EP0297843A1 - An apparatus for manufacturing sealed postal mails or the like envelope assemblies - Google Patents

An apparatus for manufacturing sealed postal mails or the like envelope assemblies Download PDF

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Publication number
EP0297843A1
EP0297843A1 EP88305896A EP88305896A EP0297843A1 EP 0297843 A1 EP0297843 A1 EP 0297843A1 EP 88305896 A EP88305896 A EP 88305896A EP 88305896 A EP88305896 A EP 88305896A EP 0297843 A1 EP0297843 A1 EP 0297843A1
Authority
EP
European Patent Office
Prior art keywords
envelope
intermediate element
folding
continuous sheet
blank
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
EP88305896A
Other languages
German (de)
French (fr)
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EP0297843B1 (en
Inventor
Takao Ogawa
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Iseto Shiko Co Ltd
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Iseto Shiko Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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Publication date
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Publication of EP0297843A1 publication Critical patent/EP0297843A1/en
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Publication of EP0297843B1 publication Critical patent/EP0297843B1/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B43WRITING OR DRAWING IMPLEMENTS; BUREAU ACCESSORIES
    • B43MBUREAU ACCESSORIES NOT OTHERWISE PROVIDED FOR
    • B43M5/00Devices for closing envelopes
    • B43M5/04Devices for closing envelopes automatic
    • B43M5/045Devices for closing envelopes automatic using heat-sensitive adhesive
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B31MAKING ARTICLES OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER; WORKING PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31BMAKING CONTAINERS OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31B2150/00Flexible containers made from sheets or blanks, e.g. from flattened tubes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B31MAKING ARTICLES OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER; WORKING PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31BMAKING CONTAINERS OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31B2150/00Flexible containers made from sheets or blanks, e.g. from flattened tubes
    • B31B2150/001Flexible containers made from sheets or blanks, e.g. from flattened tubes with square or cross bottom
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B31MAKING ARTICLES OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER; WORKING PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31BMAKING CONTAINERS OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31B2160/00Shape of flexible containers
    • B31B2160/10Shape of flexible containers rectangular and flat, i.e. without structural provision for thickness of contents
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B31MAKING ARTICLES OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER; WORKING PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31BMAKING CONTAINERS OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31B2170/00Construction of flexible containers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B31MAKING ARTICLES OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER; WORKING PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31BMAKING CONTAINERS OF PAPER, CARDBOARD OR MATERIAL WORKED IN A MANNER ANALOGOUS TO PAPER
    • B31B2170/00Construction of flexible containers
    • B31B2170/20Construction of flexible containers having multi-layered walls, e.g. laminated or lined

