Device for distributive dot printing for printer

A device for distributive dot printing for a printer including a print medium on which printing by printing head is carried out, a printing head having a plurality of head pins arranged in the vertical direction, a carriage carrying the printing head for transporting the printing head in the horizontal direction, and a carriage transportation control unit for causing the printing head to carry out a plurality of printing actions for each row of the head pins. The distributive dot printing is controlled by a head pin selection unit for selecting predetermined head pins from one row of the head pins in each printing action to cause the printing head to perform distributive dot printing.

BACKGROUND OF THE INVENTION 
1. Field of the Invention 
The present invention relates to a device for distributive dot printing for 
a printer. The device according to the present invention can be used for a 
serial printer of the wire dot type. 
2. Description of the Related Arts 
In general, an electromagnetic coil is used for actuaitng the head pins or 
dot wires of a printing head. The electromagnetic coil is energized from a 
power source. 
When a graphic pattern such as a broad solid line pattern is printed, 
approximately the maximum capacity of the power source is needed for the 
printing. On the other hand, when a character or numeral pattern is 
printed, only approximately 20% in average and approximately 33% at 
maximum of the maximum capacity of the power source is needed for the 
printing. 
Under these conditions, it is not economical to provide a power source 
having a capacity corresponding to that require for the printing of an 
entire block pattern. Accordingly, the design capcity of the power source 
for such a printer is usually approximately 33% of the maximum value 
required. 
If the design capacity of the power source is approximately 33% of the 
maximum value as described above, the source voltage for the energization 
of the printing head for carrying out printing of a graphic pattern will 
sometimes fall below the necessary voltage and the graphic pattern cannot 
be printed. To counter such a situation, the method of divisional printing 
has been used for cases where the source voltage is insufficient. 
In the divisional printing method, the head pins in the printing head are 
divided into two or three groups and the groups individually energized. A 
dot pattern in one row is thus printed divisionally, for example, in two 
steps or in three steps. For two-step divisional printing, the design 
capacity of the power source can be made approximately 50% of the maximum 
value. For three-step divisional printing, the design capacity of the 
power source can be made approximately 33% of maximum value. 
When the above-described divisional printing is applied to the paper on the 
platen, during the plural steps of divisional printing, the printing 
device does not feed the paper forward. However, as with all continuous 
feed systems, the paper is not in a state of tension against the platen 
and is only loosely held. 
In applying the plural steps of the divisional printing to paper in such a 
state, the paper unavoidably shifts in position. That is, the paper shifts 
in position in the course of the process of, for example, a first step, a 
second step, and a third step of the divisional printing. 
Because of this shift in position of the paper, the plural patterns printed 
by divisional printing using a printing head sometimes are interspaced by 
gaps or partially overlap each other. 
Such gaps or overlapping detracts from the quality of the print, and causes 
considerable problems in realizing satisfactory quality of the printed 
product. 
An example of the prior art divisional printing system is disclosed in 
Japanese Unexamined Patent Publication (Kokai) No. 58-71174. 
SUMMARY OF THE INVENTION 
The object of the present invention is to provide an improved device for 
dot printing for a printer in which the undesirable effect caused by the 
shift in position of a paper to be printed is minimized, distributive 
printing of the head pins in a printing head is carried out, gaps or 
overlapping is prevented, and the quality of the printed product is 
enhanced. 
According to the present invention, there is provided a device for 
distributive dot printing for a printer including: a print medium on which 
printing by a printing head is carried out; a printing head having a 
plurality of head pins arranged in the vertical direction; a carriage 
carrying the printing head for transporting the printing head in the 
horizontal direction; a carriage transportation control unit for causing 
the printing head to carry out a plurality of printing actions for each 
row of the head pins; and a head pin selection unit for selecting 
predetermined head pins from one row of the head pins in each printing 
action to cause the printing head to carry out distributive dot printing.

DESCRIPTION OF THE PREFERRED EMBODIMENTS 
Before entering into the detailed description of the preferred embodiments, 
a prior art divisional dot printing device and the operation thereof are 
described with reference to FIGS. 1 to 7. In the general view of a 
divisional dot printing device of FIG. 1, the printing by a printing head 
22 mounted on a carriage 21 is applied to a paper 12 on a platen 11. 
