1. Field of the Invention
[0001] The present invention relates to an automatic drying method and an automatic drying
device, and more particularly to an automatic drying method and an automatic drying
device for a grain dryer that may provide a multi-detecting effect, may reduce the
number of repeated drying, and may reduce the cost of using the automatic drying method
and the automatic drying device for the grain dryer.
2. Description of Related Art
[0002] Grains such as rice, wheat or coffee beans need to be processed by a shelling process,
and the husks that are shelled from the grains can be used as biomass fuels for a
conventional grain dryer. A heat source that is generated by burning the biomass fuels
in a conventional grain dryer may be used to dry or adjust the moisture content of
the grains, and this may achieve an effect of resource recovery and reuse. The conventional
grain dryer may be broadly divided into two categories such as a continuous-type grain
dryer and a circulating-type grain dryer. The continuous-type grain dryer may deliver
grains continuously into the grain dryer to dry by a transport mechanism. In addition,
the circulating-type grain dryer may dry grains by a circular transporting way when
grains have filled in the grain dryer.
[0003] Furthermore, the conventional grain dryer has a burner, a smoke pipe, a heat exchange
unit, an exhaust pipe, a drying unit, and a chimney pipe group. The burner has an
internal combustion furnace to burn the biomass fuels to generate thermal energy.
The smoke pipe communicates with a top end of the internal combustion furnace to guide
and exhaust the fuel gas generated from burning the biomass fuels. The heat exchange
unit communicates with the smoke pipe and exchanges heat with the outside cold air.
The exhaust pipe communicates with the heat exchange unit to guide the hot air after
heat exchanging. The dry unit communicates with the exhaust pipe to enable the hot
air in the exhaust pipe to flow into the dry unit to dry the grains. The chimney pipe
group communicates with the heat exchange unit to guide and exhaust the fuel gas to
the outside after heat exchanging.
[0004] However, when the conventional continuous-type grain dryer is in use, the moisture
value of the grains in the dry unit may be detected only after the entire drying process.
The grains must be dried again if the moisture value of the grains is too high. Then,
the repeated drying process may increase the time of drying the grains and may also
increase the consumption of energy and the cost of use. In addition, if the moisture
value of the grains that have been processed by the conventional grain dryer is higher
or lower than a set value, the grains after drying may not meet the user's needs.
[0005] To overcome the shortcomings, the present invention provides an automatic drying
method and an automatic drying device for a grain dryer to mitigate or obviate the
aforementioned problems.
[0006] The main objective of the present invention is to provide an automatic drying method
and an automatic drying device, and more particularly to an automatic drying method
and an automatic drying device for a grain dryer that may provide a multi-detecting
effect, may reduce the number of repeated drying, and may reduce the cost of using
the automatic drying method and the automatic drying device for the grain dryer.
[0007] The automatic drying method for a grain dryer in accordance with the present invention
has a preparing step, a parameter-setting step, and a multi-stage drying step. The
preparing step includes preparing an automatic drying device. The automatic drying
device has a body, at least two drying sections, and a detecting module. Each drying
section has a hot air inlet, a net-layer base, and at least one exhaust pipe. The
detecting module is connected to the body and has at least two moisture meters, at
least two temperature sensors, a rotary unit, and a processing unit. The parameter-setting
step comprises setting a temperature value and a moisture content of each drying section.
The multi-stage drying step comprises conveying pre-dried grains into each drying
section, importing hot air into each drying section to dry the pre-dried grains, and
adjusting an operating speed of the rotary unit and the temperature of the hot air.
[0008] Other objectives, advantages and novel features of the invention will become more
apparent from the following detailed description when taken in conjunction with the
accompanying drawings.
IN THE DRAWINGS:
[0009]
Fig. 1 is a block diagram of an automatic drying method for a grain dryer in accordance
with the present invention;
Fig. 2 is a perspective view of an automatic drying device for a grain dryer in accordance
with the present invention;
Fig. 3 is a side view of the automatic drying device for a grain dryer in Fig. 2;
Fig. 4 is another side view of the automatic drying device for a grain dryer in Fig.
2;
Fig. 5 is a side view in partial section of the automatic drying device in Fig. 4;
Fig. 6 is an operational block diagram of the automatic drying device in Fig. 2 under
a drying process;
Fig. 7 is an operational side view in partial section of the automatic drying device
in Fig. 4; and
Fig. 8 is an operational block diagram of the automatic drying device in accordance
with the present invention with multi-stage drying under a drying process.
[0010] With reference to Figs. 1 and 2, an automatic drying method for a grain dryer in
accordance with the present invention has a preparing step, a parameter-setting step,
and a multi-stage drying step.
