Field of the invention
[0001] The present invention relates to electrostatographic printing apparatus comprising
air bearings for guiding a recording member in the form of an endless belt, along
an endless path. The invention relates in particular to an electrophotographic colour
printing machine.
Background of the invention
[0002] In an electrophotographic printing machine, a photoconductive member is charged to
a substantially uniform potential to sensitize the surface thereof. The charged portion
of the photoconductive member is image-wise exposed. Exposure of the charged photoconductive
member selectively dissipates the charge thereon in the irradiated areas. As a result,
an electrostatic latent image is recorded on the photoconductive member corresponding
to the informational areas contained in the original document being reproduced. After
the electrostatic latent image has been recorded on the photoconductive member, the
latent image is developed by bringing toner into contact therewith. This forms a developed
toner image on the photoconductive member which is subsequently transferred to a copy
sheet. The copy sheet is heated to permanently affix the toner image thereto in image
configuration.
[0003] Multicolour electrophotographic printing is substantially identical to black-and-white
printing. However, rather than forming a single latent image on the photoconductive
surface, successive latent images corresponding to different colours are recorded
thereon. Each single colour electrostatic latent image is developed with toner of
a colour complementary thereto. This process is repeated a plurality of cycles for
differently coloured images and their respective complementarily coloured toner. Each
single colour toner image is transferred to the copy sheet in superimposed registration
with the prior toner image, thereby creating a multilayered toner image on the copy
sheet. Thereafter, the multi-layered toner image is permanently fixed to the receptor
sheet creating a colour copy or print. The developer material may be a liquid material
or a powder material.
[0004] In order to successfully transfer different colour toner images to the copy sheet,
the sheet can move in a path enabling successive different colour images to be transferred
thereto. In this way the different colour toner images (e.g..magenta, cyan, yellow
and black toner images) are transferred to the sheet.
[0005] One known technique for carrying out the described process comprises the use of an
endless photoconductive belt onto which the distinct separation toner images are formed
in succession, and from which these images are transferred in timed relation in coinciding
relationship onto a receptor sheet to obtain a multi-layered toner image.
[0006] The movement of suchlike endless photoconductive belt is a delicate point, since
it must meet high standards of reproducibility and uniformity in order to obtain a
desired image quality.
[0007] It is the aim of the present invention to provide an electrostatographic printing
apparatus with a recording member in the form of an endless belt, such endless belt
being guided along an endless path by air bearings providing an improved belt guidance.
[0008] We are aware of United States patent No US-A-4197002 which describes an apparatus
in which a belt is supported for movement in a pre-determined path. The lateral movement
of the belt relative to a pre-determined path is controlled. A pneumatic system provides
pressurised fluid to at least partially support the belt and control the lateral movement
thereof.
[0009] We are also aware of Japanese patent application JP-A-57/064255 (Fuji Xerox Co Ltd)
which describes the use of a sprocket engaging both ends of a photosensitive belt
driving roller which is constituted so that an air current is blown against the belt.
The friction between the belt and the roller is thereby reduced and the tracking thereof
is improved.
SUMMARY OF THE INVENTION
[0010] In accordance with the present invention, there is provided an air bearing unit for
transport of an endless electrostatographic recording belt over a predetermined path,
said air bearing unit being characterised by being formed of:
- two belt-edge supporting end sections, arranged for producing air cushions for supporting
the corresponding edge of the endless belt,
- two air cushion relief sections, each situated inwardly adjacent to the corresponding
belt-edge supporting sections and having a circumferential size which is smaller than
that of said end belt-edge supporting end sections, and
- an intermediate section located between said belt-edge supporting end sections for
providing support for the belt.
[0011] The invention also provides an electrostatographic printing apparatus which comprises
at least one air bearing unit as defined above, allowing for transport of an endless
electrostatographic recording belt over an endless path.
[0012] It has been shown that the printing results as well as the lifetime of a recording
member in the form of an endless belt in a printing apparatus according to the invention
are superior to these of a recording member which is guided by guiding rollers only.
[0013] The mentioned intermediate section of an air bearing in a printing apparatus according
to the invention may have a uniform axial cross section and a length which is at least
equal to one third the length of the air bearing, but it may as well be composed of
a plurality of axially spaced belt support sections. It should be understood that
prevention of exaggerated inward bending of a central portion (i.e. towards the centre
of the bearing) of the endless belt is important since such bending will cause lateral
compression forces in the belt which may produce streaklike or fold-like (viz. lengthwise
of the belt) damages of the surface of the belt, or/and of a photoconductive layer
which has been coated thereon. Suchlike damages often do not (completely) disappear
as the belt becomes straight again in the transverse direction.
