BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to a laminar flow device and, more particularly, to
a laminar flow device capable of providing a low-temperature, dustless, and aseptic
environment.
2. Description of the Related Art
[0002] Conventionally, in order to prevent undesired spread of cultured bacteria or viruses
and also to prevent the experimental targets from external contaminants, bio-trials
are usually carried out in an environment of particular conditions such as low-temperature,
dustlessness and asepsis, so as to protect the experimenter and lower the error of
result due to the external contaminants.
[0003] Specifically, most bio-trails such as protein extraction, cytological trial and histo-trial
has to be performed at a low temperature, and some of them performed with enzymes
or specific reagents have even to be processed in a critical range of low temperature
to avoid disadvantages due to external and high temperature and humidity such as protein
degradation, inactive enzyme, and cell/tissue degeneration.
[0004] For example, conventionally, protein extraction is performed by pouring a desired
number of fragmental ice blocks into a container and then inserting a test tube that
receives cells or tissues between the ice blocks in the container, so as to perform
the protein extraction. However, not only an additional ice machine for making the
fragmental ice has to be prepared, but also processes for making the ice may further
result in additional time, water and power consumption. Besides, the test tube may
not be firmly positioned by the ice blocks since the ice blocks may melt into water,
and thus the liquid with the cells or tissues may be poured out or contaminated.
[0005] Moreover, the container should be big enough to receive a lot of ice when it takes
much time for processing the bio-trail. However, this big container may be bigger
than the capacity of a conventional laminar flow device, and a test tube exposed to
the air in a normal room may be contaminated by the floating dust. Therefore, a new
laminar flow device is needed to solve the above problems.
SUMMARY OF THE INVENTION
[0006] It is therefore the primary objective of this invention to provide a laminar flow
device to establish a low-temperature environment for bio-trial.
[0007] Another objective of this invention is providing a laminar flow device to establish
a dustless and aseptic environment for bio-trial, so as to avoid floating dust.
[0008] Still another objective of this invention is providing a laminar flow device to save
the cost and additional time, water and power consumption for manufacture of ice blocks.
[0009] The invention discloses a laminar flow device including a containing body and an
air circulating unit. The containing body is separated into a first containing part
and a second containing part, with a surrounding wall of the first containing part
having a processing window, with a cover being capable of sealing the processing window,
and with the cover having a transparent part. The air circulating unit is received
in the second containing part and expels low-temperature air into the first containing
part.
[0010] The invention further discloses that the first and second containing parts are separated
by a partition, the first containing part has a processing room and the second containing
part has a receiving room in communication with the processing room, and two openings
are formed in the partition for airflow to pass through.
[0011] The invention further discloses that the transparent part is made of a transparent
material, and a plurality of defogger lines is formed on the transparent part.
[0012] The invention further discloses that a light emitting member is mounted on the inner
wall of the first containing part and the light emitting member comprises an ultraviolet
sterilizer and an illuminative light, with the ultraviolet sterilizer capable of irradiating
UV light and the illuminative light capable of irradiating visible light respectively.
[0013] The invention further discloses that the air circulating unit comprises a compressor
module, a temperature-regulating module and an autoclave-sterilizing module, which
are all positioned on the partition, with the temperature-regulating module arranged
at one of the two openings to inhale the air in the processing room, and with the
autoclave-sterilizing module arranged at the other opening and sterilizing the inhaled
air.
[0014] The invention further discloses that an air tube is further comprised, wherein the
air tube has an end connecting with the autoclave-sterilizing module and another end
communicating with the processing room to expel the low-temperature air.
[0015] The invention further discloses that the cover is pivotably coupled with an edge
defining the processing window.
[0016] The invention further discloses that the cover is coupled with a balancing module.
[0017] The invention further discloses that the balancing module comprises a chain, a gear
wheel set and a weight, two ends of the chain are respectively connected with the
cover and the weight, and the gear wheel set movably hold the chain for the chain
to slide.
[0018] The invention further discloses that a controller electrically is connected with
the air circulating unit and attached to an outer face of the second containing part.
[0019] The invention further discloses that a plurality of wheels is arranged beneath the
containing body.
[0020] The invention further discloses that a first auxiliary window and a second auxiliary
window in the surrounding wall of the first containing part are formed, with both
of the first and second auxiliary windows communicating with the processing room and
capable of being sealed by covers.