[0011] The preparing step comprises preparing an automatic drying device 10. Furthermore,
the automatic drying device 10 may be a continuous-type grain dryer or a circulating-type
grain dryer. With reference to Figs. 3 to 5, the automatic drying device 10 has a
body 20, at least two drying sections 30, and a detecting module 40.
[0012] The body 20 has an interior, an exterior, a top end, a bottom end, an input portion
21, an output portion 22, and a conduit pipe 23. The interior is formed in the body
20 between the top end and the bottom end of the body 20. The input portion 21 is
deposited on the top end of the body 20. Furthermore, the body 20 has a spreading
tray 24 deposited in the input portion 21 of the body 20. The output portion 22 is
deposited on the bottom end of the body 20.
[0013] Additionally, the body 20 further has a receiving box 25 and an output rod 26 deposited
in the output portion 22 of the body 20. The receiving box 25 is connected to the
bottom end of the body 20 below the spreading tray 24, and communicates with the interior
of the body 20. The output rod 26 is rotatably mounted in the receiving box 25. Furthermore,
the output rod 26 is a screw rod and is driven by a driving motor 27.
[0014] The conduit pipe 23 is mounted on the exterior of the body 20, communicates with
the input portion 21 and the output portion 22 to convey pre-dried grains into the
interior of the body 20 via the conduit pipe 23 and the input portion 21, and convey
pre-dried grains into the conduit pipe 23 via the output portion 22.
[0015] The at least two drying sections 30 are connected to the body 20 at a spaced interval
between the input portion 21 and the output portion 22, and each one of the at least
two drying sections 30 has a hot air inlet 31, a net-layer base 32, and at least one
exhaust pipe 33. The hot air inlet 31 is deposited on the exterior of the body 20
and communicates with the interior of the body 20. The net-layer base 32 is mounted
in the interior of the body 20 and communicates with the hot air inlet 31. The at
least one exhaust pipe 33 is deposited on the exterior of the body 20 and communicates
with the net-layer base 32. In addition, the body 20 has a buffer layer 28 mounted
between two adjacent drying sections 30 to change the flow directions of the hot air
in the two adjacent drying sections 30. Furthermore, the automatic drying device 10
has multiple drying sections 30.
[0016] With reference to Figs. 5 and 6, the detecting module 40 is connected to the body
20 and has at least two moisture meters 41, at least two temperature sensors 42, a
rotary unit 43, and a processing unit 44. The at least two moisture meters 41 are
connected to the body 20 to enable each one of the at least two moisture meters 41
to mount below one of the net-layer bases 32 of the at least two drying sections 30,
and each one of the at least two moisture meters 41 is used to detect the moisture
content at a corresponding net-layer base 32.
[0017] Each one of the at least two temperature sensors 42 is mounted in one of the at least
two drying sections 30 to detect the temperature of a corresponding drying section
30. The rotary unit 43 is mounted in the body 20 and has multiple rotating wheels
431 and a rotating motor 432. The rotating wheels 431 are rotatably mounted in the
body 20 below a bottommost net-layer base 32. The rotating motor 432 is mounted in
the body 20, and is connected to the rotating wheels 431 by a belt to enable the rotating
wheels 431 to rotate relative to the body 20. In addition, the rotating motor 432
is a frequency control motor.
[0018] The processing unit 44 is electrically connected to each one of the at least two
moisture meters 41, and is electrically connected to each one of the at least two
temperature sensors 42 and the rotary unit 43. Then, the processing unit 44 may calculate
and process the detected signals provided by each one of the at least two moisture
meters 41 to compute a data, to increase or lower the temperature of the hot air according
to the data, and increase or lower the operating speed of the rotating wheels 431
by the rotating motor 432. In addition, the processing unit 44 is a microcomputer.
[0019] The parameter-setting step comprises setting a temperature value and a moisture content
of each one of the at least two drying sections 30 by the processing unit 44 according
to a user's need.
