BACKGROUND OF THE INVENTION
[0001] The present invention relates to a process and an apparatus for the quasi-continuous
or continuous chemical conversion of materials, and in particular to a process and
an apparatus for the conversion of waste cellulose to glucose by acid hydrolyzation.
[0002] Acid hydrolysis of cellulose has been extensively studied for the better part of
the century, particularly in connection with the manufacturing of ethanol from wood
wastes. It has long been known that cellulose can be hydrolyzed in acid solutions
and converted to its monomer, glucose, and the reaction has been experimentally investigated
since this discovery. The reaction results from the fact that the monomers of cellulose
are in anhydroglucose units, and that during hydrolyzation, a water ion is added to
the cellulose monomer units to obtain the heavier molecular weight glucose.
[0003] Recently, there has been a growing interest in the utilization of waste cellulose
for energy production, because of the possibility of producing ethyl alcohol from
glucose, and for the purposes of materials recovery.
[0004] While the acid hydrolysis of cellulose is heterogeneous, it can be regarded as a
homogeneous reaction, provided that the cellulose reactant is despersed in the form
of fine particles, i.e., 200-mesh or less. The kinetically predicted sugar yields
assume that the cellulose reactant has appropriate.chemical reactivity for the acid
hydrolysis. The technical problems of cellulose hydrolysis are to a great extent due
to the fact that this is not the case. The lack of an adequate amount of chemical
reactivity in cellulose is called lack of accessibility. This is related to the highly
inert character and crystalline organization on a molecular level of the high molecular
weight cellulose, and also the presence of lignin. Hydrogen-bonding almost certainly
plays a very important role in the structure of cellulose, and may be a key factor
in explaining its chemical inertness.
[0005] In general, mechanical treatments, such as, for example, intensive ball milling to
sizes below 60 mesh, have been found to be technically effective, but at a high cost
which renders any process economically prohibitive. Treatment with high-energy ionizing
radiation on the order of 100 megarads has been shown to be effective, however, the
cost of such large doses of ionizing radiation is too high for industrial usage.
[0006] While heretofore successful batch-wise production of glucose from cellulose has been
carried out by the acid hydrolysis of waste cellulose, this type of process and the
apparatus for carrying it out are insufficient for commercial production.
SUMMARY OF THE INVENTION
[0007] It is the main object of the present invention to achieve a quasi-continuous or continuous
acid hydrolysis of fibrous material, in particular wastes cellulose, to obtain a derivative
thereof, in particular glucose which can be then converted to ethanol.
[0008] By the term quasi-continuous, it is meant that a process step is effected in such
a cyclical or periodic manner so as to take on the resemblance of and sufficiently
approximate a continuous process step so as to take on the attributes thereof and
be considered continuous by any further process or apparatus elements downstream thereof.
[0009] The process and apparatus for the converion of fibrous material to a derivative thereof
and in particular for the continuous acid hydrolysis of cellulose to glucose, is based
primarily upon the novel hydrolysis reactor according to the present invention which
is capable of feeding, conveying and discharging hydrolyzable cellulosic materials
continuously while maintaining appropriate temperatures and/or pressures in the reaction
zone thereof. Because this hydrolysis requires exposure of the reactor components
to dilute acids at high temperatures and pressures, all materials of construction
are advantageously resistent to corrosion especially in the reaction zone.
[0010] According to the present invention, the hydrolysis reactor is a Werner and Pfleiderer
ZDS-K 53 (53 mm) corotational two screw extruder which was selected because of its
capacity for conveying, mixing and extruding the required amounts of cellulosic feedstock.
The extruder allows accurate control of temperature, pressure, residence time, etc.
as a result of the further novel features of the present invention as explained hereinafter.
The extruder has the working elements of intermeshing twin screws which rotate in
the same direction and which eliminate material build-up in the processing section
and make feasible close control of residence time, etc., with intensive mixing.
[0011] For the quasi-continuous or continuous processing of materials, the reactor was coupled
with an appropriate feeding mechanism for cellulose slurries and a discharge system
for reacted material, while maintaining the necessary elevated pressure and/or temperature
in the reaction zone. In particular, the feeding means included a steam jacked crammer
feeder also produced by the Werner & Pfleiderer Corp. so as to maximize throughput
with preheating as required.