[0021] The invention further discloses that the first auxiliary window is formed beneath
the processing window while the cover capable of sealing the first auxiliary window
is in the form of a sliding door.
[0022] The invention further discloses that an additional second auxiliary window is formed,
with the two second auxiliary windows formed on two opposite sides of the first containing
part.
[0023] The invention further discloses that at least one socket is arranged in the first
containing part.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The present invention will become more fully understood from the detailed description
given hereinafter and the accompanying drawings which are given by way of illustration
only, and thus are not limitative of the present invention, and wherein:
Fig. 1 shows a perspective view of a laminar flow device according to a first embodiment
of the invention.
Fig. 2 shows a cross-sectional view of the laminar flow device of the first embodiment
of the invention.
Fig. 3 shows a cross-sectional view of a laminar flow device of a second embodiment
of the invention.
Fig. 4 shows a cross-sectional view of the laminar flow device of the second embodiment
of the invention in use.
[0025] In the various figures of the drawings, the same numerals designate the same or similar
parts. Furthermore, when the term "first," "second," and similar terms are used hereinafter,
it should be understood that these terms refer only to the structure shown in the
drawings as it would appear to a person viewing the drawings, and are utilized only
to facilitate describing the invention.
DETAILED DESCRIPTION OF THE INVENTION
[0026] Fig. 1 shows a laminar flow device according to a first embodiment of the invention,
which includes a containing body 1 and an air circulating unit 2 received inside the
containing body 1 to maintain a low-temperature environment in the containing body
1, with the said "low-temperature" having a temperature degree lower than 25°C and
preferably between 1-8 °C.
[0027] The containing body 1 is preferably made of acrylic ester, so as to provide advantages
such as light and qualified performances in pressure resistance and high temperature
resistance. In this embodiment, a partition 11 is positioned inside the containing
body 1 to separate the inner room of the containing body 1 into a first containing
part 1a and a second containing part 1b, with the first containing part 1a forming
a processing room S1 and the second containing part 1b forming a receiving room S2
in communication with the processing room S1. In this embodiment, there are two openings
111 formed in the partition 11 for airflow to pass through, while a filter may be
formed across one of the opening 111 taken as an air inlet to filter out the floating
dust in the inhaled air and maintain the quality of the air in the processing room
S1. Specifically, the first containing part 1a is made of transparent and acrylic
material.
[0028] A surrounding wall of the first containing part 1a has a processing window 12 with
a cover 13 capable of sealing the processing window 12. In this embodiment, the processing
window 12 is preferably formed in an inclined face of the surrounding wall for a user
to conveniently put objects into the processing room S1 or perform biological processes
therein via the processing window 12. Preferably, the cover 13 is pivotably coupled
with an edge defining the processing window 12, while the cover 13 further has a transparent
part 131 made of glasses, with a plurality of defogger lines 132 formed on an inner
side of the transparent part 131 to heat the cooled surface of the transparent part
131 of the cover 13 for defogging. Alternatively, for the same reason, the inner side
of the transparent part 131 can also be formed of a nano surface to avoid the adhesion
of sweat.
[0029] Additionally, there can be at least one light emitting member 14 inside the first
containing part 1a, which may include an ultraviolet sterilizer 141 and an illuminative
light 142 mounted on the inner wall of the first containing part 1a, preferably mounted
on an bottom face of the partition 11, so that the ultraviolet sterilizer 141 and
illuminative light 142 can irradiate UV light and visible light respectively in the
processing room S1. It should be noted that the light emitting member 14 is mainly
provided to produce the UV light and visible light, so that a position in which the
light emitting member 14 is arranged can be any position in the first containing part
1a as long as the UV light of the ultraviolet sterilizer 141 and the visible light
of the illuminative light 142 can be casted to objects inside the processing room
S 1.
[0030] Referring to Fig. 1 again, there are a first auxiliary window 15 and a second auxiliary
window 16 in the surrounding wall of the first containing part 1a, both of them communicating
with the processing room S1, while the first auxiliary window 15 can be sealed by
a cover 151 and the second auxiliary window 16 can be sealed by another cover 161.