[0014] Suitable embodiments of the invention are as follows.
[0015] The mentioned intermediate belt-supporting sections are arranged to produce belt-supporting
air cushions.
[0016] The belt-supporting force produced by said intermediate belt supporting sections
may be smaller than that produced by said end sections.
[0017] The air bearing sections producing an air cushion may have a circular cross section.
However, if an electrostatographic printing apparatus according to the invention is
arranged for transferring a toner image from the endless belt onto a receptor support
at a locus where said endless belt is supported by a said air bearing, such receptor
support following a linear path at such locus, it may desirable for said air bearing
to have a cross section the curvature of which is greater at the place where such
receptor support leaves contact with the endless belt than at the place where such
support does not yet contact the endless belt. This may be interesting in case the
endless belt is supported by air bearings of a relatively large diameter, say more
than 70 mm, since electrostatic forces may prevent a spontaneous release of the sheet
by the curved belt. Such locally increased curvature promotes the easy release of
the receptor sheet from the belt.
[0018] However, a greater belt curvature causes a higher belt pressure towards its bearing
whereby the risk may arise for the belt to contact the bearing. It is therefore interesting
in such case to have a locally increased belt-supporting pressure and suchlike pressure
may be suitably adjustable independently of the main pressure of the bearing. Therefore,
the invention also contemplates an air bearing for an endless belt, the belt bearing
pressure of which is variable angularly of the bearing.
[0019] The term "printing apparatus" stands in the first place for a printer which creates
the output printing image by laying out the image in a series of horizontal scan lines,
each line having a given number of pixels per inch. An exposure station for exposing
the recording may comprise a laser with a rotating mirror block, a LED array, a uniform
light source and a plurality of individually controllable light valves, an arrangement
with deformable micromirror devices, etc. However, said term encompasses also an apparatus
in which the exposure of the recording member occurs by the optical projection of
an integral image, such as in a copier.
[0020] The term "recording member" refers in the first place to an endless belt which is
made of, or comprises a layer of an organic or inorganic photoconductor which can
be uniformly electrostatically charged and next image-wise discharged by appropriate
integral or scanning-wise exposure. However, this term also encompasses an endless
belt made of an organic film having no photoconductivity at all, and which is image-wise
electrostatically charged by means of an ion radiation array. For that reason the
term "electrostatographic" has been used in the statement of invention.
[0021] A suitable carrier for such member is a polyethylene terephthalate film in a thickness
ranging from 50 to 300 µm.
[0022] The invention will now be further described, purely by way of example, with reference
to the accompanying drawings, in which:
Figure 1 is a diagrammatic view of one embodiment of a known duplex electrophotographic
printer,
Figure 2 is an exploded view of one embodiment of an air bearing for use in the printer
according to Figure 1,
Figure 3 is an exploded view of another embodiment of an air bearing for use in the
printer according to Figure 1,
Figure 4 is an isometric view of still another embodiment of an air bearing for use
in the printer according to Figure 1,
Figure 5 is an isometric view of the primary feed pipe of the bearing of Figure 4,
Figure 6 is an isometric detail view of one belt supporting section of the air bearing
according to Figure 4,
Figure 7 is a longitudinal sectional view of the bearing of Figure 4,
Figure 8a is a cross-sectional view of the bearing of Figure 4 on line VIII-VIII,
the secondary feed pipe taking a first position,
Figure 8b is a cross-sectional view of the bearing of Figure 4 on line VIII-VIII,
the secondary feed pipe taking a second position, and
Figure 8c is a cross-sectional view of the bearing of Figure 4 on line VIII-VIII,
the secondary feed pipe taking a third position.
DETAILED DESCRIPTION OF THE INVENTION
[0023] Figure 1 shows a diagrammatic representation of one embodiment of an electrophotographic
duplex printer.
[0024] The printer comprises a lighttight housing 10 which has at its inside a stack 12
of sheets to be printed loaded on a platform 13 the height of which is adjusted in
accordance with the size of the stack, and at the outside a platform 14 onto which
the printed sheets are received.
[0025] A sheet to be printed is removed from stack 12 by a dispensing mechanism 15 which
may be any mechanism known in the art such as a friction roller, a friction pad, or
the like for removing the top sheet from stack 12.
