet 15a and outlet 15b should suitably not be provided too close to the ends of the tubular vessel part 3 and the welds of the gables due to mechanical reasons and risk of breakage and due to Pressure Equipment Directive, PED, and ASME as described above.
[0034] A reactor vessel according to the invention could be a pressurized reactor vessel for treatment of biomass material. A pressure within said vessel internal compartment can be 5-50 bar(g), i.e. pressure above atmospheric pressure or in one embodiment of the invention 10-25 bar(g). These reactor vessels are often horizontally provided.
[0035] For comparison,
[0036] Another advantage with the present invention which is apparent when comparing
[0037] The reactor vessel according to the invention can be substantially cylindrical and in one embodiment of the invention at least 1 m in diameter and at least 6 m in length. In another embodiment of the invention the reactor vessel can be at least 1.5 m in diameter and at least 8 m in length or at least 2.5 m in diameter and at least 10 m in length.
[0038] A shape of the at least one inwardly dished gable can in one embodiment of the invention be hemispherical elliptical and in another embodiment of the invention spherical.
[0039] A top point 21a of the first end vessel gable 5a and a top point 21b of the second end vessel gable 5b are the parts of the dished gables 5a, 5b is provided furthest in to the vessel internal compartment 7. The top point 21a of the first end vessel gable 5a is suitably located between an inlet centerline 16a and the first end 19a of the tubular vessel part 3, wherein said inlet center line 16a is passing through a center of the inlet 15a of the reactor and is perpendicular to the central axis (A). The top point 21b of the second end vessel gable 5b is suitably located between an outlet centerline 16b and the second end 19b of the tubular vessel part 3, wherein said outlet center line 16b is passing through a center of the outlet 15b of the reactor and is perpendicular to the central axis (A). Hereby the dished gables will not affect the effective internal volume of the reactor vessel 1.
[0040] In one embodiment of the invention a distance between the top point 21a of the first end vessel gable 5a and the first end 19a of the tubular vessel part 3 and a distance between the top point 21b of the second end vessel gable 5b and the second end 19b of the tubular vessel part 3 are at least ⅓ of a radius of the reactor vessel.