Definitions

  • the present invention relates to an apparatus for manufacturing sealed postal mails or other sealed envelope assemblies each having a see-through window.
  • the present invention relates to such an apparatus for manufacturing sealed postal mails and like envelope assemblies containing intermediate elements that remain free after completing the folding and sealing of envelope wherein the apparatus processes such envelopes that can be cut off from a continuous sheet along the transverse folding line and folded into three parts (three parts comprising front layer, rear layer and sealing flap) at the transverse folding lines and also processes such discrete intermediate elements to be cut off from the continuous sheet or such as the one to be folded at least along a folding line.
  • the present invention relates to an apparatus for manufacturing sealed postal mails and like envelope assemblies, which first bursts a continuous sheet before forming transverse double-folded envelope blank having a sealing flap in the lengthwise direction, and in conjunction with envelope-sealing process, the apparatus groups and gathers intermediate elements and inserting elements containing preliminarily processed data to be sent to each addressee, and in addition, it also groups those intermediate elements and inserting elements which are to be added selectively before the apparatus eventually inserts these elements between the transverse double-folded blank of the envelope-forming body.
  • any of those conventional apparatuses employed for processing envelopes merely inserts conventional papers and prints into each envelope in the predetermined extent.
  • any of those conventional apparatuses is not ideally suited for manufacturing envelopes needed for properly conveying constantly diversifying information.
  • the invention provides a novel apparatus for processing envelope blanks, intermediate elements and inserting elements, while the apparatus related to the invention properly deals with diversified information to be conveyed by inserted documents and envelopes by materialing the following: detection and designation of the amount of intermediate elements by reading and identifying encoded data preliminarily printed on those intermediate elements; collection through grouping of inserting elements according to addresses either on a random basis or on a constant-number basis; and selective collection of inserting elements which are individually and preliminarily prepared according to addresses before eventually inserting these unit papers into each envelope.
  • Another object of the present invention is to provide such a processing unit for the continuous mail sealing, which is suited for the line-printer process using a computer and in addition being particularly effective for the non-impact printing process using heat wherein it comprises such means for concentrically printing information onto a continuous sheet using a computer, while the printable continuous sheet is completely free from the heat-sensitive adhesive layer,and conversely, the heat-sensitive adhesive layer is provided only on the other continuous sheet available for envelopes.
  • a still further object of the present invention is to provide such a processing unit for the continuous mail sealing wherein it comprises such means for manufacturing sealed envelopes from which the inserted paper can be easily and immediately drawn out by opening at least one side of an envelope, while the sealed envelope contains the intermediate elements and inserting elements between the front and rear covers, allowing no part of the inserted elements to adhere to the interior of the sealed envelope.
  • the present invention relates to such an apparatus that manufactures the sealed postal mails or the like envelope assemblies using a discrete envelope blanks split from an envelope-forming continuous sheet, an intermediate element split from an intermediate element-forming continuous and having sizes adapted to be enclosed within the envelope blank.
  • the envelope-forming continuous sheet having transverse weakening lines at regular intervals formed to define an envelope blank section between each adjoining two of the weakening lines, each of the envelope blank section having first and second transverse folding lines, a first area for forming the front layer of an envelope defined by first and second transverse folding lines, a sceond area for forming the rear layer of the envelope connected to the first area via the second transverse folding line, a third area for forming the sealing flap of the envelope connected to the first area via the first transverse folding line, a first adhesive layer formed on one surface of the envelope blank section along each of the opposite side edges in direction of the length of the envelope blank section, and a second adhesive layer formed on the same one surface of the envelope blank at the third area.
  • the intermediate element-forming continuous sheet having transverse weakening lines at regular intervals formed to define a intermediate element section between each adjoining two of the weakening lines.
  • Each of the intermediate element sections having its own specific information printed to be sent to addressee and each of the intermediate element sections further having thereon an encoded mark printed for indicating the number of sheets to be enclosed together when the intermediate element section is followed by at least one intermediate element which is to be sent to the same addressee.
  • the apparatus embodied by the invention substantially consists of the following:
  • the sealed mail manufacturing apparatus embodied by the present invention is designed to continuously make up envelope units (E.U) by individually feeding the following into the apparatus; discrete envelopes (72) split from a continuous sheet (71) available for envelopes, discrete intermediate elements (92) made from intermediate-forming continuous sheet (91) available for intermediate elements and additional inserting elements (101) selectively insertable as required.
  • An example of the envelope forming continuous sheet (71) is shown in Fig. 4.
  • This envelope forming continuous sheet (71) is provided with marginal perforation lines (73) and (73) along opposite edges in the direction of its length and also with the marginal perforation split lines (74) and (74) so that the marginal perforation lines (73) and (73) can be cut off along the internal line of these lines (73) and (73).
  • Said envelope-forming continuous sheet (71) is provided with tearable transverse weakening line (75) at regular interval in the direction of length, thus defining the area available for the discrete envelope blank (72).
  • the envelope blank (72) sectioned by said transverse weakening line (75) is provided with the first folding line (76) and the second folding line (77) in parallel with said transverse weakening line 75).
  • the envelope blank (72) is also provided with sealing flap (78) formed between the transverse weakening line (75) and the first holding line (76), front area (79) formed between the first folding line (76) and the second folding line (77), and the rear area (80) formed between the second folding line (77) and the transverse weakening line (75).
  • Length (LA) in the lengthwise direction of the front area (79) substantially constitutes one side (a short side of the envelope of the envelope shown in Fig. 4) of the envelope itself.
  • the length (LA′) in the lengthwise direction of the rear area (80) is slightly shorter than (LA).
  • the dimension (LA) and (LB) of the sealed envelope unit (EU) is optionally chosen, i.e., the dimension may be LA ⁇ LB as shown in the illustrated preferred embodiment, or it may conversely be LA ⁇ LB.
  • the envelope blank of the continuous sheet (71) is provided with the first and second adhesive-agent coated zones (81) and (82) for sealing the envelope itself in the direction of folding the second folding line (77) into inner surface (71a).
  • the first adhesive-agent coated zones (81),(81) are respectively formed in parallel with each other along the inner edge of said marginal perforation split lines (74), (74), whereas the second adhesive-agent coated zones (82),(82) are respectively formed in the direction of traversing the sealing flap (78).
  • Either thermally pressing type adhesive agent, or pressure-applied adhesive agent, or water-soluble starch may also be used for making up those adhesive-agent coated zones (81) and (82).
  • an isosceles triangular diecut (83) is provided in conjunction with the transverse weakening line (75) and the marginal perforation split line (74).
  • the length of each side of isosceles forming the diecut (83) almost matches the length of the sealing flap 78).
  • Portion (79) making up the front area of the envelope-­forming continuous sheet (71) is provided with a see-through window (84) at an optional location.
  • Such a see-through window (84) may be formed by bonding a transparent sheet (86) to the opening (85) on the front area (79) from the inner surface (71a) of the envelope-forming continuous sheet (71) using adhesive agent for example.
  • the see-through window (84) may be of such a constitution which allows only limited portion of information (i.e., address and addressee) written on the inserted document to be externally visible.
  • Perforated line (87) shown in Fig. 4 used for opening the sealed envelope is provided in parallel with the inner edge of either of the first adhesive-agent coated zones (81) and (81).
  • Fig. 5-A, -B, -C and -D respectively denote styles of a variety of continuous sheets (91) for the intermediate elements to be inserted into envelopes. Each of those continuous sheets (91) is used for making up intermediate elements.
  • Those continuous sheets (91A), (91B), (91C) and (91D) are respectively provided with marginal perforation lines (93) and (93) along both sides and in the lengthwise direction.
  • these continuous sheets (91A), (91B), (91C) and (91D) are also provided with split lines (94) and (94) to cut off those marginal perforation lines (93) and (93) along the inner side of these perforation lines.
  • 5-D continuously forms a cross-folding (triple folding in the transversal direction and double-folding in the longitudinal direction) intermediate element (92D) having the central folding line (97) in the lengthwise direction and a pair of transverse folding lines (96) and (96) between transverse weakening lines (95) and 95).
  • side length (La) of each of these intermediate elements (92A), (92B), (92C) and (92D) is slightly shorter than the length (LA) of the sealed envelope unit (EU), and likewise, the other side length (Lb) is also slightly shorter than the inner length of the first adhesive-agent coated zones (81) and (81) of the sealed envelope unit (EU).
  • Identification encoded mark (99) is preliminarily printed on each of these intermediate element-­forming continuous sheets (91A), (91B), (91C) and (91D) in order that intermediate elements can properly be grouped and gathered according to addresses and addressees.
  • the identification encode mark (99) is provided for each unit of intermediate element (92) and composed of 7-bit bar code for example.
  • the identification encode mark (99) is read and identified by an encode-mark sensor set to the apparatus related to the invention, and based on the identified encode mark, instructions are generated to group and gather intermediate elements (92) as per addresses and addressees, selectively insert additional inserting elements (101), and divert the non-printed intermediate elements.