In this embodiment, the first auxiliary window 15 is formed beneath the processing
window 12 while the cover 151 is in the form of a sliding door for the user to stretch
hands into the processing room S1 through the first auxiliary window 15. The second
auxiliary window 16 is formed on a part of the surrounding wall that is adjacent to
the inclined face where the processing window 12 formed, and the second auxiliary
window 16 is provided for another user to stretch hands into the processing room S1
so as to assist the performance of biological processes. Preferably, there can also
be a plurality of second auxiliary windows 16, such as two second auxiliary windows
16 formed on two opposite sides of the first containing part 1a, and any one of them
that is not in use can be sealed by the cover 161.
[0031] Furthermore, there can also be at least one socket 17 in the first containing part
1a so as to supply any object that has to be electrically actuated with electrical
power. Besides, there can be a plurality of wheels 18 beneath the containing body
1 for convenience in movement.
[0032] Please further refer to Figs. 1 and 2. The air circulating unit 2 is received inside
the second containing part 1b and expels air with low temperature into the first containing
part 1a. In this embodiment, the air circulating unit 2 includes a compressor module
21, a temperature-regulating module 22 and an autoclave-sterilizing module 23, which
are positioned on the partition 11 and connect with each other. The temperature-regulating
module 22 is preferably arranged at one of the openings 111 to inhale the air in the
processing room S1, and the autoclave-sterilizing module 23 expels cool and sterilized
air into the processing room S through the other opening 111. Specifically, the air
inhaled by the temperature-regulating module 22 initially passes through the filter
to get rid of the floating dust therein, and then the temperature of the inhaled air
is lowered by the temperature-regulating module 22. Finally, the low-temperature air
is sterilized by the autoclave-sterilizing module 23 before entering the processing
room S1. Additionally, a dehumidifier can be interconnected between the temperature-regulating
module 22 and the autoclave-sterilizing module 23.
[0033] Please be noted that the air circulating unit 2 is adapted to lower the temperature
of the inhaled air, preferably to 1-8°C, and to remove dust and to sterilize. Any
kind of conventional machine used capable of such functions is suitable for use in
this invention, and thus the way in which the air circulating unit 2 performs is not
limited.
[0034] Please refer to Fig. 1 still. There can be a controller 3 electrically connected
with the air circulating unit 2 and preferably attached to an outer face of the second
containing part 1b, so that the user can adjust the temperature of the air passing
through the air circulating unit 2.
[0035] The above illustrated laminar flow device has the following adventures. First, with
the air circulating unit 2, the air in the processing room S1 of the first containing
part 1a can be continuously cooled and dehumidified to maintain its temperature at
about 1-8°C, so that the environment of the processing room S1 is qualified for biological
processes. Second, the defogger lines 132 can efficiently prevent the adhesion of
sweat caused by temperature difference, so as to provide a clear view for the user
when a bio-trail is carried out. Therefore, not only the time consumption and cost
for manufacture of fragmental ice blocks are avoided, but a low-temperature, dustless
and aseptic environment is maintained, so that the result of the bio-trail is accurate.
[0036] Referring to Fig. 3, which shows a laminar flow device according to a second embodiment
of the invention, with this laminar flow device also including a containing body 4
and an air circulating unit 5 received inside the containing body 4 to maintain a
low-temperature environment in the containing body 4.
[0037] The containing body 4 is separated into a first containing part 4a and a second containing
part 4b by a partition 41, and a surrounding wall of the first containing part 4a
has a processing window 42 with a cover 43 capable of sealing the processing window
42, with the first containing part 4a forming an processing room S1' and the second
containing part 4b forming a receiving room S2' in communication with the processing
room S1'. The difference between the containing body 4 of this embodiment and the
containing body 1 of the first embodiment lies in that the cover 43 of the containing
body 4 is coupled with a balancing module 44, and thus the balancing module 44 can
keep the position of the cover 43 relative to the processing window 42. Specifically,
the balancing module 44 has a chain 441, a gear wheel set 442 and a weight 443. Two
ends of the chain 441 are respectively connected with the cover 43 and the weight
443. The gear wheel set 442 is adapted to movably hold the chain 441 for the chain
441 to slide.
[0038] Now please refer to Figs. 3 and 4. The air circulating unit 5 includes a compressor
module 51, a temperature-regulating module 52 and an autoclave-sterilizing module
53, so as to expel low-temperature, dustless and aseptic air into the first containing
part 4a and maintain the dustless and aseptic environment of the processing room S1'.