[0026] The removed sheet is passed through an alignment station 16 which ensures the longitudinal
and lateral alignment of the sheet. As the sheet leaves the alignment station, it
follows a straight horizontal path 17 up to outlet 18 of the printer.
[0027] The following processing stations are located along said path.
[0028] A first image forming station 20 for applying a colour image to the obverse side
of the sheet and a second station 21 for applying a colour image to the reverse sheet
side. A buffer station 23 with an endless belt 24 for transporting the sheet to fuser
station 25 while allowing the speed of the sheet to decrease because the speed of
fuser 25 is lower than the speed of image formation.
[0029] Both image forming stations 20 and 21 being equal to each other, only station 20
will be described in more detail hereinafter.
[0030] An endless photoconductor belt 26 is guided over a plurality of idler rollers 27
to follow a path in the direction of arrow 22 to advance successive portions of the
photoconductive surface sequentially through the various processing stations disposed
about the path of movement thereof. The belt suitably can be a polyethylene terephthalate
support which is provided at the outside of its loop with a subbing layer onto which
a photoconductive layer has been coated. Means is provided (not shown) for driving
the belt at a uniform speed and for controlling its lateral position.
[0031] Initially, a portion of photoconductive belt 26 passes through charging station 28.
At the charging station, a corona-generating device electrostatically charges the
belt to a relatively high, substantially uniform potential. Next, the belt is rotated
to the exposure station 29. The exposure station includes a ROS (raster output scanner)
30 with a laser with a rotating polygon mirror block which creates the output printing
image by laying out the image in a series of horizontal scan lines, each line having
a given number of pixels per inch. Station 29 will expose the photoconductive belt
to successively record four latent colour separation images. The latent images are
developed with magenta, cyan, yellow and black developer material, respectively. These
developed images are transferred on the print sheet in superimposed registration with
one another to form a multicolour image on the sheet. The ROS receives its input signal
from IPS (image processing system) 31. This system is the electronic control device
which prepares and manages the data inflow to scanner 30. A user interface UI, indicated
by reference numeral 32, is in communication with the IPS and enables the operator
to control the various operator-adjustable functions. IPS 31 receives its signal from
input 34. This input can be the output of a RIS (raster input scanner) in case the
apparatus is a so-called intelligent copier. In such case, the apparatus contains
document illumination lamps, optics, a mechanical scanning drive, and a charge-coupled
device. The RIS captures the entire original document and converts it to a series
of raster scan lines and measures a set of primary colour densities, i.e. red, green
and blue densities at each point of the original document. However, input 34 can as
well receive an image signal resulting from an operator operating an image processing
station.
[0032] After an electrostatic latent image has been recorded on photoconductive belt 26,
belt 26 advances this image to the development station. This station includes four
individual developer units 35, 36, 37 and 38.
[0033] The developer units are of a type generally referred to in the art as "magnetic brush
development units". Typically, a magnetic brush development system employs a magnetizable
developer material including magnetic carrier granules having toner particles adhering
triboelectrically thereto. The developer material is continuously brought through
a directional flux field to form a brush of developer material. The developer particles
are continuously moving so as to provide the brush consistently with fresh developer
material. Development is achieved by bringing the brush of developer material into
contact with the photoconductive surface. Developer units 35, 36 and 37, respectively,
apply toner particles of a specific colour which corresponds to the compliment of
the specific colour-separated electrostatic latent image recorded on the photoconductive
surface. The colour of each of the toner particles is adapted to absorb light within
a preselected spectral region of the electromagnetic wave spectrum. For example, an
electrostatic latent image formed by discharging the portions of charge on the photoconductive
belt corresponding to the green regions of the original document will record the red
and blue portions as areas of relatively high charge density on photoconductive belt
10, while the green areas will be reduced to a voltage level ineffective for development.
The charged areas are than made visible by having developer unit 35 apply green absorbing
(magenta) toner particles onto the electrostatic latent image recorded on photoconductive
belt 26. Similarly, a blue separation is developed by developer unit 36 with blue
absorbing (yellow) toner particles, while the red separation is developed by developer
unit 37 with red absorbing (cyan) toner particles. Developer unit 38 contains black
toner particles and may be used to develop the electrostatic latent image formed from
black information or text, or to supplement the colour developments. Each of the developer
units is moved into and out of an operative position. In the operative position, the
magnetic brush is closely adjacent to the photoconductive belt, whereas in the non-operative
position, the magnetic brush is spaced therefrom. During development of each electrostatic
latent image only one developer unit is in the operative position, the remaining developer
units being in their non-operative one. This insures that each electrostatic latent
image is developed with toner particles of the appropriate colour without inter-mingling.