[0020] With reference to Fig. 7, the multi-stage drying step comprises conveying pre-dried
grains 60 into the input portion 22 of the body 20 via the conduit pipe 23, guiding
the pre-dried grains 60 into each one of the at least two drying sections 30 via the
spreading tray 24, importing hot air into the net-layer base 32 of each one of the
at least two drying sections 30 via the hot air inlet 31 to enable the pre-dried grains
60 to absorb the thermal energy from the hot air to discharge water when the pre-dried
grains 60 passed through the net-layer base 32 of each one of the at least two drying
sections 30, exhausting the hot air out of the body 20 via the at least one exhaust
pipe 33 of each one of the at least two drying sections 30 after passing through the
pre-dried grains 60, detecting the temperature value and the moisture content of each
one of the at least two drying sections 30 respectively by the corresponding temperature
sensor 42 and moisture meter 41, transferring signals corresponding to the temperature
value and the moisture content of each one of the at least two drying sections 30
to the processing unit 44, increasing the temperature of each one of the at least
two drying sections 30 when the moisture content of each one of the at least two drying
sections 30 is higher than the set moisture content of each one of the at least two
drying sections 30, decreasing the temperature of each one of the at least two drying
sections 30 when the moisture content of each one of the at least two drying sections
30 is lower than the set moisture content of each one of the at least two drying sections
30, calculating an overall precipitation rate of the pre-dried grains 60, adjusting
(increasing or decreasing) the operating speed of each one of the rotating wheels
431 by the processing unit 44, sending a signal to the rotating motor 432 and adjusting
the temperature of the hot air.
[0021] The overall precipitation rate of the pre-dried grains 60 is defined by the moisture
content before dried, the moisture content after dried, and the characteristics of
the pre-dried grains 60. Furthermore, when the automatic drying device 10 has four
drying sections 30, the operation process of the automatic drying device 10 is shown
in Fig. 8.
[0022] According to the above-mentioned statements, when the automatic drying method and
the automatic drying device for a grain dryer of the present invention is in use,
multiple drying sections 30 may be connected to the body 20 to enable the pre-dried
grains 60 to be dried by sequentially passing through the drying sections 30. In addition,
the temperature value and the moisture content of each one of the drying sections
30 can be set independently. Furthermore, the temperature sensors 42 and the moisture
meters 41 of the detecting module 40 are respectively deposited in each one of the
drying sections 30 to detect the moisture content of the pre-dried grains 60 in each
one of the drying sections 30, and this may provide a multi-stage detecting effect
to the pre-dried grains 60. When the moisture content of the pre-dried grains 60 does
not meet the set moisture content of each one of the drying sections 30, the temperature
and conveying speed of each one of the drying sections 30 can be adjusted to enable
the moisture content of the pre-dried grains 60 to meet the set moisture content of
each one of the drying sections 30.
[0023] Then, the user may predetermine the moisture content of the pre-dried grains 60 in
each one of the drying sections 30, and this may reduce the time to repeatedly drying
the pre-dried grains 60, the consumption of energy, and the cost of use. Furthermore,
the numbers of the drying sections 30 to enable the pre-dried grains 60 to pass through
can be adjusted according to the user's need. That is, all of the drying sections
30 may not start at the same time, and this may further meet the requirements of energy-saving
and low cost.
1. An automatic drying method for a grain dryer,
characterized in that the automatic drying method has:
a preparing step comprising:
preparing an automatic drying device (10) having a body (20), at least two drying
sections (30), and a detecting module (40);
forming an interior in the body (20);
depositing an input portion (21) on a top end of the body (20);
depositing an output portion (22) on a bottom end of the body (20);
mounting a conduit pipe (23) on an exterior of the body (20) to communicate with the
input portion (21) and the output portion (22);
connecting the at least two drying sections (30) to the body (20) at a spaced interval
between the input portion (21) and the output portion (22) of the body (20), and each
one of the at least two drying sections (30) having a hot air inlet (31), a net-layer
base (32), and at least one exhaust pipe (33);
depositing the hot air inlet (31) of each one of the at least two drying sections
(30) on the exterior of the body (20) to communicate with the interior of the body
(20);
mounting the net-layer base (32) of each one of the at least two drying sections (30)
in the interior of the body (20) to communicate with the hot air inlet (31);
depositing the at least one exhaust pipe (33) of each one of the at least two drying
sections (30) on the exterior of the body (20) to communicate with the net-layer base
(32) of the drying section (30);
connecting the detecting module (40) to the body (20) with at least two moisture meters
(41), at least two temperature sensors (42), a rotary unit (43), and a processing
unit (44);
connecting the at least two moisture meters (41) to the body (20) to enable each one
of the at least two moisture meters (41) to mount below one of the net-layer bases
(32) of the at least two drying sections (30) to detect the moisture content of a
corresponding net-layer base (32);
mounting each one of the at least two temperature sensors (42) in one of the at least
