A printhead assembly for a printer with the printhead mounted in the lid of the printer and the platen mounted in the body of the printer. The printhead is spring loaded, permitting it to float in both the vertical and horizontal directions within the lid assembly. Guideposts are located in the body of the printer with a defined positional relationship to the platen. When the lid is closed, the guideposts position the printhead in its correct position with respect to the platen. Mounting the printhead in the lid and the platen in the printer body permits new paper to be loaded quickly and easily by simply pulling the paper past the platen and closing the lid. The cumbersome paper-threading procedure of conventional inexpensive printers is avoided.
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0. 13. A method of aligning a printhead with a platen in a printer, comprising the steps of:
closing a printer lid onto a printer base; moving a printhead towards a platen when the lid is being closed; contacting a printhead alignment edge with a guidepost alignment edge before the lid closes; and aligning the printhead with the platen by the step of contacting.
0. 14. A printhead alignment system, comprising:
(a) a base; (b) a lid adapted to close onto said base; (c) a platen operatively coupled to said base; (d) a printhead assembly adapted to float within said lid, said floating printhead assembly adapted to descend over said platen in a substantially linear direction of travel immediately before said lid closes onto said base; said floating printhead assembly including at least one alignment surface disposed at an oblique angle relative to said direction of travel, said printer base being adapted to make parallel contact with said at least one alignment surface to cause said printhead assembly to align with said platen.
0. 15. A printhead alignment system, comprising:
(a) a base; (b) a lid adapted to close onto said base; (c) a platen operatively coupled to said base; (d) a printhead assembly adapted to float within said lid, said floating printhead assembly adapted to descend over said platen in a substantially linear direction of travel immediately before said lid closes onto said base, said floating printhead assembly including a first alignment surface disposed at an oblique angle relative to said direction of travel, said printer base including a second alignment surface adapted to make parallel contact with said first alignment surface to cause said printhead assembly to align with said platen.
0. 16. A printhead alignment system, comprising:
a base; a lid pivotally coupled at one end to said base by way of a hinge having a longitudinal axis, said lid having an open position and a closed position; a platen rotatably coupled to said base; a printhead resiliently coupled to said lid and having a first surface facing away from said pivotally coupled end and being disposed at an oblique angle from a reference plane defined by said longitudinal axis and a point on the bottom of said printhead when said lid is in said closed position; and at least one printhead alignment surface on said base disposed approximately at the same oblique angle from said reference plane and adapted to contact said first surface of said printhead as said lid is being closed to cause said resiliently coupled printhead to align with said platen.
1. A printer, comprising:
a base; a lid pivotally coupled to the a base, the lid and having an open position and a closed position, the pivotal coupling defining a longitudinal axis; a platen rotatably coupled to the said base; a floating printhead assembly resiliently coupled to the mechanism carried by said lid and , said floating printhead mechanism having an t least one alignment surface rigidly connected to the assembly, said printhead assembly being adapted to resiliently press against said platen disposed approximately at an oblique angle from a reference plane defined by said longitudinal axis and a point on the bottom of said floating printhead mechanism when said lid is in the said closed position; and at least one guidepost fixedly coupled to alignment surface on said base, said guidepost having an oblique guidepost alignment edge adapted to make parallel contact with said at least one alignment surface of said floating printhead mechanism assembly alignment surface when said lid is being closed, whereby the contact between the oblique guidepost alignment edge and the printer alignment surface to causes the said floating printhead assembly mechanism to resiliently align with said platen.
0. 17. A printhead alignment system, comprising:
a base; a lid pivotally coupled at one end to said base by way of a hinge having a longitudinal axis, said lid having an open position and a closed position; a platen rotatably coupled to said base; a printhead resiliently coupled to said lid and having a first surface facing away from said pivotally coupled end and being disposed at an oblique angle from a reference plane defined by said longitudinal axis and a point on the bottom of said printhead when said lid is in said closed position; and at least two printhead alignment surfaces on said base disposed respectively near opposite ends of said printhead when said lid is in said closed position and approximately at the same oblique angle from said reference plane and adapted to contact said first surface of said printhead as said lid is being closed to cause said resiliently coupled printhead to align with said platen.
2. The printer of
3. The printer of
4. The printer of
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8. The printer of
9. The printer of
10. The A printer of
a base; the a lid is pivotally coupled to the said base with by way of a hinge having a longitudinal axis, said lid having an open position and a closed position; the printhead assembly alignment surface defines an oblique angle from a horizontal plane when the lid is in the closed position; and the guidepost alignment edge has approximately the same oblique angle from the horizontal plane a platen rotatably coupled to said base; a printhead resiliently coupled to said lid and having an alignment surface disposed at an oblique angle from a reference plane defined by said longitudinal axis and a point on the bottom of said printhead when said lid is in said closed position; and at least one guidepost coupled to said base and having an alignment surface disposed approximately at the same oblique angle from said reference plane and adapted to contact said printhead alignment surface when said lid is being closed to cause said resiliently coupled printhead to align with said platen.