  • Fig. 6-A, -B and -C respectively denote examples of a variety of additional inserting elements (101). These elements (101)are not split from a continuous sheet, but each of these elements (101) consists of either a single leaf (101A) or a preliminarily folded and cut sheet (101B) or (101C) for example.
  • Fig. 6-A represents a single-leaf additional inserting element (101A).
  • Fig. 6-B represents a transverse double-folded additional inserting element (101B) having a transversely folding line (102).
  • Fig. 6-C represents a transverse triple-­folded additional inserting element (101C) having a pair of transverse folding lines (102) and (102).
  • the intermediate-element supplying system (1) is composed of stocker (2) which stocks the intermediate-element forming continuous sheet (91), separating means (3) which separates the continuous sheet (91) into intermediate element (92), and the feeding means (4) which feeds intermediate element, respectively.
  • stocker (2) which stocks the intermediate-element forming continuous sheet (91)
  • separating means (3) which separates the continuous sheet (91) into intermediate element (92)
  • feeding means (4) which feeds intermediate element, respectively.
  • the intermediate-element forming continuous sheet (91) shown in Fig. 5 is split into intermediate elements by the separating means (3) which is provided with marginal slitter (6) and bursting device (7).
  • transverse-folding means (10) which is composed of intermediate-element introducing guide member (11), insertable-intermediate-element forwarding guide member (12), the first through fourth rollers (13) through (16), and the first and second guide stoppers (17) and (18), respectively.
  • Guide stoppers (17) and (18) are respectively provided with stoppers (19) and (20) which adjust their positions to stop the movement of the intermediate elements (92).
  • Each of intermediate elements (92) is led between a pair of rollers (13) and (14) along the introduction guide member (11) before being led to the first guide stopper (17) by rollers (13) and (14).
  • Each of intermediate elements (92) bends itself at the inlet portion of rollers (13) and (15) with its tip edge being in contact with stopper (19) and then the insertable paper itself is pressed by rollers (13) and (15) before eventually being folded transversely.
  • Transverse double-folded intermediate element (92A) shown in Fig. 5-A dispenses with the secondary folding otherwise to be done in the transversal direction.
  • intermediate element sertable paper (92) is then directly led by guide member (21) provided in place of the guide stopper (18) so that the intermediate element (92) can pass through rollers (13) and (16) before being discharged to the feeding line.
  • intermediate elements (92C) and (92D) each having a longitudinal folding line shown in Fig. 5-C and 5-D are preliminarily provided with vertical folding process by the longitudinal folding unit (not shown).
  • the transverse folding means (10) turns the fed intermediate element (92) upside down using guide member (21).
  • the distance between stopper (19) of the first guide stopper (17) and rollers (13) and (14) is extended in order that the distance can be longer than the length of the intermediate element (92) itself.
  • the intermediate element (92) carried into the first guide stopper (17) is then delivered to a pair of rollers (13) and (15) by a pair of back rollers (B.R).
  • additional inserting-element feeding means (22) is provided.
  • This means (22) is provided with the first and second feeding units (23) and (24) for example, which respectively insert printed papers into envelopes.
  • the apparatus related to the invention is provided with paper grouping and collecting means (25), which first reads and identifies encode marks printed on the intermediate elements, and then stores those intermediate elements by each inserting unit.
  • this grouping means (25) selectively adds additional inserting elements stored in the additional inserting element feeding means (22) to the original intermediate element (92), and finally, it groups and collects those intermediate elemenets according to addresses and addressees.
  • the paper grouping and collecting means (25) is provided with function for randomly collecting intermediate elements, precisely collecting intermediate elements by the predetermined number, and selectively inserting additional elements into each envelope, respectively.
  • the OMR sensor reads and identifies the encode marks on the intermediate elements according to the predetermined rule, and then, acting on the instruction signal, grouping and collection of intermediate elements by random number can be executed. Grouping and collection of the intermediate elements by the predetermined number can be executed without referring to encode marks on those elements, but merely by inserting a specific number of those intermediate elements of each lot.
  • a specific mechanism having two of the additional inserting element feeding means when activating function for selectively inserting additional inserting elements, a specific mechanism having two of the additional inserting element feeding means generates instructions for selecting any of four functional operations including delivery of the first and second additional inserting elements, executing independent delivery of only the first additional inserting elements and only the second additional inserting elements, and with holding delivery of both the first and second additional inserting elements, respectivey. All of these instructions are generated as a result of reading and identifying encode marks on each of intermediate elements (92).
  • the apparatus related to the invention feeds additional inserting elements (101) to the original intermediate element (92).
  • Both the grouped original intermediate elements (92) and additional inserting elements (101) are then delivered to the inserting-unit delivery means (26) which is provided with sensor (S1) for detecting the envelope blank (72) held by the envelope-blank holder means (27). Gate (G) and roller (28) of the delivery means (26) are activated on receipt of detect signal from sensor (S1). Sensor means (S1) available for detecting the predetermined delivery timing of the discrete envelope blanks (72) is provided between the envelope blank feeder means (31) and the folding and inserting station (E.S), which outputs a detect signal (e1) when detecting the delivery timing of the discrete envelope blanks (72).
  • the intermediate feeder means (4) In conjunction with the intermediate feeder means (4), another sensor (S2) is provided, which outputs a detect signal (e2) when detecting the delivery timing of the intermediate elements (92).
  • the intermediate feeder means (4) is designed to operate at a constant speed synchronous with other parts driven by the main motor (M), and if any difference occurs in the calculated values between the timing detect signals (e1) and (e2), the intermediate feeder means (4) instantly accelerates or decelerates its operation speed using its own pulse motor (not shown).
  • the paper-forwarding roller (28) classifies and collects each of intermediate element and inserting elements, and finally, it forwards each of the grouped inserting unit in order that each of these can come into contact with the second folding line (77) of the envelope blank (72).
  • the apparatus related to the invention is also provided with envelope-blank supplying system (30) which first activates separating means (29) to separate the envelope-forming continuous sheet (71) into individual envelope blanks (72) and then conveys these envelope blanks (72) to the inserting station (E.S). Discrete envelope blank (72) is then fed to the predetermined inserting station (E.S) by feeding means (31).
  • the inserting station (E.S) is provided with the envelope-blank holder means (27). This holder means holds the envelope blank (72) almost at right angle against the intermediate elements (92) which are horizontally forwarded by the intermediate element delivery means (26).
  • the envelope-blank holder means (27) aligns the position of the second transverse folding line (77) of the envelope blank (72) in order that the transverse folding line (77) can correctly match the paper-inserting line. This allows each envelope blank (72) to be held at standby posture at the predetermined position.
  • the envelope-blank holder means (27) is also provided with a sensor which detects the condition in which each envelope blank (72) is correctly held at the predetermined position.
  • folding roller means (32) is installed to the rear stage of the envelope-blank holder means (27).
  • the folding roller means (32) is composed of a pair of rollers (34) and (34) to allow the inlet aperture (33) to open itself in order that these rollers (34) and (34) correctly align the second transverse folding line (77) of the envelope blank (72) with the aperture (33).
  • the envelope blank (72) is folded along the second transverse folding line (77), and then, the envelope blank (72) is led into the rear-stage rollers (34) and (34) before eventually being folded when passing through rollers (34) and (34).
  • the first sealing means (35) is installed to the rear stage of the folding roller means (32).
  • the first sealing means (35) is composed of a pair of heaters (36) and (36) and pressurized conveyer belt (37).
  • Heaters (36) and (36) are respectively installed along the predetermined path of the first adhesive-agent coated zones (81) and (81) of the envelope body, i.e., in the manner of facing both sides of the envelope in the forwarding direction.
  • Each envelope with both sides being fused by the first sealing mechanism (35) is then led into the movement-path changing means (38) to allow either of the fused sides to precede by changing the direction of the movement of envelope by 90 degrees.
  • the envelope body is delivered to the flap-enveloping unit (F.E) which is provided with the flap-folding means (39) and the second sealing means (40).
  • the flap-enveloping unit (F.E) folds envelope flap (78) along the first transverse folding line (76) before fully sealing the envelope body with the second sealing means (40).
  • each of the completely sealed envelopes is conveyed to the following workshop via the delivery unit (41) according to purposes.
  • the apparatus When automatically inserting and enveloping documents or the like into individual envelopes by operating the automatic envelope and insertable paper processing apparatus embodied by the invention featuring the novel constitution thus far described, by virtue of reading and identifying encode marks preliminarily printed on each of intermediate elements and inserting elements, the apparatus can correctly detect and instruct the amount of papers to be inserted into each envelope before effectively classifying these papers and envelopes according to addressees.
  • the grouping operation of envelope-­intermediate elements can be executed either randomly or on the basis of constant number, and yet, whenever necessity arises, the apparatus related to the invention selectively classifies and collects each of preliminarily prepared additional inserting elements before fully enclosing them as a unit into the designated envelopes.
  • the envelope and intermediate element processing apparatus related to the invention changes the direction of feeding each envelope by 90 degrees before fully sealing envelope bodies.
  • the apparatus discretely uses different heater units for thermally sealing each envelope along the vertical and lateral edges so that thermal sealing can locally be achieved. This effectively prevents the paper-inserted portion of each envelope from adversely being affected by heating and pressurized effect, thus totally eliminating adverse influence otherwise incurring to the enclosed computer-processed printed documents.