[0012] In a particularly advantageous embodiment of the present invention, hydropulped recycled
newspaper feedstock is
'obtained in an aqueous slurry form approximately 10 % solid content and is optionally
irradiated with a dosage of 10 megarads. This pulp feedstock is then introduced into
the reactor by means of a slurry pump and crammer feeder and the waste cellulose is
then conveyed with heating by the twin screws into the reaction zone where the required
amount of steam and acid is introduced. Hydrolysis then takes place at a predetermined
temperature and pressure and the product is properly discharged.
[0013] In order to maintain the pressure in the reaction zone during the process, pressure
is maintained at the inlet to prevent egress of the material through the crammer feeder
by a dynamic seal in the form of a densified plug of material within the inlet zone
of the reactor. Simultaneously, quasi-continuous discharge of.the hydrolyzed material
is accomplished while maintaining the pressure by the use of a discharge system comprising
a hydraulically powered actuator and a ball valve, in particular the Kamyr Intensive
Service 2" ball valve.
[0014] The dynamic seal is achieved by the formation of a dynamic plug zone in the extruder,
at the inlet end of the reaction zone. The dynamic seal may be formed in the conventional
manner, by utilizing a left handed screw thread in the conventional manner, by utilizing
a left handed screw thread in the dynamic seal zone with right handed threads disposed
downstream and upstream thereof.
[0015] Another main object of the present invention is to improve the above mentioned process
and apparatus by effecting the dynamic seal by a plug formed by an unthreaded and
radially recessed portion of the screws in the dynamic plug zone.
[0016] A further object of the present invention is to obtain a continuous discharge of
the extruder by use of the continuously open valve which is continuously open in response
to a preselected pressure in the reaction zone.
[0017] A still further object is to provide a process and apparatus capable of handling
both wet and dry fixed inputs.
[0018] These and other objects of the present invention will become apparent from the detailed
description of the invention when read with the attached drawings wherein:
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
Figure 1 is a perspective view of the apparatus according to the present invention:
Figure 2 is a sectional schematic view of the apparatus according to the present invention;
Figure 3 is a schematic representation of the heat zones in the apparatus of the present
invention;
Figures 4 and 5 are sectional views of the discharge valve according to the present
invention;
Figure 6 is a schematic representation of the means forming the dynamic seal according
to the present invention;
Figure 7 is a graph of yield data for process variations according to the invention;
Figure 8 is a perspective view of another embodiment of the apparatus according to
the present invention;
Figure 9 is a sectional schematic view of the apparatus according to Figure 8;
Figures 10 and 11 are sectional views of the discharge valve according to the embodiment
of Figure 8;
Figure 12 is a schematic representation of the means forming the dynamic seal according
to the embodiment of Figure 8; and
Figure 13 is a graph of yields for different process parameters according to the embodiment
of Figure 8.
DETAILED DESCRIPTION OF THE INVENTION
[0020] Fig. 1 shows the basic apparatus for carrying out the process according to the present
invention. The apparatus includes the Werner & Pfleiderer ZDS-K 53 twin screw extruder
20 having two corotational screws therein driven by a motor 21. The housing 20a includes
a feed inlet in which the material to be converted is received. As shown in Fig. 1,
in accordance with the present invention a slurry of the fibrous pulp material is
fed into the extruder 20 by means of a crammer feeder 10, which as shown in Fig. 2,
has screw elements for cramming the material into the extruder to be conveyed thereby.
[0021] While in conjunction with the present invention, the input of the fibrous material,
in particular cellulose paper pulp or sawdust is fed-in in a slurry form, in an alternative
form of the invention, the input may be in a dry state where water is added at other
points as is explained hereinafter.
[0022] The extruder 20 includes a reaction zone 25 which is bounded on its inlet side by
a dynamic seal zone 24 and a discharge valve 80 at its outlet side. Upstream of the
reaction zone is the inlet portion or preheating zone 22a of twin screws 22 wherein
the fibrous input is first received and thereby conveyed into the reaction zone.
[0023] In accordance with the process of the present invention, when the fibrous material
is received in a slurry, much of the water thereof is removed in the process of the
conveyance of the slurry into the reaction zone and for this purpose a dewatering
drain 23 is provided upstream of the dynamic seal. Where the fibrous material is fed
in dry form, the dewatering drain is not necessary since the liquid added thereto
is just sufficient to act as a carrier'or, in the case of hydrolysis to act as the
reactant and thereof no water is lost as in the case of a slurry input.