11. The printer of
0. 12. The printer of
0. 18. The printer of
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1. Field of the Invention
The invention relates to a print head mechanism in a printer. More particularly, it relates to a floating print head mechanism attached to the printer lid so that new paper can be loaded into the printer without the cumbersome procedure of threading the paper through the print mechanism.
2. Description of the Related Technology
Printers are available in many different configurations utilizing a variety of technologies. The choice of the best features and technologies for a particular application depends on a number of factors including cost, print speed, print quality, durability and operating expenses. Regardless of the type of technology used, however, most printers have three elements in common: 1) a print head located on the side of the paper to be printed; 2) a platen located on the opposite side of the paper and providing physical support for the paper; and 3) a paper handling mechanism which moves the paper past the print head. In some cases the platen and the paper handling mechanism can be combined into a single roller which presses the paper against the print head and turns to advance the paper forward. This configuration is especially advantageous as it combines into a single item the functions of advancing the paper, providing a relatively hard surface against which the paper may be held, and maintaining the paper against the print head for a precision printing operation. Such rollers typically have a roller surface which is slightly compressible and which exhibits sufficient friction against the paper to move the paper with the required precision. Such rollers are well known in the printer industry and are not further described here.
Some printers will print on cut-sheet paper, which requires a complicated and expensive mechanism to pick up each new sheet and position it correctly underneath the print head. However, many inexpensive printers print on a continuous roll of paper or on a continuous stack of fan-fold paper. The low cost obtained by avoiding the use of the costly sheet-handling mechanism makes this approach ideal for such devices as label printers, adding machines, and point-of-sale receipt printers.
Maintaining print quality in roll-paper printers is usually accomplished by mounting the print head and the platen in a precise fixed relationship to each other, with the paper passing between them within a narrow space just large enough for the paper to pass through. However, when a new roll of paper must be inserted, this arrangement makes changing paper difficult. Not only must the user open the printer to access the paper space, but the user must also thread the new paper through the narrow space between the platen and the print head. This can be awkward and frustrating due to the cramped space allowed for the operator's hands, the difficulty of inserting new paper into such a small space, and the problem of getting the paper aligned once it has been inserted.
This problem has been partially addressed in some conventional printers by providing print head mechanisms which can be moved away from the platen a small distance, thus slightly enlarging the space through which the paper must be threaded. This can be accomplished with a mechanism that raises the print head vertically upward
The invention solves the aforementioned problems with conventional printers by providing a print head which is located in the lid of the printer while the platen is located in the body of the printer. When the lid is opened to insert a new roll of paper, the print head and platen are completely separated. The leading edge of the paper can simply be pulled forward across the platen and the lid then closed to secure the paper and print head in their proper positions. Using the same hinge to raise the lid and raise the printhead reduces, the parts count and cost of the printer. The required precision in the relative positions of the print head and platen are achieved through the use of a floating print head and precision guideposts which correctly position the print head when the lid is closed. Accurate positioning is relatively independent of the hinge and pivot arm materials. This permits the use of a comparatively loose hinge, located far from the printhead assembly. It also allows the supporting printer lid to be constructed of inexpensive materials with a degree of flexure that would otherwise be intolerable.
The print head `floats` in two dimensions, i.e., it is only loosely constrained by the surrounding lid assembly. Horizontal positioning is controlled by moving the print head down past the guideposts until an angled surface of the printhead contacts a similarly angled surface of each guidepost. Further movement causes the angled surfaces to slide against each other until they are flush. This causes the print head to be pushed firmly against the side of the guideposts. Since the guideposts are attached to the same assembly as the platen, the position of the guideposts with respect to the platen can be manufactured with a high degree of accuracy. Since the print head can also be constructed with precise dimensions, the physical contact between the guideposts and the print head accurately places the print head in proper horizontal alignment with the platen. Vertical positioning is controlled by spring loading the print head in the vertical direction. When the lid is closed this spring pushes the print head down against the paper and the platen. The force of the spring maintains a constant pressure by the print head against the paper, thus pressing the paper down against the platen. This pressure keeps the print head in constant contact with the paper for precision printing and keeps the paper in constant contact with the platen for controlled advancement of the paper whenever the platen rolls forward.
As shown in
When lid 3 is closed it is secured in position by latches 14 which are inserted into latch holes 16. Latches 14 can be standard spring-loaded latches which clasp the underside of holes 16 when the lid is closed but can be released by turning latch release 18, which is conveniently located on the side of lid 3. Printhead 6 is mounted in lid 3, while guideposts 20 are attached to base 2. Platen 8 is a roller assembly which is used to roll paper 10 forward past printhead assembly 6. Platen 8 can be controlled by an electric motor and associated electronic components (not shown).