Abstract

Apparatus for manufacturing sealed postal mails or the like envelope assemblies (E.U.) using discrete envelope blanks (72) split from an envelope-forming continuous sheet (71), intermediate elements (92) split from an intermediate element-forming continuous sheet (91) and having sizes adapted to be enclosed within said envelope blank, and additional inserting elements (101) having sizes adapted to be enclosed within said envelope blank. The apparatus comprises reading means (8) for reading an encoded mark (99) on said intermediate element (92) to produce an output signal corresponding to the number of sheets of said intermediate element (92) to be enclosed together, grouping means (25) located in a said grouping station for stacking a plurality of intermediate elements (92) successively supplied into a group of intermediate elements to be enclosed together, said grouping means being operative in response to said output signal from said reading means (8) and intermediate element group feeder means for feeding a single intermediate element or a group of intermediate elements from said grouping station to an envelope folding and intermediate element inserting station (E.S.).

Description

    Background of the Invention Field of the Invention
  • The present invention relates to an apparatus for manufacturing sealed postal mails or other sealed envelope assemblies each having a see-through window.
  • More particularly, the present invention relates to such an apparatus for manufacturing sealed postal mails and like envelope assemblies containing intermediate elements that remain free after completing the folding and sealing of envelope wherein the apparatus processes such envelopes that can be cut off from a continuous sheet along the transverse folding line and folded into three parts (three parts comprising front layer, rear layer and sealing flap) at the transverse folding lines and also processes such discrete intermediate elements to be cut off from the continuous sheet or such as the one to be folded at least along a folding line.
  • The present invention relates to an apparatus for manufacturing sealed postal mails and like envelope assemblies, which first bursts a continuous sheet before forming transverse double-folded envelope blank having a sealing flap in the lengthwise direction, and in conjunction with envelope-sealing process, the apparatus groups and gathers intermediate elements and inserting elements containing preliminarily processed data to be sent to each addressee, and in addition, it also groups those intermediate elements and inserting elements which are to be added selectively before the apparatus eventually inserts these elements between the transverse double-folded blank of the envelope-forming body.
  • Description of Prior Art
  • conventionally, there are a variety of apparatuses for processing envelopes by allowing insertion of preliminarily data-processed papers into individual envelopes during the envelope-forming process after bursting these envelopes from a continuous sheet designed for making up envelopes. On the other hand, relative to diversification of information to be conveyed, there is the needs for changing the documents to be sealed in each envelope while the envelope-forming process is still underway. Acually, any of those conventional apparatuses employed for processing envelopes merely inserts conventional papers and prints into each envelope in the predetermined extent. As a result, any of those conventional apparatuses is not ideally suited for manufacturing envelopes needed for properly conveying constantly diversifying information.
  • Summary of the Invention
  • The invention provides a novel apparatus for processing envelope blanks, intermediate elements and inserting elements, while the apparatus related to the invention properly deals with diversified information to be conveyed by inserted documents and envelopes by materialing the following: detection and designation of the amount of intermediate elements by reading and identifying encoded data preliminarily printed on those intermediate elements; collection through grouping of inserting elements according to addresses either on a random basis or on a constant-number basis; and selective collection of inserting elements which are individually and preliminarily prepared according to addresses before eventually inserting these unit papers into each envelope.
  • Another object of the present invention is to provide such a processing unit for the continuous mail sealing, which is suited for the line-printer process using a computer and in addition being particularly effective for the non-impact printing process using heat wherein it comprises such means for concentrically printing information onto a continuous sheet using a computer, while the printable continuous sheet is completely free from the heat-sensitive adhesive layer,and conversely, the heat-sensitive adhesive layer is provided only on the other continuous sheet available for envelopes.
  • A still further object of the present invention is to provide such a processing unit for the continuous mail sealing wherein it comprises such means for manufacturing sealed envelopes from which the inserted paper can be easily and immediately drawn out by opening at least one side of an envelope, while the sealed envelope contains the intermediate elements and inserting elements between the front and rear covers, allowing no part of the inserted elements to adhere to the interior of the sealed envelope. The preferred embodiments of the present invention are summarized below.
  • The present invention relates to such an apparatus that manufactures the sealed postal mails or the like envelope assemblies using a discrete envelope blanks split from an envelope-forming continuous sheet, an intermediate element split from an intermediate element-forming continuous and having sizes adapted to be enclosed within the envelope blank.
  • The envelope-forming continuous sheet having transverse weakening lines at regular intervals formed to define an envelope blank section between each adjoining two of the weakening lines, each of the envelope blank section having first and second transverse folding lines, a first area for forming the front layer of an envelope defined by first and second transverse folding lines, a sceond area for forming the rear layer of the envelope connected to the first area via the second transverse folding line, a third area for forming the sealing flap of the envelope connected to the first area via the first transverse folding line, a first adhesive layer formed on one surface of the envelope blank section along each of the opposite side edges in direction of the length of the envelope blank section, and a second adhesive layer formed on the same one surface of the envelope blank at the third area. The intermediate element-forming continuous sheet having transverse weakening lines at regular intervals formed to define a intermediate element section between each adjoining two of the weakening lines. Each of the intermediate element sections having its own specific information printed to be sent to addressee and each of the intermediate element sections further having thereon an encoded mark printed for indicating the number of sheets to be enclosed together when the intermediate element section is followed by at least one intermediate element which is to be sent to the same addressee.
  • The apparatus embodied by the invention substantially consists of the following:
    • (I) a stock of said envelope-forming continuous sheet;
    • (II) means for continuously supplying said envelope-forming continuous sheet from said stock;
    • (III) means for successively separating said envelope-forming continuous sheet supplied along said transverse weakening lines into discrete envelope blanks one by one;
    • (IV) envelope blank feeder means for feeding each of said discrete envelope units to an envelope folding and intermediate element inserting station;
    • (V) a folding operation unit in said envelope folding and intermediate element inserting station, said folding operation unit comprising folding means for folding said discrete envelope blank along said second transverse folding line;
    • (VI) a stock of said intermediate element-forming continuous sheet;
    • (VII) means for continuously supplying said intermediate element-forming continuous sheet from said stock;
    • (VIII) reading means for reading said encoded mark on said intermediate element to produce an output signal corresponding to the number of sheets of said intermediate element to be enclosed together;
    • (IX) means for successively separating said intermediate element-forming continuous sheet along said transverse weakening lines into discrete intermediate elements;
    • (X) intermediate element feeder means for feeding said discrete intermediate elements to an intermediate element grouping station;
    • (XI) grouping means located in said grouping station for stacking a plurality of intermediate element successively supplied to be enclosed together into group of intermediate elements to be enclosed together, said grouping means being operative in response to said output signal from said reading means;
    • (XII) intermediate element group feeder means for feeding a single intermediate element or a group of intermediate elements from said grouping station said envelope folding and intermediate element inserting station;
    • (XIII) first sensor means for detecting the delivery timing of said envelope blank delivered by said envelope-blank feeder means;
    • (XIV) second sensor means for detecting the delivery timing of said intermediate element or said intermediate element group delivered by said intermediate element group feeder means;
    • (XV) means for controlling the delivery of said envelope blank to said envelope folding and intermediate element inserting station based on output signals from said first and second sensor means so that said intermediate element or intermediate element group can be enclosed within said discrete envelope blank during its folding operation;
    • (XVI) first sealing means for sealing said envelope blank along said first adhesive layers of said envelope blank;
    • (XVII) flap folding means for folding said sealing flap of said envelope blank along said first transverse folding line of said envelope blank; and
    • (XVIII) second sealing means for sealing said envelope blank along said second adhesive layer of said envelope blank folded to form a completed envelope assembly.
    Brief Description of the Drawings
  • The invention will be better understood with reference to the description which follows taken in conjunction with the annexed drawings in which;