[0024] The apparatus further includes means 30 for adding an acid catalyst comprising a
tank 31 and a metering pump 32 which feeds the acid along pipe 33 into the acid input
port 34 for the extruder housing. The acid catalyst input port 34 is-shown to be at
the beginning of the reaction zone 25 so that the acid acts on the reactants during
substantially the entire residence time of the reactants in the reaction zone. However,
the input position of the acid catalyst port 34 can be varied, depending upon the
temperature in the reaction zone. At higher temperatures, the reaction will generally
take place faster and thus the acid can be introduced into the reaction zone at a
position closer to the outlet thereof.
[0025] In the case of the hydrolysis of cellulose to glucose, it is expecially advantageous
for the reaction to take place at elevated temperatures and in order to bring this
about in the most advantageous manner, a steam is added to add energy to the reaction
zone to obtain a quick increase in temperature. For this, steam supply means 40 are
provided including steam pipe 41 and steam input port 42. The steam may also be used
as a supply of water for the hydrolysis cellulose upon its condensation in the reaction
zone.
[0026] It should also be noted that where the fibrous material is input into the extruder
in a dry form, water may be added in the preheating zone before the dynamic seal 24
and with the acid through acid input port 34.
[0027] Also provided along the extruder housing is a pressure indicator port 51 which in
conjunction with pressure indicator means 50 enables a monitoring of the elevated
pressure within the reaction zone. Moreover, temperature input ports 43 are also provided
to enable monitoring of the temperature within the various zones of the extruder assembly.
These zones are set forth in Figure 3 as zones 1-4 and show a typical thermal configuration
of the apparatus during use.
[0028] Further, at the outlet end of the reaction zone 25, a pressure release valve 60 is
provided to provide pressure relief when the pressure within the reaction zone exceeds
acceptable limits.
[0029] The quasi-continuous or continuous discharge of the reactants from the extruder is
effected by the discharge valve means 80 which discharges the reactants into the collection
vessel 70 which has a gas vent 71 and a flushing drain 72.
[0030] Turning to Figs. 4-5, the discharge valve means 80 of the present invention will
be discussed in more detail. According to the present invention, the discharge is
brought about in a quasi-continuous manner by the use of a hydraulic actuated ball
valve, which in the present invention is most advantageously a two inch Kamyr ball
valve which has a 1.5" bore for heavy duty service. The ball 81 having the 1.5" bore
82 is rotatable on a shaft 83 which is hydraulically movable in a conventional manner.
The ball 81 is situated at the outlet of the extruder which has means including flange
27 for defining a valve aperture 26 which is coactive with the bore 82 to effect the
quasi-continuous discharge of the reactants.
[0031] Figure 4 illustrates the situation where the valve means 80 is fully opened, that
is, the bore 82 is fully aligned with aperture 26. Fig. 5 shows the valving means
80 in the fully closed position, that is, with bore 82 90° out of phase with the aperture
26. The ball in the case of the Kamyr ball valve, rotates 180° every 20 seconds taking
.25 seconds to rotate. The valve is in the fully opened position about 10 % of, the
time and thus for about 0.25 seconds.
[0032] As is described in the copending application Serial No. 131,339 and filed on the
same day as this application, the valving means 80 can be a continuously open valve
which enables the discharge to flow continuously from the extruder as desired.
[0033] Referring now to Fig. 6, the means forming the dynamic seal 24 is discussed in greater
detail. As shown therein, the dynamic seal according to the present invention is formed
by providing left handed threads 24 in the area of the dynamic seal zone with right
handed threads upstream thereof at screw area 22a and downstream thereof in screw
area 22b. The left handed screw threads 24 act to form a dynamic plug which seals
the reaction zone and prevents gases from escaping while continuously conveying the
input into the reaction zone.
[0034] The dynamic seal may also be formed in a novel manner in according with the disclosure
of copending application Serial No. 131,339 filed on the same day as this application
wherein an unthreaded radially recessed screw section is used as described therein.
[0035] The dynamic seal, in conjunction with the valve means 80, maintains the elevated
pressure and, where desirable, the elevated temperature in the reaction zone wh2le
enabling the screw elements to convey the fed in material into the reaction zone and
out of the reaction zone and to enable the reaction process to take place therein.