two drying sections (30) to detect the temperature of said corresponding drying section
(30);
mounting the rotary unit (43) in the body (20); and
connecting the pressing unit (44) electrically to each one of the at least two moisture
meters (41), each one of the at least two temperature sensors (42), and the rotary
unit (43);
a parameter-setting step comprising setting a temperature value and a moisture content
of each one of the at least two drying sections (30) by the processing unit (44);
and
a multi-stage drying step comprising:
conveying pre-dried grains (60) into each one of the at least two drying sections
(30) via the input portion (22) and the conduit pipe (23) of the body (20);
importing hot air into the net-layer base (32) of each one of the at least two drying
sections (30) via the hot air inlet (31) to enable the pre-dried grains (60) to absorb
the thermal energy from the hot air to discharge water when the pre-dried grains (60)
pass through the net-layer base (32) of each one of the at least two drying sections
(30);
exhausting the hot air out of the body (20) via the at least one exhaust pipe (33)
of each one of the at least two drying sections (30) after the hot air passes through
the pre-dried grains (60);
detecting the temperature value and the moisture content of each one of the at least
two drying sections (30) respectively by the corresponding temperature sensor (42)
and moisture meter (41);
transferring signals corresponding to the temperature value and the moisture content
of each one of the at least two sections (30) to the processing unit (44);
adjusting the temperature of each one of the at least two drying sections (30) when
the moisture content of each one of the at least two drying sections (30) is different
from the preset moisture content of each one of the at least two drying sections (30);
calculating an overall precipitation rate of the pre-dried grains (60); and
adjusting an operating speed of the rotary unit (43) by the processing unit (44),
sending a signal to the rotary unit (43) and adjusting the temperature of the hot
air.
2. The automatic drying method claimed in claim 1, wherein the preparing step comprises
connecting multiple drying sections (30) to the body (20) of the automatic drying
device (10).
3. The automatic drying method claimed in claim 1 or 2, wherein the preparing step comprises
mounting multiple rotating wheels (431) rotatably in the body (20) below a bottommost
net-layer base (32); and
mounting a rotating motor (432) in the body (20) to connect with the rotating wheels
(431) to enable the rotating wheels (431) to rotate relative to the body (20).
4. The automatic drying method as claimed in claim 3, wherein the parameter-setting step
comprises setting the temperature value and the moisture content of each one of the
at least two drying sections (30) by the processing unit (44) according to a user's
need.
5. An automatic drying device (10) for a grain dryer,
characterized in that the automatic drying device (10) has:
a body (20) having
a top end;
a bottom end;
an interior formed in the body (20) between the top end and the bottom end of the
body (20);
an exterior;
an input portion (21) deposited on the top end of the body (20);
an output portion (22) deposited on the bottom end of the body (20); and
a conduit pipe (23) mounted on the exterior of the body (20) and communicating with
the input portion (21) and the output portion (22);
at least two drying sections (30) connected to the body (20) at a spaced interval
between the input portion (21) and the output portion (22), and each one of the at
least two drying sections (30) having
a hot air inlet (31) deposited on the exterior of the body (20) and communicating
with the interior of the body (20);
a net-layer base (32) mounted in the interior of the body (20) and communicating with
the hot air inlet (31); and
at least one exhaust pipe (33) deposited on the exterior of the body (20) and communicating
with the net-layer base (32); and
a detecting module (40) connected to the body (20) and having
at least two moisture meters (41) connected to the body (20) to enable each one of
the at least two moisture meters (41) to mount below one of the net-layer bases (32)
of the at least two drying sections (30);
at least two temperature sensors (42), and each one of the at least two temperature
sensors (42) mounted in one of the at least two drying sections (30);
a rotary unit (43) mounted in the body (20); and
a processing unit (44) electrically connected to each one of the at least two moisture
meters (41), each one of the at least two temperature sensors (42), and the rotary
unit (43) to calculate and process detected signals provided by each one of the at
least two moisture meters (41) to compute data and to adjust an operating speed of
the rotary unit (43).
6. The automatic drying device as claimed in claim 5, wherein the automatic drying device
(10) has multiple drying sections (30) connected to the body (20) at spaced intervals
between the input portion (21) and the output portion (22) of the body (20).
7. The automatic drying device as claimed in claim 5 or 6, wherein the rotary unit (43)
has
multiple rotating wheels (431) rotatably mounted in the body (20) below a bottommost
net-layer base (32); and
a rotating motor (432) mounted in the body (20) and connected to the rotating wheels
(431) to enable the rotating wheels (431) to rotate relative to the body (20).
8. The automatic drying device as claimed in claim 7, wherein the body (20) has
a spreading tray (24) deposited in the input portion (21) of the body (20);
a receiving box (25) deposited in the output portion (22) of the body (20), connected
to the bottom end of the body (20) below the spreading tray (24), and communicating
with the interior of the body (20); and
an output rod (26) deposited in the output portion (22) of the body (20) and rotatably
mounted in the receiving box (25).