    • Fig. 1 is the simplified schematic lateral diagram of the envelope/intermediate element manufacturing and sealing apparatus related to the invention;
    • Fig. 2 is the schematic plain of the apparatus shown in Fig. 1;
    • Fig. 3 is the lateral view of part of the apparatus corresponding to the arrowed portion of Fig. 2;
    • Fig. 4 is a partial plan view of the envelope-­forming continuous sheet already processed for application to the apparatus embodied by the invention;
    • Fig. 5-A, -B, -C and -D are respectively the plans denoting different types of intermediate elements forming continuous sheets and the perspective views of the corresponding intermediate elements;
    • Fig. 6-A, -B and -C are respectively the plans denoting different types of additional inserting elements and the perspective views of the corresponding inserting elements;
    • Fig. 7 is the lateral view of the detailed constitution of the intermediate-element folding means; and
    • Fig. 8 is an overall schematic/perspective view denoting the systematic flow of the envelope-forming continuous sheet, the intermediate element forming continuous sheet, and the additional inserting elements.
    Description of Preferred Embodiments
  • Referring now to the preferred embodiments shown in the attached drawings, details of the apparatus for manufacturing sealed postal mails or like envelope assemblies reflecting the present invention are described below.
  • Basically, the sealed mail manufacturing apparatus embodied by the present invention is designed to continuously make up envelope units (E.U) by individually feeding the following into the apparatus; discrete envelopes (72) split from a continuous sheet (71) available for envelopes, discrete intermediate elements (92) made from intermediate-forming continuous sheet (91) available for intermediate elements and additional inserting elements (101) selectively insertable as required. An example of the envelope forming continuous sheet (71) is shown in Fig. 4. This envelope forming continuous sheet (71) is provided with marginal perforation lines (73) and (73) along opposite edges in the direction of its length and also with the marginal perforation split lines (74) and (74) so that the marginal perforation lines (73) and (73) can be cut off along the internal line of these lines (73) and (73).
    Said envelope-forming continuous sheet (71) is provided with tearable transverse weakening line (75) at regular interval in the direction of length, thus defining the area available for the discrete envelope blank (72). The envelope blank (72) sectioned by said transverse weakening line (75) is provided with the first folding line (76) and the second folding line (77) in parallel with said transverse weakening line 75). The envelope blank (72) is also provided with sealing flap (78) formed between the transverse weakening line (75) and the first holding line (76), front area (79) formed between the first folding line (76) and the second folding line (77), and the rear area (80) formed between the second folding line (77) and the transverse weakening line (75). Length (LA) in the lengthwise direction of the front area (79) substantially constitutes one side (a short side of the envelope of the envelope shown in Fig. 4) of the envelope itself. When actually designing envelopes, the length (LA′) in the lengthwise direction of the rear area (80) is slightly shorter than (LA). The dimension (LA) and (LB) of the sealed envelope unit (EU) is optionally chosen, i.e., the dimension may be LA < LB as shown in the illustrated preferred embodiment, or it may conversely be LA ≧ LB. The envelope blank of the continuous sheet (71) is provided with the first and second adhesive-agent coated zones (81) and (82) for sealing the envelope itself in the direction of folding the second folding line (77) into inner surface (71a). The first adhesive-agent coated zones (81),(81) are respectively formed in parallel with each other along the inner edge of said marginal perforation split lines (74), (74), whereas the second adhesive-agent coated zones (82),(82) are respectively formed in the direction of traversing the sealing flap (78). Either thermally pressing type adhesive agent, or pressure-applied adhesive agent, or water-soluble starch may also be used for making up those adhesive-agent coated zones (81) and (82).
  • Referring now to the sealing flap (78), an isosceles triangular diecut (83) is provided in conjunction with the transverse weakening line (75) and the marginal perforation split line (74). The length of each side of isosceles forming the diecut (83) almost matches the length of the sealing flap 78). Portion (79) making up the front area of the envelope-­forming continuous sheet (71) is provided with a see-through window (84) at an optional location. Such a see-through window (84) may be formed by bonding a transparent sheet (86) to the opening (85) on the front area (79) from the inner surface (71a) of the envelope-forming continuous sheet (71) using adhesive agent for example. Alternatively, the see-through window (84) may be of such a constitution which allows only limited portion of information (i.e., address and addressee) written on the inserted document to be externally visible. Perforated line (87) shown in Fig. 4 used for opening the sealed envelope is provided in parallel with the inner edge of either of the first adhesive-agent coated zones (81) and (81).
  • Fig. 5-A, -B, -C and -D, respectively denote styles of a variety of continuous sheets (91) for the intermediate elements to be inserted into envelopes. Each of those continuous sheets (91) is used for making up intermediate elements. Those continuous sheets (91A), (91B), (91C) and (91D) are respectively provided with marginal perforation lines (93) and (93) along both sides and in the lengthwise direction. In addition, these continuous sheets (91A), (91B), (91C) and (91D) are also provided with split lines (94) and (94) to cut off those marginal perforation lines (93) and (93) along the inner side of these perforation lines. Continuous sheet (91A) shown in Fig. 5-A continuously forms a transverse double-folded intermediate element (92A) having a transverse folding line (96). Continuous sheet (91B) shown in Fig. 5-B continuously forms a transverse triple-folded intermediate element (92B) having a pair of transverse folding lines (96) and (96) between transverse weakening lines (95) and (95). Continuous sheet (91C) shown in Fig. 5-C continuously forms a cross-folding (double-folding in the transversal and longitudinal directions) intermediate element (92C) having the central folding line (97) in the lengthwise direction and transverse folding line (96) between transverse weakening lines (95) and (95). Continuous sheet (91D) shown in Fig. 5-D continuously forms a cross-folding (triple folding in the transversal direction and double-folding in the longitudinal direction) intermediate element (92D) having the central folding line (97) in the lengthwise direction and a pair of transverse folding lines (96) and (96) between transverse weakening lines (95) and 95). When being folded, side length (La) of each of these intermediate elements (92A), (92B), (92C) and (92D) is slightly shorter than the length (LA) of the sealed envelope unit (EU), and likewise, the other side length (Lb) is also slightly shorter than the inner length of the first adhesive-agent coated zones (81) and (81) of the sealed envelope unit (EU). Space for printing address and addressee is provided for the external surface of any of those intermediate elements (92A), (92B), (92C)and (92D). Identification encoded mark (99) is preliminarily printed on each of these intermediate element-­forming continuous sheets (91A), (91B), (91C) and (91D) in order that intermediate elements can properly be grouped and gathered according to addresses and addressees. The identification encode mark (99) is provided for each unit of intermediate element (92) and composed of 7-bit bar code for example. The identification encode mark (99) is read and identified by an encode-mark sensor set to the apparatus related to the invention, and based on the identified encode mark, instructions are generated to group and gather intermediate elements (92) as per addresses and addressees, selectively insert additional inserting elements (101), and divert the non-printed intermediate elements.
  • Fig. 6-A, -B and -C respectively denote examples of a variety of additional inserting elements (101). These elements (101)are not split from a continuous sheet, but each of these elements (101) consists of either a single leaf (101A) or a preliminarily folded and cut sheet (101B) or (101C) for example. Fig. 6-A represents a single-leaf additional inserting element (101A). Fig. 6-B represents a transverse double-folded additional inserting element (101B) having a transversely folding line (102). Fig. 6-C represents a transverse triple-­folded additional inserting element (101C) having a pair of transverse folding lines (102) and (102).
  • Next, referring more particularly to those preferred embodiments shown in Fig. 1, Fig. 2 and Fig. 3, the constitution of the apparatus related to the invention is described below. The intermediate-element supplying system (1) is composed of stocker (2) which stocks the intermediate-element forming continuous sheet (91), separating means (3) which separates the continuous sheet (91) into intermediate element (92), and the feeding means (4) which feeds intermediate element, respectively. Following the printing process executed with computer means, first, the intermediate-element forming continuous sheet (91) shown in Fig. 5 is split into intermediate elements by the separating means (3) which is provided with marginal slitter (6) and bursting device (7). The OMR (optical mark reading) sensor (8) shown in Fig. 5 reads and identifies encode mark (99) preliminarily printed on each of those intermediate elements. The feeding means (4) connected to the outlet of the separating means (3). When activating the apparatus related to the invention, non-printed intermediate element (92) is detected by OMR sensor (8) which reads and identifies encode mark (99) printed on each of the intermediate elements. Those inserted non-printed elements (92) are then removed from the intermediate element feeding line and collected by non-printed element tray (9). In conjunction with the intermediate element feeding means (4), transverse-folding means (10) is provided for transverse folding those intermediate elements (92). Fig. 7 denotes an example of the transverse-folding means (10) which is composed of intermediate-element introducing guide member (11), insertable-intermediate-element forwarding guide member (12), the first through fourth rollers (13) through (16), and the first and