[0036] An example of the process and apparatus of the present invention with respect to
the conversion of cellulose to glucose is set forth hereinafter as follows:
EXAMPLE
[0037] Feed Material: paper pulp in a 10 % aqueous slurry Feed Rate: 300 pounds per hour
wet
[0038] Reaction Temperature 400° F Reaction Pressure 250 psi
[0039] Acid (H
2S0
4): 1,8 % by weight (100 pounds per hour acid solution).
[0040] Dewatering 245 pounds per hour at 2 % solids with 5 Pounds per hour solids input.
[0041] Machine Screw RPM 100 RPM, drive torque 60 %. Crammer Feeder: 10 %, drive torque
60 %. Glucose conversion: 40 % based on available cellulose.
[0042] Reaction zone input: 25 pounds per hour solid, 30 pounds per hour water, 100 pounds
per hour acid solution.
[0043] Product output: 20 % solids including 6 pounds per hour glucose, 9 pounds per hour
cellulose, 5 pounds per hour lignin, 5 pounds per hour hemi cellulose or decomposed
products, 100 pounds per hour water.
[0044] Screw configuration: total length 2250 mm, preplug feed zone 630 mm of 30 mm pitch
elements conveying material 30 mm forward per revolution.
[0045] Plug zone: 30 mm long with 90 mm left hand pitch Redaction zone: 1590 mm long with
45 mm pitch stainless steel elements. Thermal configuration: As shown in Fig. 3
[0046] Discharge valve 2" amyr ball valve with 1 1/2" bore 20 second cycle at .25 seconds
per 180° cycle.
[0047] Fig. 8 shows the basic apparatus for carrying out the process according to a further
embodiment of the present invention. The apparatus includes the Werner and Pfleiderer
ZDS-K 53 twin screw extruder 120 having two corotational screws therein driven by
a motor 121. The housing 120a includes a feed inlet in which the material to be converted
is received. As shown in Fig. 8, in accordance
' with the present invention dry solid fibrous material in the form of shredded paper,
sawdust, etc. is fed into the extruder 120 by means of a screw feeder 110, which as
shown in Fig. 9, continuously feeds the material into the extruder to be conveyed
thereby.
[0048] While in conjunction with the present invention, the input of the dry fibrous material
is illustrated, the material, in particular cellulose paper pulp or sawdust can be
fed-in in a slurry form in an alternative form of the invention as is explained in
the embodiment of Figs. 1-7.
[0049] The extruder 120 includes a reaction zone 125 which is bounded on its inlet side
by a dynamic seal zone 124 and a discharge valve 180 at its outlet side. Upstream
of the reaction zone is the inlet portion or preheating zone 122a of twin screws 122
wherein the fibrous input is first received and thereby conveyed into the reaction
zone.
[0050] In accordance with the process of the present invention, when the fibrous material
is received in a slurry, much of the water thereof is removed in the process of the
conveyance of the slurry into the reaction zone and for this purpose a dewatering
drain 123 is provided upstream of the dynamic seal. Where the fibrous material is
fed in dry form, the dewatering drain is not necessary since the liquid added thereto
is just sufficient to act as a carrier or, in the case of hydrolysis to act as the
reactant and therefore no water is lost as in the case of a slurry input. Water is
added, as needed, in the preheating zone and which the acid through input port 134.
[0051] The apparatus further includes means 130 for adding an acid catalyst comprising a
tank 131 and a metering pump 132 which feeds the acid along pipe 133 into the acid
input port 134 for the extruder housing. The acid catalyst input port 134 is shown
to be at the beginning of the reaction zone 125 so that the acid acts on the reatants
during substantially the entire residence time of the reactants in the reaction zone.
However, the input position of the acid catalyst port 134 can be varied, depending
upon the temperature in the reaction zone. At higher temperatures, the reaction will
generally take place faster and thus the acid can be introduced into the reaction
zone at a position closer to the outlet thereof.
[0052] In the case of the hydrolysis of cellulose to glucose, it is especially advantageous
for the reaction to take place at elevated temperatures and in order to bring this
about in the most advantageous manner, steam is added to add energy to the reaction
zone to obtain a quic increase in temperature. For this, steam supply means 140 are
provided including steam pipe 141 and steam input port 142. The steam may also be
used as a supply of water for the hydrolysis cellulose upon its condensation in the
reaction zone.
[0053] Also provided along the extruder housing is a pressure indicator port 151 which in
conjunction'with pressure indicator means 150 enables a monitoring of the elevated
pressure within the reaction zone. Moreover temperature input ports 43 are also provided
to enable monitoring of the temperature within the various zones of the extruder assembly.