The head pins (dot wires) 221-1, 221-2, . . . 221-24 are arranged in one 
row in the vertical direction in the printing head as shown in FIG. 2. The 
upper 1/3 head pins 221-1, 221-2, . . . 221-8 constitutie the first step 
division of the head pins. The middle 1/3 head pins 221-9, 221-10, . . . 
221-16 constitute the second step division of the head pins. The lower 1/3 
head pins 221-17, 221-18, . . . 221-24 constitute the third step division 
of the head pins. 
The pattern of dots printed according to the divisional printing by the 
device of FIG. 2 is illustrated in FIG. 3. In the first step of the 
divisional printing, dots are printed by the 1st to 8th head pins. In the 
second step of the divisional printing, dots are printed by the 9th to 
16th head pins. In the third step of the divisional printing, dots are 
printed by the 17th to 24th head pins. In FIG. 3, dots printed in the 
divisional step in question are indicated by black circles, while dots 
printed in the preceding step or steps are indicated by white circles. 
How the paper 12 behaves with respect to the surface of the plate 11 in 
response to the printing by each of the divisions of the head pins is 
illustrated in FIG. 4. 
For better understanding of the shift of position of the paper, the state 
of the paper in the process of a first step, second step, and third step 
of the divisional printing is shown exaggerated in FIG. 5. 
In FIG. 5, the state of the paper in the first step is expressed in broken 
line, in the second step in chain line, and in the third step in solid 
line. 
When a broad solid line is printed by divisional printing by the device of 
FIG. 2, the pattern printed by the device of FIG. 2 will become either the 
pattern of FIG. 6 or the pattern of FIG. 7, because of the shift of 
position of the paper illustrated in FIGS. 4 and 5. In FIG. 6, a gap is 
formed between the adjacent divisional patterns. In FIG. 7, an overlapped 
region is formed between the adjacent divisional patterns. 
A device for distributive dot printing for a printer according to an 
embodiment of the present invention is shown in FIG. 8. The device of FIG. 
8 includes a platen 11, a paper 12 to be printed, a carriage 21 for a 
printing head, a printing head 22, a control circuit 3 having a control 
signal generating portion 4, and a character/graphic pattern generating 
portion 5. The device of FIG. 8 also includes a space controlling portion 
61, a carriage driving portion 62, a power source portion 71 having a 
power source 711 and a capacitor 712, and a voltage detection circuit 72. 
The printing head 22 is provided with a temperature detection element 226. 
The printing operation signal is delivered from a printing operation 
signal generating portion 225. 
The character/graphic pattern generating portion 5 generates character 
patterns to be supplied to the control signal generating portion 4 on the 
basis of the character code supplied to the control circuit 3. 
The structure of the control circuit 3 in the device of FIG. 8 is shown in 
FIG. 9. The control signal generating portion 4 in the control circuit 3 
includes a shift register 41, a transfer clock signal generating portion 
42, a latch circuit 43, a latch pulse generating portion 44, a counter 45 
an OR gate 451, an inverter 452, a decoder 46, AND gates 47-1, 47-2, . . . 
47-24, transistors 222-1, 222-2, . . . 222-24, and pin driving excitation 
coils 221-2, 221-2, . . . 221-24. 
The shift register 41 is an N step shift register. In this example, N=24. 
The shift register 41 receives the signal from the character/graphic 
pattern generating portion 5 and the signal from the transfer clock signal 
generating portion 42. The latch circuit 43 has the same number of steps 
as the shift register 41. The latch circuit 43 receives the signal from 
the latch pulse generating portion 44. 
The outputs of the latch circuit 43 are supplied to input terminals of the 
AND gates 47-1, 47-2, . . . 47-24. The outputs of the decoder 46 are 
supplied to other input terminals of the AND gates 47-1, 47-2, . . . 
47-24. 
The output of the AND gate 47-1 is supplied to the base of the transistor 
223-1. The output of the transistor 222-1 is supplied to the head pin (dot 
wire) driving excitation coil 221-1. The pin driving excitation coil 221-2 
drives the head pin 221-1. 