second guide stoppers (17) and (18), respectively. Guide stoppers (17) and (18) are respectively provided with stoppers (19) and (20) which adjust their positions to stop the movement of the intermediate elements (92). Each of intermediate elements (92) is led between a pair of rollers (13) and (14) along the introduction guide member (11) before being led to the first guide stopper (17) by rollers (13) and (14). Each of intermediate elements (92) bends itself at the inlet portion of rollers (13) and (15) with its tip edge being in contact with stopper (19) and then the insertable paper itself is pressed by rollers (13) and (15) before eventually being folded transversely. Transverse double-folded intermediate element (92A) shown in Fig. 5-A dispenses with the secondary folding otherwise to be done in the transversal direction. In this case, after passing through a pair of rollers (13) and (15), intermediate element sertable paper (92) is then directly led by guide member (21) provided in place of the guide stopper (18) so that the intermediate element (92) can pass through rollers (13) and (16) before being discharged to the feeding line. Those intermediate elements (92C) and (92D) each having a longitudinal folding line shown in Fig. 5-C and 5-D are preliminarily provided with vertical folding process by the longitudinal folding unit (not shown). The transverse folding means (10) turns the fed intermediate element (92) upside down using guide member (21). In this case, the distance between stopper (19) of the first guide stopper (17) and rollers (13) and (14) is extended in order that the distance can be longer than the length of the intermediate element (92) itself. The intermediate element (92) carried into the first guide stopper (17) is then delivered to a pair of rollers (13) and (15) by a pair of back rollers (B.R).
  • On the other hand, in conjunction with the inserting-­element feeding line, additional inserting-element feeding means (22) is provided. This means (22) is provided with the first and second feeding units (23) and (24) for example, which respectively insert printed papers into envelopes. Furthermore, the apparatus related to the invention is provided with paper grouping and collecting means (25), which first reads and identifies encode marks printed on the intermediate elements, and then stores those intermediate elements by each inserting unit. In addition, this grouping means (25) selectively adds additional inserting elements stored in the additional inserting element feeding means (22) to the original intermediate element (92), and finally, it groups and collects those intermediate elemenets according to addresses and addressees. The paper grouping and collecting means (25) is provided with function for randomly collecting intermediate elements, precisely collecting intermediate elements by the predetermined number, and selectively inserting additional elements into each envelope, respectively. When the apparatus related to the invention activates the random paper grouping and collecting function, the OMR sensor reads and identifies the encode marks on the intermediate elements according to the predetermined rule, and then, acting on the instruction signal, grouping and collection of intermediate elements by random number can be executed. Grouping and collection of the intermediate elements by the predetermined number can be executed without referring to encode marks on those elements, but merely by inserting a specific number of those intermediate elements of each lot.
  • On the other hand, when activating function for selectively inserting additional inserting elements, a specific mechanism having two of the additional inserting element feeding means generates instructions for selecting any of four functional operations including delivery of the first and second additional inserting elements, executing independent delivery of only the first additional inserting elements and only the second additional inserting elements, and with holding delivery of both the first and second additional inserting elements, respectivey. All of these instructions are generated as a result of reading and identifying encode marks on each of intermediate elements (92). The apparatus related to the invention feeds additional inserting elements (101) to the original intermediate element (92). Both the grouped original intermediate elements (92) and additional inserting elements (101) are then delivered to the inserting-unit delivery means (26) which is provided with sensor (S₁) for detecting the envelope blank (72) held by the envelope-blank holder means (27). Gate (G) and roller (28) of the delivery means (26) are activated on receipt of detect signal from sensor (S₁). Sensor means (S₁) available for detecting the predetermined delivery timing of the discrete envelope blanks (72) is provided between the envelope blank feeder means (31) and the folding and inserting station (E.S), which outputs a detect signal (e1) when detecting the delivery timing of the discrete envelope blanks (72). In conjunction with the intermediate feeder means (4), another sensor (S₂) is provided, which outputs a detect signal (e2) when detecting the delivery timing of the intermediate elements (92). The intermediate feeder means (4) is designed to operate at a constant speed synchronous with other parts driven by the main motor (M), and if any difference occurs in the calculated values between the timing detect signals (e1) and (e2), the intermediate feeder means (4) instantly accelerates or decelerates its operation speed using its own pulse motor (not shown). The paper-forwarding roller (28) classifies and collects each of intermediate element and inserting elements, and finally, it forwards each of the grouped inserting unit in order that each of these can come into contact with the second folding line (77) of the envelope blank (72).
  • On the other hand, the apparatus related to the invention is also provided with envelope-blank supplying system (30) which first activates separating means (29) to separate the envelope-forming continuous sheet (71) into individual envelope blanks (72) and then conveys these envelope blanks (72) to the inserting station (E.S). Discrete envelope blank (72) is then fed to the predetermined inserting station (E.S) by feeding means (31). The inserting station (E.S) is provided with the envelope-blank holder means (27). This holder means holds the envelope blank (72) almost at right angle against the intermediate elements (92) which are horizontally forwarded by the intermediate element delivery means (26). Then, the envelope-blank holder means (27) aligns the position of the second transverse folding line (77) of the envelope blank (72) in order that the transverse folding line (77) can correctly match the paper-inserting line. This allows each envelope blank (72) to be held at standby posture at the predetermined position. The envelope-blank holder means (27) is also provided with a sensor which detects the condition in which each envelope blank (72) is correctly held at the predetermined position. In addition, folding roller means (32) is installed to the rear stage of the envelope-blank holder means (27). The folding roller means (32) is composed of a pair of rollers (34) and (34) to allow the inlet aperture (33) to open itself in order that these rollers (34) and (34) correctly align the second transverse folding line (77) of the envelope blank (72) with the aperture (33). In conjunction with the movement of the intermediate element delivery means (26) to forward intermediate elements the envelope blank (72) is folded along the second transverse folding line (77), and then, the envelope blank (72) is led into the rear-stage rollers (34) and (34) before eventually being folded when passing through rollers (34) and (34).
  • On the other hand, the first sealing means (35) is installed to the rear stage of the folding roller means (32). The first sealing means (35) is composed of a pair of heaters (36) and (36) and pressurized conveyer belt (37). Heaters (36) and (36) are respectively installed along the predetermined path of the first adhesive-agent coated zones (81) and (81) of the envelope body, i.e., in the manner of facing both sides of the envelope in the forwarding direction. Each envelope with both sides being fused by the first sealing mechanism (35) is then led into the movement-path changing means (38) to allow either of the fused sides to precede by changing the direction of the movement of envelope by 90 degrees. Then, the envelope body is delivered to the flap-enveloping unit (F.E) which is provided with the flap-folding means (39) and the second sealing means (40). By operating the flap-folding means (39), the flap-enveloping unit (F.E) folds envelope flap (78) along the first transverse folding line (76) before fully sealing the envelope body with the second sealing means (40). Finally, each of the completely sealed envelopes is conveyed to the following workshop via the delivery unit (41) according to purposes.
  • When automatically inserting and enveloping documents or the like into individual envelopes by operating the automatic envelope and insertable paper processing apparatus embodied by the invention featuring the novel constitution thus far described, by virtue of reading and identifying encode marks preliminarily printed on each of intermediate elements and inserting elements, the apparatus can correctly detect and instruct the amount of papers to be inserted into each envelope before effectively classifying these papers and envelopes according to addressees. The grouping operation of envelope-­intermediate elements can be executed either randomly or on the basis of constant number, and yet, whenever necessity arises, the apparatus related to the invention selectively classifies and collects each of preliminarily prepared additional inserting elements before fully enclosing them as a unit into the designated envelopes. These functions constitutes a novel envelope and intermediate element processing apparatus which securely deals with diversification of information to be sent.
  • Furthermore, the envelope and intermediate element processing apparatus related to the invention changes the direction of feeding each envelope by 90 degrees before fully sealing envelope bodies. When executing final sealing operation, the apparatus discretely uses different heater units for thermally sealing each envelope along the vertical and lateral edges so that thermal sealing can locally be achieved. This effectively prevents the paper-inserted portion of each envelope from adversely being affected by heating and pressurized effect, thus totally eliminating adverse influence otherwise incurring to the enclosed computer-processed printed documents.

