1. Field of the Invention
The present invention relates to sockets, and more specifically, the present invention relates to memory drive sockets.
2. Description of the Related Art
Internal memory storage devices have long been provided in personal and notebook computers. A common memory storage device is a hard disk drive.
However, hard disk drives are susceptible to being damaged when excessive shock, vibration, and other external forces are applied thereto. In addition, although conventional hard disk drives have relatively high capacities, the access speed thereof is relatively slow.
Other forms of internal memory have also been used, such as RAM and DRAM. However, these forms of internal memory cannot be easily removed and replaced as needed. In addition, these other forms of internal memory also have relatively low capacity although then have relatively high access speeds.
In order to overcome the problems described above, preferred embodiments of the present invention provide a memory drive socket that eliminates all of the above-described problems.
A socket for electrically connecting a memory drive unit to a circuit board according to a preferred embodiment of the present invention includes a socket housing including a base portion having a slot disposed in an approximately central portion therein, sidewalls extending upward from the base portion, and end walls extending upward from the base portion and between the sidewalls, and a locking member arranged to engage a locking structure of a memory drive unit when a memory drive unit is inserted into the memory drive socket, wherein the slot includes a plurality of contacts disposed therein which are arranged to engage corresponding contact pads of the memory drive unit, a bottom surface of the base portion includes at least one pin arranged to engage a through hole of a circuit board, and the locking member includes at least one pin disposed at a lower end portion thereof and arranged to be secured to the circuit board.
Each of the sidewalls preferably includes an opening that is arranged to expose a portion of a memory drive unit when the memory drive unit is inserted into the memory drive socket. The opening is preferably substantially U-shaped but may have other shapes.
The plurality of contacts are preferably arranged along both sides of the slot.
The at least one pin of the base portion preferably includes at least two pins.
The at least one pin of the locking member preferably includes at least two pins.
The locking members are preferably disposed in a slot in each of the end walls.
A width of the slot preferably increases from a bottom portion to a top portion of the slot so as to allow the corresponding locking member to be pushed outward when the memory drive unit is inserted into the socket housing.
The locking member preferably includes a finger tab at an upper portion of the locking member which is arranged to be engaged by a person.
The finger tabs of the locking members are preferably inclined outwardly away from one another.
The locking member preferably includes at least one locking projection extending inwardly towards the socket housing, the at least one locking projection is arranged to be engaged with depressions on the memory drive unit when a memory drive unit is inserted into the memory drive socket.
The at least one locking projection preferably has a substantially triangular shape.
At least one of the sidewalls and the end walls preferably includes a polarization structure to allow a memory drive unit to be inserted into the memory drive socket in only one orientation.
The number of contacts in the slot is preferably selected to be greater than the number of contacts provided on a memory drive unit.
An electrical assembly according to another preferred embodiment of the present invention includes the socket as described above, and one of a memory drive, a GPS device, a WiFi device, a software upgrade module, a feature expansion module, and a cable input/output disposed in the socket.
Preferably, the one of the memory drive, the GPS device, the WiFi device, the software upgrade module, the feature expansion module, and the cable input/output preferably a circuit board, and the plurality of contacts engage both sides of the circuit board.
Other features, elements, characteristics and advantages of the present invention will become more apparent from the following detailed description of preferred embodiments of the present invention with reference to the attached drawings.
Preferred embodiments of the present invention will now be described with reference to
As shown in
The socket housing 12 is preferably made of a high-temperature insulating material, such as plastic. However, the socket housing 12 may be made of any suitable material. The contacts 18 are preferably made of a conductive metal, and more preferably of a spring alloy. However, the contacts 18 may be made of any suitable conductive material.
Sidewalls 22 of the socket housing 12 extend upward from a base portion 14 of the socket housing 12. The sidewalls 22 are arranged substantially parallel to each other. End walls 24 extend from the base portion 14 between the sidewalls 22. The sidewalls 22 and the end walls 24 are arranged so as to define a slot 25 for receiving the memory drive unit 100. In this preferred embodiment, the sidewalls 22 include substantially U-shaped openings 26 disposed therein to facilitate insertion and removal of the memory drive unit 100. However, the substantially U-shaped openings 26 are not necessarily required. Furthermore, the openings 26 may have any suitable shape. The U-shaped openings 26 provide grip access to memory drive unit 100 to facilitate insertion and removal of the memory drive unit 100 in the memory drive socket 10, and to lower the memory drive socket's 10 center of gravity by reducing the mass in the upper portion of the memory drive socket 10.