These zones are, for example, equivalent to those set forth in Figure 3 which is a
typical thermal configuration of the apparatus during use.
[0054] Further, at the outlet end of the reaction zone 125, a pressure release valve 160
is provided to provide pressure relief when the pressure within the reaction zone
exceeds acceptable limits.
[0055] The coninuous discharge of the reactants from the extruder is effected by the discharge
valve means 180 which discharges the reactants into the collection vessel . 170 which
has a gas vent 171 and a flushing drain 172.
[0056] Turning now to Figs. 10 and 11, the valving means 180 of the present invention for
effecting a continuous discharge of the reactants in response to a predetermined pressure
in the reaction zone 125 is illustrated. The valving means 180 comprises a spherical
valve body 181 which coacts with the flanges end of the extruder housing 127 having
the valve aperture 126 therein. The spherical valve body 181 is preferably a 2" valve
body.
[0057] The valve body 181 is seated in a valve plate 182 which has means including spring
185 acting thereon to bias the valve body 181 into the closed position shown in Fig.
10. The biasing is carrier out by the use of four screws 183 which are fixed at one
end into the flange portion 127 and have threaded portion 183a at the other end thereof.
Fitted onto the threaded portions 183a, is plate 184 which is prevented from moving
to the right in Fig. 10 by nuts 186 which are threadably engaged with the threaded
portions 183a. The valve assembly is sealed by the plate 187 which is screwed by screws
188 onto the housing 189 so that the only outlet of the discharge material through
aperture 126 is through the outlet 190.
[0058] .In use, when the pressure within the reaction zone 125 exceeds the force exerted
on the valve body 181 by the spring 185, the valve body 181 is moved to the right
as shown in Fig. 11 and the discharge passes through the aperture 126 and through
the outlet 190. In a working apparatus, the pressure within the reaction zone will
be continuously maintained so that after the initialization of the process, the valve
body 181 will remain in the open position and the discharge will continually pass
through valving means 180.
[0059] The pressure at which the valving means 180 will respond to be maintained in the
continuously open position shown in Fig. 11, can be preset by use of the aforementioned
nuts 186 which engage with the threaded portions 183a. In order to increase the selected
pressure, che nuts 186 are turned clockwise to move the plate 184 to the left thereby
increasing the force that the spring 185 exerts on the plate 182 and thereby the valve
body 181. Accordingly, the pressure can be decreased by reversing the above-mentioned
process.
[0060] Fig. 12 discloses in greater detail the means forming the dynamic seal zone 124 according
to the present invention. As shown in Fig. 12, the dynamic seal zone 124 is formed
by the use of a radially recessed unthreaded screw section 240 on each screw with
optional left handed screw sections 124a upstream thereof and 124b downstream thereof.
The unthreaded radially recessed portions 240 with the optionally left handed screw
thread portions 124a, 124b, when taken in conjunction with the right hand screw threaded
portions 122a upstream thereof and 122b downstream thereof act to produce the dynamic
plug which seals the reaction zone and prevents gases from escaping though the input,
while enabling the fed in material to be conveyed thereby into the reaction zone.
[0061] The dynamic seal, in conjunction with the valve means 180, maintains the elevated
pressure and, where desirable, the elevated temperature in the reaction zone while
enabling the screw elements to convey the fed in material into the reaction zone and
out of the reaction zone and to enable the reaction process to take place therein.
[0062] An example of the process and apparatus of the present invention with respect to
the conversion of cellulose to glucose is set forth hereinafter as follows:
EXAMPLE
[0063] Feed Material: sawdust screw Feeder Rate: 150 pounds per hour dry Reaction Temperature
450°F Reaction Pressure 423 psi Acid Sulfuric Acid 1.0 % by weight introduced in at
120 pounds per hour in solution.
[0064] Water input: 30 pounds per hour into preheating zone. Machine Screw RP, 300 RPM drive
torque 85 %.
[0065] Clucose conversion: 50 % based on available cellulose.
[0066] Reaction zone input: 150 pounds per hour solid, 30 pounds per hour water, 120 pounds
per hour acis solution.
[0067] Product output: 50 % solids including 50 pounds per hour glucose, 33 pounds per hour
cellulose, 38 pounds per hour lignin, 24 pounds per hour hemi cellulose or decomposed
products, 143 pounds per hour water, 12 lb. acid.