In Figure 1, developer unit 35 has been shown in its operative position. Finally,
each unit comprises a toner hopper, such as hopper 39 shown for unit 35, for supplying
fresh toner to the developer which becomes progressively depleted by the development
of the electrostatic charge images.
[0034] After their development, the toner images are moved to toner image transfer stations
40, 41, 42 and 43 where they are transferred on a sheet of support material, such
as plain paper or a transparent film. At a transfer station, a sheet follows a rectilinear
path 17 into contact with photoconductive belt 26. The sheet is advanced in synchronism
with the movement of the belt. After transfer of the four toner images, the belt following
an upward course is cleaned in a cleaning station 45 where a rotatable fibrous brush
or the like is maintained in contact with the photoconductive belt 26 to remove residual
toner particles remaining after the transfer operation. Thereafter, lamp 46 illuminates
the belt to remove any residual charge remaining thereon prior to the start of the
next cycle.
[0035] The operation of the printer described hereinbefore is as follows.
[0036] The magenta latent image being exposed by station 29 on photoconductive belt 26,
this image is progressively developed by station 35 being in its operative position
as the belt moves therethrough. Upon completion of the exposure of the magenta image,
the yellow image becomes exposed. During the yellow exposure, the developed magenta
image is transported past inactive stations 36, 37 and 38 while toner transfer stations
40 to 43 still are inoperative too.
[0037] As the development of the magenta latent image is finished, magenta development station
35 is withdrawn to its inoperative position and after the trailing edge of the magenta
image has passed yellow development station 36, this station is put in the operative
position to start the development of the yellow latent image. While the latter portion
of the yellow latent image is being developed, the exposure of the cyan latent image
at 29 starts already.
[0038] The described processes of imagewise exposure and colour development continue until
the four colour separation images have been formed in successive spaced relationship
on the photoconductive belt.
[0039] A sheet which has been taken from stack 12 and kept in readiness in aligner 16, is
then advanced and reaches toner transfer station 40 where at that moment the last
formed toner image, viz. the black one, is ready to enter the station. Thus, the lastly
formed toner image is the first to become transferred to a sheet. The firstly formed
toner image, viz. the magenta one, takes with its leading edge a position on the belt
as indicated by the cross 62 and will thus be transferred last. The other two toner
images take positions with their leading edges as indicated by crosses 63 and 64,
respectively.
[0040] Thus, the timing of exposure of the four distinct images, the relative position of
these images on the photoconductive belt and the lengths of the path of this belt
between the successive transfer stations are such that as a paper sheet follows a
linear path through these stations, the partly simultaneous transfer of the distinct
toner images to the paper sheet is such that a perfect registering of these images
is obtained.
[0041] The sheet bearing a colour toner image on its obverse side produced as described
hereinbefore, is now passed through image forming station 21 for applying a colour
toner image to the reverse side of the sheet.
[0042] The sheet electrostatically bearing the colour images is then received on the endless
belt 24 of buffer station 23 before entering fuser station 25.
[0043] The length of buffer station 23 is sufficient for receiving the largest sheet size
to be processed in the apparatus.
[0044] Fusing station 25 can be of known construction, comprising rubber rollers heated
internally or externally by radiation or convection, and the fused sheet is finally
received on platform 14.
[0045] More details about the described printer can be found in our co-pending application
mentioned in the introduction of this specification. Idler rollers 27 that determine
for photoconductive belt 26 an endless loop comprising a number of sub-loops as shown,
must be carefully rotationally journalled in order to obtain a satisfactory belt path.
They must also have a low rotational friction in order not to produce tension forces
in the belt that would exceed desirable operational values.
[0046] Therefore, in accordance with the present invention, all or a number of these rollers
are replaced by stationary air bearings.
[0047] A first embodiment of a suitable air bearing is shown in Figure 2. This bearing is
arranged for supporting endless photoconductor belt 26 which it is angularly wrapped
over approximately 180 degrees around the bearing. The belt may run over the bearing
with its rearside facing inwardly, but the belt may also face the bearing with its
photoconductive layer. This latter situation is notably the case for the bearings
determining the sub-loops comprising the numerals 62, 63 and 64 in Figure 1.