Claims (6)

1. An apparatus for manufacturing sealed postal mails or the like envelope assemblies using a discrete envelope blank split from an envelope-forming continuous sheet and at least one intermediate element split from an intermediate element-forming continuous sheet,
      each envelope comprising a front layer, a rear layer and a sealing flap,
      said envelope-forming continuous sheet having transverse weakening lines at regular intervals formed to define an envelope blank section between each adjoining two of said weakening lines,
      said envelope blank section having first and second transverse folding lines, a first area for forming a front layer of said envelope, said first area being defined by said first and second transverse folding lines, a second area for forming a rear layer of said envelope, said second area being connected to said first area via said second transverse folding lines, a third area for forming a sealing flap of said envelope, said third area being connected to said first area via said first transverse folding lines, a first adhesive layer formed on one surface of said envelope blank section along each of the opposite side edges in directions of the length of said envelope blank section, a second adhesive layer formed on the same one surface of said envelope blank at said third area,
      said intermediate element-forming continuous sheet having transverse weakening lines at regular intervals formed to define a intermediate element section between each adjoining two of said weakening lines,
      each of said intermediate element sections having its own specific information printed to be sent to addressee and each of said intermediate element sections further having thereon an encoded mark printed for indicating the number of sheets to be enclosed together when said intermediate element section is followed by at least one intermediate element which is to be sent to the same addressee, said apparatus comprising:
(I) a stock of said envelope-forming continuous sheet;
(II) means for continuously supplying said envelope-forming continuous sheet from said stock;
(III) means for successively separating said envelope-forming continuous sheet supplied along said transverse weakening lines into discrete envelope blanks one by one;
(IV) envelope blank feeder means for feeding each of said discrete envelope units to an envelope folding and intermediate element inserting station;
(V) a folding operation unit in said envelope folding and intermediate element inserting station, said folding operation unit comprising folding means for folding said discrete envelope blank along said second transverse folding line;
(VI) a stock of said intermediate element-forming continuous sheet;
(VII) means for continuously supplying said intermediate element-forming continuous sheet from said stock;
(VIII) reading means for reading said encoded mark on said intermediate element to produce an output signal corresponding to the number of sheets of said intermediate element to be enclosed together;
(IX) means for successively separating said intermediate element-forming continuous sheet along said transverse weakening lines into discrete intermediate elements;
(X) intermediate element feeder means for feeding said discrete intermediate elements to an intermediate element grouping station;
(XI) grouping means located in said grouping station for stacking a plurality of intermediate element successively supplied to be enclosed together into group of intermediate elements to be enclosed together, said grouping means being operative in response to said output signal from said reading means;
(XII) intermediate element group feeder means for feeding a single intermediate element or a group of intermediate elements from said grouping station said envelope folding and intermediate element inserting station;
(XIII) first sensor means for detecting the delivery timing of said envelope blank delivered by said envelope-blank feeder means;
(XIV) second sensor means for detecting the delivery timing of said intermediate element or said intermediate element group delivered by said intermediate element group feeder means;
(XV) means for controlling the delivery of said envelope blank to said envelope folding and intermediate element inserting station based on output signals from said first and second sensor means so that said intermediate element or intermediate element group can be enclosed within said discrete envelope blank during its folding operation;
(XVI) first sealing means for sealing said envelope blank along said first adhesive layers of said envelope blank;
(XVII) flap folding means for folding said sealing flap of said envelope blank along said first transverse folding line of said envelope blank; and
(XVIII) second sealing means for sealing said envelope blank along said second adhesive layer of said envelope blank folded to form a completed envelope assembly.
2. Apparatus defined in Claim 1, further including;
      non-printed intermediate element detecting means for detecting any non-printed intermediate element to produce an output signal; and
      means responsive to said signal from said non-­printed intermediate element detecting means and located in said grouping station for removing said non-printed intermediate element from a intermediate element feeding line.
3. Apparatus defined in Claim 1, further including;
      means for supplying another intermediate elements to said grouping station to prepare a further group of intermediate elements of different kinds to be enclosed together.
4. Apparatus defined in Claim 3, wherein said another intermediate elements are separately prepared and have common information prints.
5. Apparatus defind in Claim 3, wherein a plurality of means for supplying a plurality of another intermediate elements of different information prints to said grouping station are provided.
6. Apparatus defined in Claim 2, wherein said encoded mark is capable of additional indicating selective additional of said another intermediate element and said means supplying said another intermediate element is operative in response to the output signal from said reading means.
EP88305896A 1987-06-30 1988-06-29 An apparatus for manufacturing sealed postal mails or the like envelope assemblies Expired - Lifetime EP0297843B1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP62164956A JPH0761760B2 (en) 1987-06-30 1987-06-30 Enclosed material Enclosed Envelope processing device
JP164956/87 1987-06-30

