Power interconnection with current surge mitigation
09780516 · 2017-10-03
Assignee
Inventors
- Henry Chen (Taipei, TW)
- Jung-Tai Chen (Taipei, TW)
- Ko-Chen Tan (Taipei, TW)
- Claire Tsai (Taipei, TW)
- Chia-Yen Wu (Taipei, TW)
Cpc classification
Y10T29/49208
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01R31/06
ELECTRICITY
H01R43/26
ELECTRICITY
International classification
H01R13/66
ELECTRICITY
Abstract
Disclosed is an apparatus for power interconnection, adapted for use between a main connector and a DC main. The power connector has a connector power terminal and the DC main has a DC main power terminal. The apparatus includes an apparatus power terminal for being electrically coupled to the DC main power terminal in response to the apparatus in connection with the DC main; a first conductor including a resistor and a conductive contact, the conductive contact being electrically coupled to the resistor; and a second conductor, the resistor being electrically coupled to the second conductor, wherein, in response to an action of the power connector in connection with the apparatus, the connector power terminal contacts the conductive contact and a first current flowing therethrough is limited by the resistor. A receptacle structure for power interconnection is also disclosed.
Claims
1. An apparatus for power interconnection, adapted for use between a main connector and a direct current (DC) main, the main connector having a connector main terminal, and the DC main having a DC main terminal, the power interconnection apparatus comprising: an apparatus main terminal electrically coupled to the DC main terminal in response to the power interconnection apparatus being connected to the DC main; a conductive contact electrically coupled to a resistor via a first electrical conductive path from the DC main to the main connector, the conductive contact located at an entrance to an apparatus casing hole of the power interconnection apparatus; and a conductor electrically coupled to the resistor via the first electrical conductive path from the DC main to the main connector, the conductor separated from the conductive contact by a specified distance; wherein, in response to a first action in which the main connector is at a first position at the entrance to the apparatus casing hole of the power interconnection apparatus and in contact with the conductive contact, a first current passes from the conductor to the conductive contact via the first electrical conductive path through the resistor that restricts the first current to prevent damage from inrush current and, in response to a second action in which the main connector is inserted through the entrance of the apparatus casing hole to a second position, the connector main terminal contacts both the conductive contact and the conductor that are separated by the specified distance allowing a second current to pass through the conductor to form a second electrical conductive path from the DC main to the main connector providing a power supply.
2. The apparatus of claim 1, wherein the conductive contact dangles in response to the main connector not being connected to the power interconnection apparatus.
3. The apparatus of claim 1, further comprising an apparatus casing, wherein the apparatus casing includes the apparatus casing hole whereby the connector main terminal is mounted and dismounted through the apparatus casing hole.
4. The apparatus of claim 1, wherein the DC main is one of a group consisting of: a solar power main, a battery main, and a capacitor.
5. The apparatus of claim 1, wherein the apparatus is one of a group consisting of: a notebook computer, a tablet, an DVD player, a monitor, a portable electronic apparatus, a mobile phone, a PDA, a server, a home appliance, a measurement instrument, a desktop computer, and an industrial computer, and wherein the DC main is supplied through a DC receptacle, and wherein the DC receptacle is one of a group consisting of: an indoor electrical outlet, an outdoor electrical outlet, and a main extension.
6. The apparatus of claim 1, wherein the conductive contact is made of a conductive material selected from a group consisting of copper, silver, gold, and aluminum, and wherein the conductor is made of a conductive material selected from a group consisting of: copper, silver, gold, and aluminum.
7. The apparatus of claim 1, wherein the first electrical conductive path branches from the conductor.
8. The apparatus of claim 1, further comprising an apparatus casing, wherein the apparatus main terminal protrudes from the apparatus casing.