[0068] Screw configuration: total length 2250 mm preplug feed zone 630 mm of 30 mm pitch
elements conveying material, 30 mm forward per revolution.
[0069] Plug zone: 90 mm long with two 30 mm 90 mm left hand pitch elements and a 30 mm unthreaded
element therebetween.
[0070] Reaction zone 1590 mm long with 45 mm pitch stainless steel elements.
[0071] Thermal configuration as shown in Fig. 3.
[0072] Discharge valve: 2" ball valve shown in Fig. 4 with a pressure setting of 420 psi.
[0073] In accordance with the present invention, the process parameters of the invention
can vary within a wide degree as is set forth hereinafter.
[0074] The feed material for wet feeds, can have a consistency of 5 % to 50 % slurry with
a limited viscosity and any cellulose containing material such as paper pulp, wood
pulp, waste pulp, pulped municipal solid waste etc. can be used.
[0075] The feed rate can vary from 100 pounds per hour to 900 pounds per hour depending
upon the consistency of the feed material and the RPM of the screw elements.
[0076] The reaction temperature can vary from 350°F to 545°F at 1000 psi, and may also be
higher depending upon the available steam.pressure and the ability to discharge quickly.
Alternate energy transfer modes are possible such as superheated steam or water or
direct heat.
[0077] The reaction pressure can vary from 135 to 1000 psi or higher depending upon the
available steam pressure and the ability to discharge quickly.
[0078] The acid concentration for the process can be from 0 to 10 % acid injection at rates
of from 0 to 300 pounds per hour. Alternative acids for producing derivatives of fibrous
materials such as cellulose can be HCL, HN03, organic acids, S0
2 gas, etc.
[0079] In the embodiment of Figs. 1-7, dewatering varies with the screw speed and the crammer
speed, as well as the screw configuration. It may vary from 80 pounds per hour at
100 pounds per hour feed up to 720 pounds per hour at a 900 pounds per hour feed.
The solids in the dewater outlet vary from 0.05 % to 5 %.
[0080] The screw machine RPM can vary from 40 RPM to 300 RPM with the given screw converter
for both embodiments and the crammer feeder can operate from 8 % to 100 %. The torque
varies from 20 % to 100 % resulting from the screw RPM, the crammer rate, the consistency
of feed, the screw configuration, the temperature profile, rate of acid injection,
conversion rate and discharge rate.
[0081] The glucose conversion depends on all of the parameters noted above such as residence
time, acid concentration, temperature, mixing which all depend on the machine parameters
and can vary from 5 % to 90 % of the theoretical conversion maximum.
[0082] The composition in the reaction zone will vary with the feed and the product composition
also varies with the feed and the reaction conditions.
[0083] With respect to the screw configuration, the forward conveying preheating zone 22a,
122a can be any combination of right handed elements up to 2000 mm in length with
30, 45, 60 or 90 mm pitch elements. Also included therein can be mixing, pulverizing,
kneading, etc. elements to provide a homogeneous material to the dynamic seal zone.
The dynamic seal zone 24 which forms the dynamic plug can be from 15 to 360 mm and
comprises 30, 45, 60 or 90 mm left handed pitch elements. The dynamic seal zone which
forms the dynamic plug .124 can be from 15 to 360 mm can comprise 30, 45, 60 or 90
mm lefthanded pitch elements with the unthreaded element 240 constituting a portion
of or the entire plug zone and thus can be from 15 to 360 mm in length. The unthreaded
cylindrical spacer elements are radially recessed to the extent that they have no
screw flights.
[0084] The screw configuration in the reaction zone comprises the right handed forward conveying
elements which is up to 2000 mm in length and includes 30, 45, 60 or 90 mm pitch right
handed elements.
[0085] The thermal configuration is such that all of the zones 2-4 are interchangable and
can vary in length from 1 to 3 barrel sections. The preheating zone temperature can
vary from 32 to 212°F and the reaction zone temperatures can vary from 350 to 545°F.
[0086] The discharge parameters result from variations in the hydraulic or pneumatic pressure
and flow rate results in the valve speed and varies from .1 seconds at 1000 psi with
unrestricted flow to several seconds for restricted flow. The cycle rate is controlled
by a preset timer which signals a solenoid actuating the ball valve from 2 seconds
to one minute for the cycle time.
[0087] The discharge parameters result from variations in the spring compression pressure
and the flow rate results in unrestricted flow for the entire reaction pressure range
in the reaction zone.