FIG. 2. shows a side view of printer 1 with lid 3 in a slightly raised position. This view better illustrates the shape of raised dome 5, latch 14 and guidepost 20. Paper roll 10 has been removed in this figure for clarity.
Latch holes 16 are located in the base so that latches 14 will be inserted into these holes when the lid is closed. Latches 14 will typically have an L shape as shown in FIG. 2 and will typically be spring loaded so that they will swing into the center of latch holes 16 as the lid is being closed but will snap back underneath the edge of hole 16 when the lid is fully closed. These latches keep the lid securely attached to the base during normal operation. Guideposts 20 are also shown attached to base 2. When lid 3 is closed the front edge of printhead 6 will be pushed against the back edge of guideposts 20, as will be described in connection with
Platen 8 is a cylindrically shaped roller with suitable mounting at either end. During printing operations, platen 8 will rotate forward (counter clockwise in
Printhead 6 is physically constrained within opening 28 of lid 3. Spring 22, which is preferably a leaf spring, exerts a downward force on printhead 6. Printhead 6 is limited in its downward travel by physical constraints which are typically at either end of printhead 6 and are therefore not shown in cross-section "A--A". Similar constraints may also be imposed to limit the travel of printhead 6 in the forward and backward directions. The use of such physical constraints is well known and is not described further.
Printhead 6 also contains print elements 24 which are typically arranged in a single row along the length of the bottom of printhead 6. A preferred embodiment uses a thermal printhead in which print elements 24 are composed of a single row of several hundred hearing elements per inch. Each element can be individually heated to cause a dark spot to appear on temperature-sensitive paper. By alternately moving paper 10 forward one dot width at a time and heating selected elements, a two-dimensional image may be created on the paper. Depending on the complexity of the associated electronics, this image may comprise numbers, letters, graphics, or other symbology. Other types of printhead technologies may also be used.
The precision alignment between printhead 6 and platen 8 is shown in
Alignment surface 32 of printhead 6 can be at an oblique angle of approximately 10 degrees from arrow 38. It might be more convenient to measure this as 80 degrees from plane 36, since plane 36 is defined by physical structure. In the embodiment shown, the entire printhead has been tilted forward. However, it is only important that the printhead alignment surface 32, in this case the front edge of printhead 6, be at an oblique angle. For reasons of manufacturing economy, a preferred embodiment uses the front surface of a rectangularly shaped printhead for alignment surface 32. However, other configurations could also be used, including a separate alignment structure that is rigidly attached to printhead 6. Alignment surface 34 of guidepost 20 is also tilted at an oblique angle with respect to direction of travel 38. In a preferred embodiment, alignment surface 34 is the back side of guidepost 20. When lid 3 is being closed, printhead alignment surface 32 approaches guidepost alignment surface 34 along direction of travel 38. The aforementioned oblique angles of the two alignment surfaces 32 and 34 allows for a certain amount of tolerance in the approach positions between the alignment surfaces 32 and 34, as measured by the amount that printhead 6 can be misaligned from front to back of the printer (left to right in
In this manner, the interaction of the oblique angles of printhead alignment surface 32 and guidepost alignment surface 34 not only compensates for linear misalignment of printhead 6, but also compensates for rotational misalignment of printhead 6. Since there are typically two guideposts 20, one near either end of printhead 6 (see FIGS. 1 and 3), both ends of the printhead will undergo the alignment process when the lid is closed. The amount of misalignment that can be corrected by this configuration varies somewhat with the size of the aforementioned oblique angle. Best results have been obtained with an angle of about 7-13 degrees when guidepost alignment surface 34 is measured from direction of travel 38, or about 77-83 degrees when measured from plane 36.
As shown in
As can be understood from the foregoing description, the positioning of the print elements with respect to the platen can be controlled by controlling two primary dimensions:
(1) the distance between print elements 24 and alignment surface 32 of printhead 6, and
(2) the distance between alignment surface 34 of guidepost 20 and line of contact 40 on platen 8. The invention allows these dimensions to be controlled even with a certain amount of misalignment between printhead 6 and platen 8 prior to closing lid 3. This permissible misalignment allows various printer parts, such as base 2, lid 3 and hinge 4, to be made of relatively inexpensive materials with comparatively loose manufacturing tolerances. This permits the manufacture of a very inexpensive printer which is suitable for low cost uses such as label printers, adding machines, receipt printers and similar applications.
The foregoing description is intended to be illustrative and not limiting. Obvious variations will occur to those of skill in the art. For instance, the platen could be placed in the lid while the printhead is placed in the base. This and other variations are intended to be encompassed by the invention, which is limited only by the spirit and scope of the appended claims.
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