[0048] Referring to Figure 2, an air bearing 50 is illustrated which is made from a relatively
thick-walled plastic tube 52 which has been machined on a lathe to obtain two belt
supporting end sections 53 and 54 with bores 55 and 56 arranged over an arc of 180
angular degrees, two collars 57 and 58 for limiting extreme transverse movement of
the belt 26 shown in dash-and-dot lines, an intermediate section 59 without bores
having a diameter equal to or smaller than that of sections 53 and 54, and two air
cushion relief sections 60 and 61 having a diameter smaller than that of sections
53 and 54. Typically section 59 has a diameter that is 1 mm smaller than that of sections
53 and 54.
[0049] Two flanges 66 and 67 are glued in the corresponding ends of the bearing tube. They
each are provided with two hose stems such as 68 and 69 shown for one flange. Feeding
of pressurized air into the bearings occurs through the four stems simultaneously.
The reason for providing two stems at each end is that they allow the mounting of
the bearing in an accurate pre-determined angular position, what would be more difficult
if central stems only were provided at each end.
[0050] In use of the bearing, the endless belt 26 remains spaced from belt-supporting sections
53 and 54 over a radial spacing which may range from 0 to 0.5 mm approximately. This
spacing may be equal for section 59 if this section has a diameter equal to that of
end sections 53 and 54, but suitably the central section has a diameter slightly smaller
than that of the outer ones so that the belt is allowed to very slightly curve inwardly
of the bearing before touching supporting section 59. Notable inward bending, e.g.
at the start of the belt motion by the driving monumentum of a belt driving roller
(pair) is, however, excluded since at that moment the belt will contact this section
59 whereby further flexing is prevented. Brief rubbing contact resulting therefrom
will not necessarily damage the inside belt surface. On the contrary, excessive camber
of the belt would cause transverse compression forces in the belt producing longitudinal
folds or streaklike deformations of the belt, and this of the outside as well as of
the inside belt surface rendering the belt unsuited for further use.
[0051] In the operation of the air bearing, it has been shown that the air-pressure relief
sections 60 and 61 have a stabilising effect in that allow the easy outflow of air
from the belt supporting system.
[0052] Figure 3 shows another embodiment of an air bearing for use in a printer according
to the invention. The bearing is similar to that of Figure 2, except for the air-pressure
relief sections near the belt supporting end sections, which are not provided as separate
elements in the present embodiment. Thus, intermediate belt supporting section 59'
now covers the complete distance between end sections 53 and 54. The air-pressure
relief sections are integral with intermediate section 59' which in this case has
a diameter slightly smaller than that of end sections 53 and 54. Thus, zones 60' and
61' of intermediate section 59', indicated by the dashed lines, now function as the
pressure relief sections adjacent to belt bearing sections 53 and 54. The construction
of the present bearing thereby is simpler than that of the Figure 2 bearing, and it
has been shown that in a number of cases (e.g. with a bearing diameter larger than
or equal to 70 mm) its operation is equivalent to that of this first bearing embodiment.
Also the construction of the end walls 66' and 67', and of rims 57' and 58', is simpler
than in the foregoing embodiment.
[0053] Figures 4 to 8 show still another embodiment of an air bearing for a printer according
to the invention.
[0054] The air bearing shown in Figure 4 comprises basically a primary feed pipe 70 bearing
a plurality of axially spaced belt bearing sections 71 and 84. The two outermost sections
84, which constitute the belt supporting end sections defining air cushion relief
sections 71' adjacent thereto are provided with flanges such as 72 and 72' for limiting
excessive transverse motion of a belt. Connection of feed pipe 70 to an air pressure
supply occurs via four stems, see e.g. 73 and 74. A central bore 75 in flange 72 serves
for connecting an air-pressure measuring device.
[0055] The air bearing comprises also a secondary air pressure feed pipe 76 which allows
to establish over a limited angular area of the bearing a belt-supporting air cushion
which has an air pressure differing from that of the central feeding.
[0056] Figure 5 is an isometric view of primary feed pipe 70. This pipe is a cylindrical
tube provided with axially spaced annular grooves 78 having each a series of angularly
spaced radial bores 79.
[0057] Figure 6 is an isometric view of one intermediate bearing section 71. This section
is in fact a nearly ringlike member which is provided with a row of radial bores 80
extending through the wall of the bearing over an area of about 180 degrees, and one
axial bore 81 which is in communication with one radial bore 80. The construction
of the end sections 84 is similar.