9. The automatic drying device as claimed in claim 8, wherein the body (20) has a buffer
layer (28) mounted between two adjacent drying sections (30) to change the flow directions
of hot air in the two adjacent drying sections (30).
10. The automatic drying device as claimed in claim 9, wherein
the output rod (26) is a screw rod and is driven by a driving motor (27);
the rotating motor (432) is a frequency control motor; and
the processing unit (44) is a microcomputer.
Amended claims in accordance with Rule 137(2) EPC.
1. An automatic drying method for a grain dryer comprising:
a preparing step comprising:
preparing an automatic drying device (10) having a body (20), at least two drying
sections (30), and a detecting module (40);
forming an interior in the body (20);
depositing an input portion (21) on a top end of the body (20);
depositing an output portion (22) on a bottom end of the body (20);
mounting a conduit pipe (23) on an exterior of the body (20) to communicate with the
input portion (21) and the output portion (22);
connecting the at least two drying sections (30) to the body (20) at a spaced interval
between the input portion (21) and the output portion (22) of the body (20), and each
one of the at least two drying sections (30) having a hot air inlet (31), a net-layer
base (32), and at least one exhaust pipe (33);
depositing the hot air inlet (31) of each one of the at least two drying sections
(30) on the exterior of the body (20) to communicate with the interior of the body
(20);
mounting the net-layer base (32) of each one of the at least two drying sections (30)
in the interior of the body (20) to communicate with the hot air inlet (31);
depositing the at least one exhaust pipe (33) of each one of the at least two drying
sections (30) on the exterior of the body (20) to communicate with the net-layer base
(32) of the drying section (30);
connecting the detecting module (40) to the body (20) with at least two moisture meters
(41), at least two temperature sensors (42), a rotary unit (43), and a processing
unit (44);
connecting the at least two moisture meters (41) to the body (20) to enable each one
of the at least two moisture meters (41) to mount below one of the net-layer bases
(32) of the at least two drying sections (30) to detect the moisture content of a
corresponding net-layer base (32);
mounting each one of the at least two temperature sensors (42) in one of the at least
two drying sections (30) to detect the temperature of said corresponding drying section
(30);
mounting the rotary unit (43) in the body (20); and
connecting the pressing unit (44) electrically to each one of the at least two moisture
meters (41), each one of the at least two temperature sensors (42), and the rotary
unit (43), and characterized in that the automatic drying method has:
a parameter-setting step comprising setting a temperature value and a moisture content
of each one of the at least two drying sections (30) by the processing unit (44);
and
a multi-stage drying step comprising:
conveying pre-dried grains (60) into each one of the at least two drying sections
(30) via the input portion (22) and the conduit pipe (23) of the body (20);
importing hot air into the net-layer base (32) of each one of the at least two drying
sections (30) via the hot air inlet (31) to enable the pre-dried grains (60) to absorb
the thermal energy from the hot air to discharge water when the pre-dried grains (60)
pass through the net-layer base (32) of each one of the at least two drying sections
(30);
exhausting the hot air out of the body (20) via the at least one exhaust pipe (33)
of each one of the at least two drying sections (30) after the hot air passes through
the pre-dried grains (60);
detecting the temperature value and the moisture content of each one of the at least
two drying sections (30) respectively by the corresponding temperature sensor (42)
and moisture meter (41);
transferring signals corresponding to the temperature value and the moisture content
of each one of the at least two drying sections (30) to the processing unit (44);
adjusting the temperature of each one of the at least two drying sections (30) when
the moisture content of each one of the at least two drying sections (30) is different
from the preset moisture content of each one of the at least two drying sections (30);
calculating an overall precipitation rate of the pre-dried grains (60); and
adjusting an operating speed of the rotary unit (43) by the processing unit (44),
sending a signal to the rotary unit (43) and adjusting the temperature of the hot
air.
2. The automatic drying method claimed in claim 1, wherein the preparing step comprises
connecting multiple drying sections (30) to the body (20) of the automatic drying
device (10).
3. The automatic drying method claimed in claim 1 or 2, wherein the preparing step comprises
mounting multiple rotating wheels (431) rotatably in the body (20) below a bottommost
net-layer base (32); and
mounting a rotating motor (432) in the body (20) to connect with the rotating wheels
(431) to enable the rotating wheels (431) to rotate relative to the body (20).
4. The automatic drying method as claimed in claim 3, wherein the parameter-setting step
comprises setting the temperature value and the moisture content of each one of the
at least two drying sections (30) by the processing unit (44) according to a user's
need.