The difference between the air circulating unit 5 of this embodiment and the air circulating
unit 2 of the first embodiment lies in that an additional air tube 54 is used, with
an end of the air tube 54 connecting with the autoclave-sterilizing module 53 and
the other end of the air tube 54, which serves as a free end 541, communicating with
the processing room S1'. The air tube 54 is specifically used to guide the expelled
air to a desired part of the processing room S1'. Particularly, the free end 541 is
preferably arranged adjacent to a lower edge of the processing window 42 and jets
out the expelled air upwards. Therefore, since the pressure of the expelled air is
larger than that of the air outside the containing body 4, the outside air is prevented
from entering the containing body 4 via the processing window 42.
[0039] Although the invention has been described in detail with reference to its presently
preferable embodiment, it will be understood by one of ordinary skill in the art that
various modifications can be made without departing from the spirit and the scope
of the invention, as set forth in the appended claims.
1. A laminar flow device, comprising:
a containing body (1; 4) separated into a first containing part (1a; 4a) and a second
containing part (1b; 4b), with a surrounding wall of the first containing part (1a;
4a) having a processing window (12; 42), with a cover (13; 43) being capable of sealing
the processing window (12; 42), and with the cover (13; 43) having a transparent part
(131),
wherein the laminar flow device is characterized in that further comprises an air circulating unit (2; 5) received in the second containing
part (1b; 4b) and expelling low-temperature air into the first containing part (1a;
4a).
2. The laminar flow device as claimed in claim 1, wherein the first and second containing
parts (1a ' 1b; 4a ' 4b) are separated by a partition (11), the first containing part
(1a; 4a) has a processing room (S1) and the second containing part (1b; 4b) has a
receiving room (S2) in communication with the processing room (S1), and two openings
(111) are formed in the partition (11) for airflow to pass through.
3. The laminar flow device as claimed in claim 1, wherein the transparent part (131)
is made of a transparent material, and a plurality of defogger lines (132) is formed
on the transparent part (131).
4. The laminar flow device as claimed in claim 1, wherein a light emitting member (14)
is mounted on the inner wall of the first containing part (1a; 4a) and the light emitting
member (14) comprises an ultraviolet sterilizer (141) and an illuminative light (142),
with the ultraviolet sterilizer (141) capable of irradiating UV light and the illuminative
light (142) capable of irradiating visible light respectively.
5. The laminar flow device as claimed in claim 2, wherein the air circulating unit (2;
5) comprises a compressor module (21; 51), a temperature-regulating module (22; 52)
and an autoclave-sterilizing module (23; 53), which are all positioned on the partition
(11), with the temperature-regulating module (22; 52) arranged at one of the two openings
(111) to inhale the air in the processing room (S1), and with the autoclave-sterilizing
module (23; 53) arranged at the other opening (111) and sterilizing the inhaled air.
6. The laminar flow device as claimed in claim 5 further comprising an air tube (54),
wherein the air tube (54) has an end connecting with the autoclave-sterilizing module
(23; 53)and another end communicating with the processing room (S1) to expel the low-temperature
air.
7. The laminar flow device as claimed in claim 1, wherein the cover (13; 43) is pivotably
coupled with an edge defining the processing window (12; 42).
8. The laminar flow device as claimed in claim 1, wherein the cover (13; 43) is coupled
with a balancing module (44).
9. The laminar flow device as claimed in claim 8, wherein the balancing module (44) comprises
a chain (441), a gear wheel set (442) and a weight (443), two ends of the chain (441)
are respectively connected with the cover (13; 43) and the weight (443), and the gear
wheel set (442) movably hold the chain (441) for the chain (441) to slide.
10. The laminar flow device as claimed in claim 1 further comprising a controller (3)
electrically connected with the air circulating unit (2; 5) and attached to an outer
face of the second containing part (1b; 4b).
11. The laminar flow device as claimed in claim 1, wherein a plurality of wheels (18)
is arranged beneath the containing body (1; 4).
12. The laminar flow device as claimed in claim 2, wherein a first auxiliary window (15)
and a second auxiliary window (16) in the surrounding wall of the first containing
part (1b; 4b) are formed, with both of the first and second auxiliary windows (15
' 16) communicating with the processing room (S1) and capable of being sealed by covers
(151 ' 161).