9. A receptacle structure, adapted to supply a direct current (DC) to a main connector having a connector main terminal, the receptacle structure comprising: a DC main terminal for supplying the direct current; a conductive contact electrically coupled to a resistor via a first electrical conductive path from the DC main terminal to the connector main terminal, the conductive contact located at an entrance to a receptacle casing hole of the DC receptacle; and a conductor electrically coupled to the DC main terminal; wherein the resistor is electrically coupled to the conductor, and wherein, in response to a first action in which the main connector is at a first position at the entrance to the receptacle casing hole of the DC receptacle and in contact with the conductive contact, a first current passes from the conductor to the conductive contact via the first electrical conductive path through the resistor that restricts the first current to prevent damage from inrush current and, in response to a second action in which the main connector is inserted through the entrance of the receptacle casing hole to a second position, the connector main terminal contacts both the conductive contact and the conductor that are separated by a specified distance allowing a second current to pass through the conductor to form a second electrical conductive path from the DC main terminal to the connector main terminal providing a power supply.
10. The receptacle structure of claim 9, wherein the conductive contact dangles in response to the main connector not being connected to the DC receptacle.
11. The receptacle structure of claim 9, further comprising a receptacle casing and a receptacle casing hole disposed on the receptacle casing to allow the connector main terminal to be mounted and dismounted through the receptacle casing hole.
12. The receptacle structure of claim 9, wherein the conductive contact is made of a conductive material selected from a group consisting of: copper, silver, gold, and aluminum, and wherein the conductor is made of a conductive material selected from a group consisting of: copper, silver, gold, and aluminum.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order that the advantages of the invention will be readily understood, a more particular description of the invention briefly described above will be rendered by reference to specific embodiments that are illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the invention and are not therefore to be considered to be limiting of its scope, the invention will be described and explained with additional specificity and detail through the use of the accompanying drawings.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE EMBODIMENTS
(6) Reference throughout this specification to “one embodiment,” “an embodiment,” or similar language means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, appearances of the phrases “in one embodiment,” “in an embodiment,” and similar language throughout this specification may, but do not necessarily, all refer to the same embodiment.
(7) Referring to
(8) The DC receptacle 300 is connected to a DC main, such as a solar power main, a battery main, or a capacitance, or a main for supplying power through a main adaptive apparatus. The DC receptacle 300 is, for instance, disposed at an indoor or outdoor electrical outlet or a main extension, but the present invention is not limited thereto. The DC receptacle 300 is designed for use with an AC plug (or DC main as appropriate.) The DC receptacle 300 comprises a receptacle casing 324 and a plurality of DC main terminals (not shown). The receptacle casing 324 forms at least a receiving chamber (not shown) for receiving the plurality of DC main terminals. The plurality of DC main terminals are a positive (+) terminal, a negative (−) terminal, and a protective earth (PE) terminal, respectively. Regarding a plurality of DC main terminals, the apparatus main terminals 212, 216, 220 of the power interconnection apparatus 200 can be freely mounted and dismounted, provided that receptacle casing holes 312, 316, 320 are aligned with apparatus main terminals 212, 216, 220, respectively, such that the DC main terminals can be electrically connected to the apparatus main terminals 212, 216, 220 of the power interconnection apparatus 200. The details and structures of the power supply 104, the main connector (plug) 160, and the DC receptacle 300 are identical to that of their conventional counterparts and thus are not described herein for the sake of brevity.
(9) The power interconnection apparatus 200 comprises an apparatus casing 234 and a plurality of apparatus main terminals 212, 216, 220 disposed in a manner to protrude from the apparatus casing 234. The apparatus main terminals 212, 216, 220 are a line (L) terminal, a neutral (N) terminal, and a protective earth (PE) terminal, respectively. As mentioned before, the apparatus main terminals 212, 216, 220 can be freely mounted on, dismounted from, electrically connected to, and electrically disconnected from the receptacle casing holes 312, 316, 320, respectively. The apparatus casing 234 further has a plurality of conventional apparatus casing holes 412, 420 whereby connector main terminals 112, 116, 120 of the main connector (plug) 160 are freely mounted and dismounted through the apparatus casing hole 412, an apparatus casing hole (not shown), and the apparatus casing hole 420, respectively, to therefore get electrically connected to the power interconnection apparatus 200. The apparatus casing 234 contains a plurality of conductors 236, 236A. After the conductors 236, 236A have been insertedly disposed in an apparatus casing hole (not shown) and the apparatus casing hole 420, through the connector main terminals 116, 120, respectively, the conductor 236A gets electrically connected to the apparatus main terminal 220 and the connector main terminal 120, whereas the conductor 236 gets electrically connected to the apparatus main terminal 216 and the connector main terminal 116.