[0088] The apparatus and process of the present invention is capable of handling variations
in the feed rate to handle both wet and dry feed, from 5 to 100 % solids. The feed
rate range is from 20 pounds per hour to 150 pounds per hour of sawdust, corn-stover
wheat straw, wood chips, MSW, etc.
[0089] Depending upon the feed type, that is especially for dry feeds such as saw dust,
injection of water before the plug zone at a rate of from 0 to 300 pounds per hour
aids in plug formation. Other additives may be used to aid in plug formations such
as polypropylene, oils, dewatering from previous batches so as to control torque and
reduce wear. When water is injected, it may be injected in the zone 122a forward of
the plug zone wherein preheating takes place and equivalent amount of water is added
with the acid injection in the reaction zone to maintain equivalent acid concentrations
in the reaction zone.
[0090] Moreover, several pretreatments for the waste feed stock, in particular for newspaper,
can be used to improve the cellulose to glucose conversion yield. The most effective
pretreatment found was hydropulping and irradiation. The irradiations are carried
out at ambient temperatures and in the presence of air with an electron beam accelerator.Irradiation
dosages ranging from 5 to 50 megarads can be used and the 10 megarad dosage has been
found to be the most commercially effective. In a particularly simple embodiment,
slurries of hydropulped waste newspapers replaces in polyethylene bags and the bags
were heat sealed, each bag containing about 20 pounds of hydropulped waste newspaper
slurry of known concentration. The bags were then replaces on a conveyor that moved
past the beam of an electron beam accelerator and a dosage of 5 megarads per pass
was produced thereon.
[0091] Figures 7 and 13 respectively illustrate the results obtained with various process
parameters of the present as shown in the two embodiments.
[0092] It will be clear to those skilled in the art that the process and apparatus of the
present invention can be adapted for use in obtaining other derivatives of cellulose
as well as derivatives of other fibrous materials. For example, lignins can be extractes
from cellulose by contacting a lignocellulosic slurry or pulp with calcium bisulfite
liquor (1 % CaO, 4 % S02)(Da pH of 9.8 injected into the reaction zone and at a temperature
of 180-200°C by way of the injection of steam into the reaction zone. A highly sulfonated
lignosulfonic acid is formed rapidly which is water soluble and can be extracted from
the cellulose. Lignosulfonates can be used as binders, etc. for various applications.
[0093] It will be appreciated that the instant specification and example are set forth by
way of illustration and not limitation, and that various modifications and changes
may be made without departing from the spirit and scope of the present invention.
1. In a process for the conversion of waste cellulose to glucose of the type wherein
an aqueous slurry of waste cellulose is acid hydrolyzed, the improvement wherein the
acid hydrolysis comprises the steps of: continously feeding waste cellulose into an
inlet port with a twin screw extruder; continously reacting the cellulose with water
in the presence of an acid catalyst at elevated temperature and pressure in a reaction
zone disposed in the extruder between the inlet port and an outlet port while continuously
conveying same to the outlet port; and at least quasi-continuously discharging the
reacted cellulose from the extruder while maintaining the elevated temperature and
pressure in the reaction zone by forming a dynamic seal zone at the upstream end of
the reaction zone and valving the discharge downstream of the outlet port.
2. The process according to claim 1, wherein the dynamic seal zone is formed by either
providing a left and pitch thread in the dynamic seal zone and a right hand pitch
thread upstream thereof and downstream thereof in the reaction zone, or by providing
an unthreaded element in the dynamic seal zone having a smaller diameter than the
remaining screw upstream thereof and downstream thereof in the reaction zone.
3. The process according to claim 1 or claim 2, wherein the step of valving comprises
quasi-continuously discharging by providing a hydraulically actuated ball valve and
periodically actuating the ball valve to effect discharge or continuously discharging
the reacted material downstream of the outlet port in response to a selected pressure
in the reaction zone.
4. The process according to claim 3, wherein the step of continuously feeding comprises
continuously feeding a slurry of waste cellulose and water and con- tinuously removing excess water upstream of the reaction zone or continuously feeding a dry
cellulose material into the inlet port.
5. The process according to claim 4, wherein the step of feeding the slurry comprises
cram feeding the aqueous slurry into the inlet port.
6. The process according to claim 4, wherein the step of continuously feeding water
comprises at least one of continuously feeding water with the acid catalyst and just
upstream of the dynamic seal.