13. The laminar flow device as claimed in claim 12, wherein the first auxiliary window
(15) is formed beneath the processing window (12; 42) while the cover (151) capable
of sealing the first auxiliary window (15) is in the form of a sliding door.
14. The laminar flow device as claimed in claim 12, wherein an additional second auxiliary
window (16) is formed, with the two second auxiliary windows (16) formed on two opposite
sides of the first containing part (1a; 4a).
15. The laminar flow device as claimed in claim 1, wherein at least one socket (17) is
arranged in the first containing part (1a; 4a).
Amended claims in accordance with Rule 137(2) EPC.
1. A laminar flow device, comprising:
a containing body (1; 4) separated into a first containing part (1a; 4a) and a second
containing part (1b; 4b), with a surrounding wall of the first containing part (1a;
4a) having a processing window (12; 42), with a cover (13; 43) being capable of sealing
the processing window (12; 42), and with the cover (13; 43) having a transparent part
(131),
wherein the laminar flow device further comprises an air circulating unit (2; 5) received
in the second containing part (1b; 4b) and configured to expel air into the first
containing part (1a; 4a),
wherein the first and second containing parts (1a, 1b; 4a, 4b) are separated by a
partition (11), the first containing part (1a; 4a) has a processing room (S1) and
the second containing part (1b; 4b) has a receiving room (S2) in communication with
the processing room (S1), and two openings (111) are formed in the partition (11)
for airflow to pass through,
wherein the air circulating unit (2; 5) comprises a compressor module (21; 51), a
temperature-regulating module (22; 52) and an autoclave-sterilizing module (23; 53),
which are all positioned on the partition (11), with the temperature-regulating module
(22; 52) arranged at one of the two openings (111) to inhale the air in the processing
room (S1), and with the autoclave-sterilizing module (23; 53) arranged at the other
opening (111) and sterilizing the inhaled air.
2. The laminar flow device as claimed in claim 1, wherein the transparent part (131)
is made of a transparent material, and a plurality of defogger lines (132) is formed
on the transparent part (131).
3. The laminar flow device as claimed in claim 1, wherein a light emitting member (14)
is mounted on the inner wall of the first containing part (1a; 4a) and the light emitting
member (14) comprises an ultraviolet sterilizer (141) and an illuminative light (142),
with the ultraviolet sterilizer (141) capable of irradiating UV light and the illuminative
light (142) capable of irradiating visible light respectively.
4. The laminar flow device as claimed in claim 1 further comprising an air tube (54),
wherein the air tube (54), has an end connecting with the autoclave-sterilizing module
(23; 53) and another end communicating with the processing room (S1) to expel the
air.
5. The laminar flow device as claimed in claim 1, wherein the cover (13; 43) is pivotably
coupled with an edge defining the processing window (12; 42).
6. The laminar flow device as claimed in claim 1, wherein the cover (13; 43) is coupled
with a balancing module (44).
7. The laminar flow device as claimed in claim 6, wherein the balancing module (44)
comprises a chain (441), a gear wheel set (442) and a weight (443), two ends of the
chain (441) are respectively connected with the cover (13; 43) and the weight (443),
and the gear wheel set (442) movably hold the chain (441) for the chain (441) to slide.
8. The laminar flow device as claimed in claim 1 further comprising a controller (3)
electrically connected with the air circulating unit (2; 5) and attached to an outer
face of the second containing part (1b; 4b).
9. The laminar flow device as claimed in claim 1, wherein a plurality of wheels (18)
is arranged beneath the containing body (1; 4).
10. The laminar flow device as claimed in claim 1, wherein a first auxiliary window (15)
and a second auxiliary window (16) in the surrounding wall of the first containing
part (1b; 4b) are formed, with both of the first and second auxiliary windows (15,
16) communicating with the processing room (S1) and capable of being sealed by covers
(151, 161).
11. The laminar flow device as claimed in claim 10, wherein the first auxiliary window
(15) is formed beneath the processing window (12; 42) while the cover (151) capable
of sealing the first auxiliary window (15) is in the form of a sliding door.
12. The laminar flow device as claimed in claim 10, wherein an additional second auxiliary
window (16) is formed, with the two second auxiliary windows (16) formed on two opposite
sides of the first containing part (a; 4a).
13. The laminar flow device as claimed in claim 1, wherein at least one socket (17) is
arranged in the first containing part (1a; 4a).