The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
a shows an inkjet of a first embodiment of the invention, wherein a seal block is in a first position;
b shows an inkjet of a first embodiment of the invention, wherein a seal block is in a second position;
a and 3b show a detailed structure of an inlet;
a shows an inkjet of a second embodiment of the invention, wherein a seal block is in a first position; and
b shows an inkjet of a second embodiment of the invention, wherein a seal block is in a second position.
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
a and 2b show an inkjet 100 of a first embodiment of the invention, comprising a chamber 110, a pressure control unit 120 and a nozzle 130. The pressure control unit 120 is disposed in the chamber 110 and connected thereto. The pressure control unit 120 comprises a housing 121, an inlet 122, outlet 123, an elastic mechanism 124, and a seal block 125. The inlet 122 is formed on a surface of the chamber 110. The outlet 123 is formed on a surface of the housing 121. The seal block 125 is connected to the elastic mechanism 124. The elastic mechanism 124 abuts the housing 121. The elastic mechanism 124 moves the seal block 125 between a first position P1 (as shown in
The chamber 110 is a fluid container. After the inkjet 100 ejects ink, a negative pressure in the chamber 110 exceeds a predetermined pressure, and atmospheric pressure moves the seal block from the first position P1 to the second position P2. After the airflow 140 enters the chamber 110, the negative pressure in the chamber 110 decreases, and the elastic mechanism 124 returns the seal block 125 to the first position P1 by elastic force. Thus, the pressure control unit 120 of the invention controls the negative pressure in the chamber 110 to prevent leakage.
In the first embodiment, the inlet 122, the elastic mechanism 124 and the seal block 125 are aligned in a vertical direction. The seal block 125 is located between inlet 122 and the elastic mechanism 124. The seal block 125 is a ball. The elastic mechanism 124 is a spring.
a shows a detailed structure of the inlet 122, comprising an inlet path 1221 and a recess 1222. The shape of the recess 1222 corresponds to the shape of the seal block 125. When the seal block 125 is in the first position (as shown in
In the embodiment of the invention, the predetermined pressure is between −5 and −15 mini bars.
The predetermined pressure is controlled by the weight of the seal block 125, the elastic factor of the elastic mechanism 124 or the section area of the inlet 122. When the elastic factor of the elastic mechanism 124 increases, the predetermined pressure increases. When the elastic factor of the elastic mechanism 124 decreases, the predetermined pressure decreases. When the weight of the seal block 125 increases, the predetermined pressure increases. When the weight of the seal block 125 decreases, the predetermined pressure decreases. When the section area of the inlet 122 increases, the contact area between the seal block 125 and atmosphere increases, and the predetermined pressure increases. When the section area of the inlet 122 decreases, the contact area between the seal block 125 and atmosphere decreases, and the predetermined pressure decreases.
Thus, the predetermined pressure is controlled by the weight of the seal block 125, the elastic factor of the elastic mechanism 124 or the section area of the inlet 122 to prevent leakage from nozzle 130. In the embodiment of the invention, the elastic factor of the elastic mechanism 124 is 0.5. The element number of the inkjet of the invention decreases. The inkjet of the invention is thus easier assembled, and provides improved reliability.
The pressure control unit of the invention can be utilized in any fluid ejection device.
a and 6b show an inkjet 200 of a second embodiment of the invention, comprising a chamber 110, a pressure control unit 220 and a nozzle 130. The pressure control unit 220 is disposed in the chamber 110 and connected thereto. The pressure control unit 220 comprises a housing 221, an inlet 222, an outlet 223, an elastic mechanism 224 and a seal block 225. In the second embodiment, the elastic mechanism 224 comprises a spring 2241, a rod 2242 and a fulcrum 2243. The rod 2242 pivots on the fulcrum 2243 in the housing 221. The spring 2241 is connected to an end of the rod 2242, and the seal block 225 is connected to another end of the rod 2242. When the seal block 225 is in the first position (as shown in
In the second embodiment, the top portion of the seal block 225 is conical, and the shape of a lower portion of the inlet 222 corresponds thereto.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
| Number | Date | Country | Kind |
|---|---|---|---|
| TW95132714 | Sep 2006 | TW | national |