7. The process according to claim 5 or 6, wherein the step of continuously reacting
further comprises the step of continuously injecting a sulfuric acid catalyst into
the reaction zone.
8. The process according to claim 7, wherein the step of continuously reacting further
comprises the step of continuously injecting steam into the reaction zone.
9. The process according to claim 8, further comprising the step of pretreating the
aqueous slurry by irradiation prior to feeding.
10. In a apparatus for the conversion of waste cellulose to glucose of the type having
means for acid hydrolyzing the cellulose, the improvement wherein the hydrolyzing
means comprises: extruding means comprising a housing having an inlet port receptive
of cellulose, an outlet port, a reaction zone therebetween wherein the cellulose is
reacted with water and twin corotational screws for continuously conveying the cellulose
through the reaction zone and to the outlet port; means for continuously feeding the
cellulose to the inlet port; and means for at least quasi-continuously discharging
the reacted cellulose from the extruding means while enabling an elevated temperature
and pressure within the reaction zone comprising means for forming a dynamic seal
at the upstream end of the reaction zone and valve means disposed downstream of the
outlet port for controlling the discharge.
11. The apparatus according to claim 9, wherein the means forming the dynamic seal
comprises a portion of the screws having a left hand pitch thread and a right hand
pitch thread upstream thereof and downstream thereof in the reaction zone or means
forming a radially recessed and unthreaded discontinuity in the twin screws at the
upstream end of the reaction zone.
12. The apparatus according to claim 10 or claim 11, wherein the valve means comprises
a hydraulically activated ball valve and means for periodically actuating the ball
valve to effect discharge or a valve for continuously discharging the reacted material
downstream of the outlet port in response to a selected pressure in the reaction zone.
13. The apparatus according to claim 12, wherein the means for continuously feeding
comprises means for continuously removing excess qui upstream of the reaction zone.
14. The apparatus according to claim 13, wherein the means for continuously feeding
comprises means for cram feeding an aqueous slurry into the inlet port.
15. The apparatus according to claim 14, wherein the hydrolyzing means further comprises
means for continuously injecting sulfuric acid into the reaction zone.
16. The apparatus according to claim 15, wherein the hydrolyzing means further comprises
means further comprises means for continuously injecting steam into the reaction zone.
17. The apparatus according to claim 16,wherein the hydrolyzing means further comprises
means for pretreating the aqueous slurry before being received by the feeding means
including means for irradiating the aqueous slurry.
18. The apparatus according to claim 11, wherein the means forming the discontinuity
comprises a radially recessed unthreaded screw element along each screw and a right
hand pitch thread upstream thereof and downstream thereof in the reaction zone.
19. The apparatus according to claim 12, wherein the valve means comprises means forming
a valve aperture, a spherical valve body seatable in the valve aperture and means
for biasing the valve body into the valve aperture against the pressure in the reaction
zone.
20. The apparatus according to claim 19, wherein the biasing means comprises a spring
and means for adjustably selecting the spring force on the valve body.
21. The process for the quasi-continuous or continuous conversion of a fibrous type
material into a derivative thereof, comprising the steps of: continuously feeding
the fibrous material into an inlet port of a twin screw extruder; continuously feeding
a reactant into a reaction zone in the extruder downstream of the inlet port; continuously
reacting the fibrous material with the reactant in a liquid at elevated pressure in
the reaction zone, while continuously conveying same to an outlet port of the extruder
downstream of the reaction zone; and at least quasi-continuously discharging the reacted
material from the extruder while maintaining the elevated pressure in the reaction
zone by forming a dynamic seal zone at the upstream end of the reaction zone and valving
the discharge downstream of the outlet port.
22. An apparatus for the chemical conversion of materials comprises: extruding means
comprising a housing having an inlet port receptive of the material to be converted,
an outlet port, a reaction zone therebetween and twin corotational screws for continuously
conveying the material through the reaction zone and to the outlet port; means for
continuously feeding the material to the inlet port; and means for a least quasi-continously
discharging the reacted cellulose from the extruding means while enabling an elevated
pressure within the reaction zone comprising means for forming a dynamic seal at the
upstream end of the reaction zone and valve means disposed downstream of the outlet
port for controlling the discharge.
23. The apparatus according to claim 22, wherein the valve means comprises a valve
for continuously discharging the reacted material in response to a selected pressure
in the reaction zone.