[0058] Figure 7 is a diagrammatic longitudinal sectional view of the bearing of Figure 4.
Bearing sections 71 closely fit on primary feed pipe 70 and their radial bores are
in communication with the interior of this pipe by their coinciding with corresponding
grooves 78 of this pipe. Sections 71 may be glued to, or in another way fixedly be
attached to the pipe. Secondary feed pipe 76 extends through the corresponding bores
81 of sections 71 and is via a number of small bores in connection with the axial
bore 81 of the sections 71. The bores of secondary feed pipe 76 are spaced axially
as well as angularly. Feed pipe 76 rotatably fits in bores 81 so that rotation of
this pipe allows to establish different working conditions which will now be described
with reference to Figures 8a to 8c which are enlarged cross sections on line VIII-VIII
of Figure 7.
These cross-sections show that the connection of a section 71 with pipe 76 occurs
in fact via three bores in the wall of this pipe. The bores lie in the same plane
and are angularly spaced over 90 degrees, and act in some way as a three-way valve.
[0059] Referring to Figure 8a, the valve is in its downward position so that pipe 76 is
in connection with the outward end 80' of the corresponding bore 80 of belt-supporting
sections 71. The inward end 80", on the contrary, of this bore is closed by the corresponding
wall section of pipe 76. In this way it is possible, and even preferable, for the
air pressure to be adjusted in such a way that the belt bearing pressure at bore end
80' is higher than the air pressure at all the other bores 80. The reason for this
differential pressure is as follows.
[0060] Figure 8a reveals that the curvature of member 71 is not uniform over the belt-supporting
stretch but, on the contrary, has a local area of greater curvature at the position
indicated by arrow 'X', which position coincides practically with that of bore end
80'. The reason for this increased curvature is.to create a larger angle of separation
between the photoconductive belt 26 following a path indicated by dash-and-dot line
82, and the paper support following a tangential, straight path 83. However, the locally
increased curvature of the endless belt asks for an increased air supporting pressure
in order to avoid undesired contact of the belt with the bearing. The described arrangement
allows to set such higher air pressure.
[0061] Rotation of pipe 76 in the corresponding bores 81 of the distinct bearing sections
allows to put bore ends 80' in straight communication with pipe 70, see Figure 8b,
or to completely close such bore ends, see Figure 8c.
[0062] Appropriate angular adjustment of this tube allows to obtain any intermediate setting
for obtaining any desired ratio between both air pressures.
[0063] It will be clear that a bearing of a type as described in Figures 4 to 8 is not limited
to one secondary air-pressure feed pipe only, and thus two or even more of suchlike
pipes may be provided, in communication with corresponding radial bores, for optimum
support of the photoconduction belt, allowing to set a desired air-pressure pattern,
considered angularly of the bearing.
[0064] Finally, the air bearing may be arranged in such a way that the air pressure also
varies along the length of the bearing, i.e. widthwise of the belt, to produce centrally
of the belt a supporting air cushion which differs from that near the margins of the
belt.
1. An air bearing unit for transport of an endless electrostatographic recording belt
over a predetermined path, said air bearing unit being
characterised by being formed of:
- two belt-edge supporting end sections (53, 54, 84), arranged for producing air cushions
for supporting the corresponding edge of the endless belt,
- two air cushion relief sections (60, 61, 60', 61', 71'), each situated inwardly
adjacent to the corresponding belt-edge supporting end sections (53, 54, 84), and
having a circumferential size which is smaller than that of said end belt-edge supporting
end sections (53, 54, 84), and
- an intermediate section (59, 59', 71) located between said belt-edge supporting
end sections (53, 54, 84) for providing support for the belt (26).
2. An air bearing unit according to Claim 1, wherein said intermediate section (59, 59',
71) comprises a plurality of supporting sections (71).
3. An air bearing unit according to claim 1 or 2, wherein at least one of said intermediate
belt-supporting sections (71) is arranged to produce air cushions for supporting central
portions of said endless belt.
4. An air bearing unit according to any of Claims 1 to 3, wherein said air cushion producing
end sections (84) have a cylindrically curved belt-supporting surface.
5. Electrostatographic printing apparatus with an endless electrostatographic recording
belt which comprises at least one air bearing unit according to any preceding claim,
allowing for low friction transport of an endless electrostatographic recording belt
(26) over an endless path.