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EP0297843A1 true EP0297843A1 (en) 1989-01-04
EP0297843B1 EP0297843B1 (en) 1992-09-23

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EP0372140A1 (en) * 1988-12-09 1990-06-13 Iseto Shiko Co. Limited An apparatus for manufacturing sealed postal mails or the like envelope assemblies
EP0375813A1 (en) * 1988-12-29 1990-07-04 Iseto Shiko Co. Limited An apparatus for manufacturing sealed postal mails or the like envelope assemblies
US4972655A (en) * 1987-06-30 1990-11-27 Iseto Shiko Co., Ltd. Apparatus for manufacturing sealed postal mails or the like envelope assemblies
EP0453791A1 (en) * 1990-04-23 1991-10-30 Mathias Bäuerle GmbH Buckle folder with insert supplying devices
WO1993011948A1 (en) * 1991-12-19 1993-06-24 American Product Development Corporation Apparatus and method for maintaining the confidentiality of printed information
US5690774A (en) * 1991-12-19 1997-11-25 Gordian Holding Corporation Apparatus and method for maintaining the confidentiality of printed information
WO1998007583A1 (en) * 1996-08-19 1998-02-26 R.C.P. Di Riccardo Consiglio Machine and process for the automatic enveloping of messages with a variable number of sheets
ES2179707A1 (en) * 1999-05-03 2003-01-16 Las Heras Del Rio Jose Migu De Glue reactivation system, applicable in machines for advertising items
EP1964665A2 (en) 2007-02-16 2008-09-03 Mail Systems Oy Method for forming individual letters provided with envelopes
US7739858B2 (en) 2008-05-19 2010-06-22 Mail Systems Oy Method for forming individual letters provided with envelopes

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JP2001180157A (en) * 1999-12-28 2001-07-03 Isetoo:Kk Two-wave processing system

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DE3211791A1 (en) * 1982-03-30 1983-10-13 Leunismann Großdruckerei für Werbung und Verpackung GmbH, 3000 Hannover Paper processing machine and method for its control
EP0185811A2 (en) * 1984-12-19 1986-07-02 Iseto Shiko Co. Limited Apparatus for manufacturing sealed envelope assemblies

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US2427839A (en) * 1944-02-05 1947-09-23 Davidson Mfg Corp Collator
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EP0185811A2 (en) * 1984-12-19 1986-07-02 Iseto Shiko Co. Limited Apparatus for manufacturing sealed envelope assemblies

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4972655A (en) * 1987-06-30 1990-11-27 Iseto Shiko Co., Ltd. Apparatus for manufacturing sealed postal mails or the like envelope assemblies
EP0372140A1 (en) * 1988-12-09 1990-06-13 Iseto Shiko Co. Limited An apparatus for manufacturing sealed postal mails or the like envelope assemblies
EP0375813A1 (en) * 1988-12-29 1990-07-04 Iseto Shiko Co. Limited An apparatus for manufacturing sealed postal mails or the like envelope assemblies
EP0453791A1 (en) * 1990-04-23 1991-10-30 Mathias Bäuerle GmbH Buckle folder with insert supplying devices
WO1993011948A1 (en) * 1991-12-19 1993-06-24 American Product Development Corporation Apparatus and method for maintaining the confidentiality of printed information
US5690774A (en) * 1991-12-19 1997-11-25 Gordian Holding Corporation Apparatus and method for maintaining the confidentiality of printed information
WO1998007583A1 (en) * 1996-08-19 1998-02-26 R.C.P. Di Riccardo Consiglio Machine and process for the automatic enveloping of messages with a variable number of sheets
US6266944B1 (en) 1996-08-19 2001-07-31 R.C.P. Di Riccardo Consiglio Machine and process for the automatic enveloping of messages with a variable number of sheets
ES2179707A1 (en) * 1999-05-03 2003-01-16 Las Heras Del Rio Jose Migu De Glue reactivation system, applicable in machines for advertising items
EP1964665A2 (en) 2007-02-16 2008-09-03 Mail Systems Oy Method for forming individual letters provided with envelopes
US7739858B2 (en) 2008-05-19 2010-06-22 Mail Systems Oy Method for forming individual letters provided with envelopes

Also Published As

Publication number Publication date
DE3874820T2 (en) 1993-04-01
CA1311641C (en) 1992-12-22
JPH0761760B2 (en) 1995-07-05
JPS648029A (en) 1989-01-12
EP0297843B1 (en) 1992-09-23
DE3874820D1 (en) 1992-10-29

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