(10) An arc suppressor is disposed between the apparatus main terminal 212 and the connector main terminal 112. The arc suppressor comprises a second conductor 266 and a first conductor. The first conductor branches from the second conductor 266. Alternatively, the first conductor is electrically connected to the second conductor 266 through another conductor (not shown). The second conductor 266 has one end electrically connected to the apparatus main terminal 212 and another end 268 dangling under no external force. The first conductor comprises a resistor 270 and a conductive contact 278. The resistor 270 is electrically connected to the second conductor 266. The conductive contact 278 is electrically connected to the resistor 270. The conductive contact 278 dangles under no external force. After the power interconnection apparatus 200 and the DC receptacle 300 have been electrically connected and the main connector (plug) 160 is going to get electrically connected to the power interconnection apparatus 200, the conductive contact 278 comes into contact with the connector main terminal 112 to thereby cause a first current 298 to pass through the first conductor (as shown in
(11) In other words, when the conductive contact 278 comes into contact with the connector main terminal 112, it is deemed pre-charging C.sub.Y. As indicated by the equation below, given C.sub.Y of 6.8 uF, it takes an instant, say 0.22 ms, to achieve a 240V voltage level, where Vc denotes C.sub.Y voltage, Vo denotes DC main voltage.
(12)
(13) The conductors 236, 236A are made of any conductive material, such as copper, silver, gold, or aluminum. The second conductor 266 is made of any conductive material, such as copper, silver, gold, or aluminum. The conductive contact 278 is made of any conductive material, such as copper, silver, gold, or aluminum. The conductive contact 278 is hemispherical, cylindrical, or sheet-shaped. The endpoint 268 of the second conductor 266 is hook-shaped or sheet-shaped.
(14)
(15) Referring to
(16) In addition to the aforesaid components,
(17) In another preferred embodiment of the present invention, the power interconnection apparatus 200 is integrated with the DC receptacle 300. Hence, the equivalent components and related functions of the power interconnection apparatus 200 are integrated into the receptacle casing 324 of the DC receptacle 300. Referring to
(18)
(19) providing the main connector 104 comprising a connector main terminal 112 (step 464);
(20) providing the DC main 300 comprising: a DC main terminal (not shown) for supplying the direct current; a first conductor comprising a resistor 270 and a conductive contact 278 electrically coupled to the resistor 270; and a second conductor 266 with one end electrically coupled to the DC main terminal, wherein the resistor 270 of the first conductor is electrically coupled to the second conductor 266 (step 468);
(21) causing the main connector 104 to connect with the DC main 300 (step 472);
(22) wherein, in response to the main connector 104 being connected to the DC main 300 instantaneously, the connector main terminal 112 comes into contact with the conductive contact 278, and a first current 298 passing through the first conductor is restricted by the resistor 270 (step 476); and
(23) wherein, in response to the connector main terminal 112 being connected to and positioned at the DC main 300, the connector main terminal 112 comes into contact with the conductive contact 278 and the second conductor 266, such that a second current 398 passes through the second conductor (step 480).
(24) In this preferred embodiment, the connector main terminals 112, 116, 120 of the main connector (plug) 160 (including but not limited to an AC plug initially designed for use with external AC main input) are freely mounted and dismounted through the receptacle casing holes 312, 316, 320, respectively, so as to supply a DC main to the apparatus 100 having a power supply 104 (including but not limited to an AC power supply.) Hence, the DC receptacle 300 capable of preventing or suppressing damage otherwise arising from electric arcs or sparks is implemented.
(25) In the embodiments of the present invention, an electric arc is not only defined as a phenomenon of discharging through air or an insulating medium but also includes a circuit path or electrical leakage purposefully or inadvertently brought about. Although the energy or current of electric arcs is insufficient for the electric arcs to cross an insulating layer or air gap, the electric arcs are likely to generate heat, damage components, or pose any other problems.
(26) The foregoing preferred embodiments are provided to illustrate and disclose the technical features of the present invention, and are not intended to be restrictive of the scope of the present invention. Hence, all equivalent variations or modifications made to the foregoing embodiments without departing from the spirit embodied in the disclosure of the present invention should fall within the scope of the present invention as set forth in the appended claims.