6. Electrostatographic printing apparatus according to Claim 5, which is arranged for
transferring a toner image from said endless belt (26) onto a receptor support at
a locus where said endless belt (26) is supported by a said air bearing unit (50),
such receptor support following a linear path at such locus, and wherein the said
air bearing unit has a cross section the curvature of which is smaller at the place
(X) where such receptor support leaves contact with the endless belt (26) than upstream
thereof.
7. Electrostatic printing apparatus according to Claim 5 or 6, which comprises means
(35, 36, 37, 38) for forming in succession a plurality of toner images on the surface
of said endless belt (26), and wherein the or each said air bearing unit (50) is arranged
for guiding such belt (26) along sub-loops that bring portions of said belt (26) in
mutually spaced relationship in contact with a receptor support which follows a linear
path (17), to transfer said successive toner images in coinciding relationship on
said receptor support.
8. Electrostatic printing apparatus according to any of Claims 5 to 7, which comprises
means for forming in succession a plurality of toner images on the surface of said
endless belt (26), wherein said plurality of toner images are colour separation toner
images.
9. Electrostatic printing apparatus according to any of Claims 5 to 8, wherein said recording
belt is a photoconductive belt (26).
1. Luftlagereinheit zum Transport eines endlosen elektrostatographischen Aufnahmebandes
über einen vorbestimmten Weg, wobei die Luftlagereinheit
dadurch gekennzeichnet ist, daß sie gebildet ist aus:
- zwei Bandkanten-Unterstützungsendabschnitten (53, 54, 84), die zum Erzeugen von
Luftkissen zum Unterstützen des entsprechenden Randes des Endlosbandes gestaltet sind,
- zwei Luftkissen-Entlastungsabschnitten (60, 61, 60', 61', 71'), die jeweils innen
neben den entsprechenden Bandkanten-Unterstützungsendabschnitten (53, 54, 84) gelegen
sind und eine Umfangsgröße aufweisen, welche kleiner ist als diejenige der Bandkanten-Unterstützungsendabschnitte
(53, 54, 84), und
- einem mittleren Abschnitt (59, 59', 71), der zwischen den Bandkanten-Unterstützungsendabschnitten
(53, 54, 84) gelegen ist, zum Unterstützen des Bandes (26).
2. Luftlagereinheit nach Anspruch 1, dadurch gekennzeichnet, daß der mittlere Abschnitt (59, 59', 71) eine Mehrzahl von Unterstützungsabschnitten
(71) aufweist.
3. Luftlagereinheit nach Anspruch 1 oder 2, dadurch gekennzeichnet, daß zumindest einer der mittleren Bandunterstützungsabschnitte (71) derart gestaltet
ist, daß er Luftkissen zum Unterstützen zentraler Abschnitte des Endlosbandes erzeugt.
4. Luftlagereinheit nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, daß die Luftkissenerzeugungsendabschnitte (84) eine zylindrisch gekrümmte Bandunterstützungsoberfläche
aufweisen.
5. Elektrostatographische Druckvorrichtung mit einem endlosen elektrostatographischen
Aufnahmeband, die zumindest eine Luftlagereinheit gemäß einem der vorhergehenden Ansprüche
aufweist, die einen Transport eines elektrostatographischen Aufnahmebandes (26) über
einen Endlosweg mit geringer Reibung ermöglicht.
6. Elektrostatographische Druckvorrichtung nach Anspruch 5, welche zum Übertragen eines
Tonerbildes von dem Endlosband (26) auf eine Rezeptorlagerung an einem Ort gestaltet
ist, wo das Endlosband (26) von der Luftlagereinheit (50) unterstützt ist, wobei die
Rezeptorlagerung einem linearen Weg an solch einem Ort folgt und wobei die Luftlagereinheit
einen Querschnitt aufweist, dessen Krümmung an dem Ort (X) kleiner ist, an dem solch
eine Rezeptorlagerung den Kontakt mit dem Endlosband (26) verläßt, als stromaufwärts
davon.
7. Elektrostatographische Druckvorrichtung nach Anspruch 5 oder 6, welche eine Einrichtung
(35, 36, 37, 38) zum Bilden einer Mehrzahl von Tonerbildern nacheinander auf der Oberfläche
des Endlosbandes (26) aufweist, wobei die oder jede Luftlagereinheit (50) derart angeordnet
ist, daß sie solch ein Band (26) entlang Unterschleifen führt, die Bereiche des Bandes
(26) in gegenseitig beabstandeter Beziehung in Kontakt mit einer Rezeptorhalterung
bringen, die einem linearen Weg (17) folgt, um die aufeinanderfolgenden Tonerbilder
in Koinzidenzbeziehung auf die Rezeptorlagerung zu übertragen.