The first output line 461 from the decoder 46 is connected to input 
terminals of the 1st, 4th, 7th, . . . and 22nd AND gates; 47-1, 47-4, 
47-7, . . . 47-22. The second output line 462 from the decoder 46 is 
connected to input terminals of the 2nd, 5th, 8th, . . . and the 23rd AND 
gates; 47-2, 47-5, 47-8, . . . 47-23. The third output line 463 from the 
decoder 46 is connected to input terminals of the 3rd, 6th, 9th, . . . and 
24th AND gates; 47-3, 47-6, 47-9, . . . 47-24. 
The decoder 46 receives the signal from the counter 45. The output signals 
of the decoder 46 delivered through the output lines 461, 462, and 463 is 
regarded as an ENABLE signal. An ENABLE signal "1, 1, 1" is delivered when 
the output of the counter 45 is "0". An ENABLE signal "1, 0,0" is 
delivered when the output of the counter 45 is "1". An ENABLE signal "0, 
1, 0" is delivered when the output of the counter 45 is "2". An ENABLE 
signal "0, 0, 1" is delivered when the output of the counter 45 is "3". 
When the character or picture data can be handled by 33% of less of the 
100% power source capacity, the output of the counter 45 is "0". 
When the picture data, such as picture data for a graphic matter, requires 
more than 33% of the 100% power source capacity, the counter 45 delivers, 
outputs "1", "2", and "3" successively. 
When the ENABLE signal on the output line 461 is "1", the 1st, 4th, 7th, . 
. . 22nd head pin ("3n-2" head pin) are actuated. 
When the ENABLE signal on the output line 462 is "1", the 2nd, 5th, 8th, . 
. . 23rd head pin ("3n-1" head pin) are actuated. 
When the ENABLE signal on the output line 463 is "1", the 3rd, 6th, 9th, . 
. . 24th head pin ("3n" head pin) are actuated. 
Thus, in accordance with the sequence of ENABLE signals "1, 0, 0", "0, 1, 
0", and "0, 0, 1" on the output lines 461, 462, and 463, distributive 
actuations of all the head pins 221-1, 221-2, 221-3, . . . 221-24 are 
carried out so that the actuation of one row of head pins is completed. 
A pattern of dots printed according to the distributive printing by the 
device of FIG. 8 is illustrated in FIG. 10. In the first distributive step 
of printing, the dots by the 1st, 4th, 7th, . . . 22nd head pins are 
printed. In the second distributive step of printing, the dots by the 2nd, 
5th, 8th, . . . 23rd head pins are printed. In the third distributive step 
of printing, the dots by the 3rd, 6th, 9th, . . . 24th head pins are 
printed. In FIG. 10, dots printed in the distributive step in question are 
indicated by black circles, while dots printed in the preceding 
distributive step or steps, are indicated by white circles. 
The clock input terminal CL of the counter 45 receives the signal of the 
printing action. The gate input terminal G of the counter 45 receives the 
output of the OR gate 451. The reset input terminal RS of the counter 45 
receives the output of the inverter 452 which receives the output of the 
OR gate 451. 
One input terminal of the OR gate 451 receives the voltage detection signal 
from the voltage detection circuit 72. The other input terminal of the OR 
gate 451 receives the temperature detection signal from the temperture 
detection element 226. 
The output of the voltage detection circuit 72 and the output of the 
temperature detection element 226 are also supplied to the space control 
portion 61. 
In the distributive printing by the device of FIG. 8, the three steps of 
the distributive printing are carried out as illustrated in FIGS. 11A, 
11B, and 11C. In each of the three steps of distributive printing, 
printing by eight head pins is applied across the same vertical length of 
the paper 12 at almost the same position. No substantial shift of position 
of the paper 2 will occur during these three steps. Thus, gaps and 
overlapping as shown in FIGS. 6 and 7 of the prior art are prevented, so 
that satisfactory printing of a pattern of a broad solid line is achieved. 
Various modifications can be possible without departing from the scope of 
the present invention. The number of steps of the distributive printing 
can be selected as other than three. However, two or three is considered 
as the most suitable number of the steps. The manner of distribution of 
head pins in each of the distributive printing steps can be an irregular 
manner, instead of the above-described manner where one pin out of three 
is regularly selected.