8. Elektrostatographische Druckvorrichtung nach einem der Ansprüche 5 bis 7, welche eine
Einrichtung zum Bilden einer Mehrzahl von Tonerbildern auf die Oberfläche des Endlosbandes
(26) umfaßt, wobei die Mehrzahl von Tonerbildern Farbseparationstonerbilder sind.
9. Elektrostatographische Druckvorrichtung nach einem der Ansprüche 5 bis 8, wobei das
Aufnahmeband ein photoleitendes Band (26) ist.
1. Unité de soutien pneumatique pour l'acheminement d'une courroie sans fin d'enregistrement
électrostatographique sur un trajet prédéterminé, ladite unité de soutien pneumatique
étant
caractérisée en ce qu'elle se compose de :
- deux sections d'extrémité de support de bords de courroie (53, 54, 84), agencées
pour constituer des coussins d'air afin de soutenir le bord correspondant de la courroie
sans fin ;
- deux sections de dégagement de coussins d'air (60, 61, 60', 61', 71'), chacune d'elles
étant située de manière adjacente vers l'intérieur des sections d'extrémité de soutien
de bords de courroie (53, 54, 84) correspondantes, et présentant une dimension circonférentielle
qui est inférieure à celle desdites sections d'extrémité de soutien de bords de courroie
(53, 54, 84) ; et
- une section intermédiaire (59, 59', 71), située entre lesdites sections d'extrémité
de soutien de bords de courroie (53, 54, 84), afin de constituer un support pour la
courroie (26).
2. Unité de soutien pneumatique selon la revendication 1, dans laquelle ladite partie
intermédiaire (59, 59', 71) comprend une pluralité de sections de soutien (71).
3. Unité de soutien pneumatique selon la revendication 1 ou 2, dans laquelle au moins
l'une desdites sections intermédiaires de soutien de courroie (71) est agencée pour
constituer des coussins d'air afin de soutenir des parties centrales de ladite courroie
sans fin.
4. Unité de soutien pneumatique selon l'une quelconque des revendications 1 à 3, dans
laquelle lesdites sections d'extrémité constituant des coussins d'air (84) présentent
une surface de soutien de courroie, qui est courbe de manière cylindrique.
5. Appareil d'impression électrostatographique comportant une courroie sans fin d'enregistrement
électrostatographique, et comprenant au moins une unité de soutien pneumatique selon
l'une quelconque des revendications précédentes, et permettant un acheminement à faible
frottement d'une courroie sans fin d'enregistrement électrostatographique (26) sur
un trajet sans fin.
6. Appareil d'impression électrostatographique selon la revendication 5, qui est agencée
pour transférer une image d'encre en poudre de ladite courroie sans fin (26) à un
support récepteur, en un emplacement où ladite courroie sans fin (26) est soutenue
par ladite unité de soutien pneumatique (50), le support récepteur suivant un trajet
linéaire au niveau dudit emplacement, et dans lequel ladite unité de soutien pneumatique
a une section transversale dont la courbure est plus petite au niveau de l'endroit
(X), où ledit support récepteur ne se trouve plus en contact avec la courroie sans
fin (26), qu'elle ne l'est en amont de cet endroit.
7. Appareil d'impression électrostatique selon la revendication 5 ou 6, qui comprend
des moyens (35, 36, 37, 38) pour former successivement une pluralité d'images d'encre
en poudre sur la surface de ladite courroie sans fin (26), et dans lequel la ou chaque
unité de soutien pneumatique (50) est agencée pour guider ladite courroie (26) suivant
des sous-boucles qui amènent des parties de ladite courroie (26), selon une relation
d'espacement mutuel, en contact avec un support récepteur qui suit un trajet linéaire
(17), afin de transférer lesdites images successives d'encre en poudre dans une relation
de coïncidence sur ledit support récepteur.
8. Appareil d'impression électrostatique selon l'une quelconque des revendications 5
à 7, qui comprend des moyens pour former successivement une pluralité d'images d'encre
en poudre sur la surface de ladite courroie sans fin (26), et dans lequel ladite pluralité
d'images d'encre en poudre sont des images d'encre en poudre à séparation des couleurs.
9. Appareil d'impression électrostatique selon l'une quelconque des revendications 5
à 8, dans lequel ladite courroie d'enregistrement est une courroie photoconductrice
(26).