Each of the end walls 24 includes a slot 28 arranged to accommodate a locking member 30. The locking members 30 include a locking projection 32 that is arranged to engage depressions (not shown) in the side of the memory drive unit 100 (see
The locking members 30 are preferably defined by a spring made of metal or molded plastic. More preferably, the locking members 30 are made of metal due to its solderability to a circuit board (not shown) which significantly improves the retention strength of the memory drive socket 10 to the circuit board.
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The locking members 30 include pins 31 extending from a lower portion thereof that are arranged to be connected to a circuit board (not shown). In the present preferred embodiment, two pins 31 are provided at the lower portion of each of the locking members 30. However, any suitable number of pins 31 may be provided. Preferably, a plurality of pins 31 are provided at the lower portion of each of the locking members 30 to provides improved stability and retention strength when the pins 31 are soldered to a circuit board. Alternatively, surface mount pins or press fit pins may be used. However, the stability and retention strength is somewhat deteriorated with these types of pins. The soldering of the pins 31 of the locking members 30 also provides an electrostatic discharge (ESD) path to ground that is spaced away from sensitive electronic devices. As noted above, the locking members 30 may alternatively be made of plastic. However, the ESD path to ground is not provided when plastic locking members are used.
A finger tab 33 extends from an upper portion of the locking member 30. The finger tab 33 is angled outwardly with respect to the socket housing 12 to facilitate engagement with a finger of a person. The finger tabs 33 of the locking members 30 are arranged to be engaged by a person to enable the locking members 30 to be pressed outwardly away from one another to remove the memory drive unit 100. The finger tab 33 preferably includes a slip-resistant surface. In the present preferred embodiment, the slip-resistant surface may include grooves to prevent slippage, for example. However, any suitable surface configuration may be used. In the present preferred embodiment, the slip-resistant surface is preferably integrally formed with the locking member 30. However, the slip-resistant surface may be made of any suitable non-slip material, such as rubber, for example, which is attached to the finger tab 33. In the present preferred embodiment, the slip resistant surface is defined by a textured metal portion of the finger tab 33.
A resilient barb 34 is arranged so as to extend outwardly from the locking members 30 in a direction opposite to the direction in which the locking projection 32 extends. The resilient barb 34 is arranged to secure the locking members 30 in the slot 28. Particularly, when the locking member 30 is inserted into the slot 28, the resilient barb 34 is disposed in a slot 29 so as to prevent the locking member 30 form sliding out of the slot 28. In this preferred embodiment, the barb 34 is provided on each of the locking members 30. However, any suitable number of barbs 34 may be provided. In addition, although the barb 34 preferably extends outwardly in a direction opposite to the direction in which the locking projection 32 extends, the barb 34 may extend outwardly in the same direction that the locking projection 32 extends. Furthermore, although the barb 34 is provided in this preferred embodiment, any other suitable type of securing structure may be used.
The locking members 30 are preferably made of a resilient metallic material such that, when the memory drive unit 100 is inserted into the memory drive socket 10, the locking members 30 are pushed outwardly away from one another, and return to their original orientation as the locking projections 32 engage with the depressions of the memory drive unit 100. Any suitable metallic material may be used, such as spring steel.
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The tails 18a of the contacts 18 are arranged to be attached to corresponding pads on a circuit board (not shown). Any suitable type of connection structure may be used, such as solder balls, solder stops, solder charges, and through-hole soldering.
Since the pins 31 and the pins 14c, in addition to the tails 18a of the contacts 18, directly connect the memory drive socket 10 to the circuit board (not shown), the memory drive socket 10 is very securely attached to the circuit board. This connection structure increases the resistance of the memory drive socket 10 to shock, vibration, and other external forces. Accordingly, the reliability and durability of the memory drive assembly is greatly improved, as compared to conventional memory drives. In addition, the combination of the memory drive unit 100 being clamped by the locking members 30, the memory drive unit 100 being in contact with and supported by the memory drive socket 10 on at least five sides, and the strong construction of the locking members 30 securely and stably connects the memory drive unit 100 to the circuit board (not shown).
The memory drive socket 10′ according to the second preferred embodiment is mounted on a circuit board (not shown) such that one of the side walls 22 is in contact with the circuit board. Accordingly, the structure of the pins 14c′, the locking members 30′, and the tails 18a′ of the contacts 18 has been modified, as compared to those in the first preferred embodiment, so as to enable horizontal mounting of the memory drive socket 10′ on the circuit board.
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Barbs 34′ are provided along edges of the arm 35 of the locking members 30′ to secure the locking members 30′ in the slot 28′. In this preferred embodiment, two barbs 34′ are provided along each edge of the locking members 30′. However, any suitable number of barbs 34′ may be provided. In addition, although the barbs 34′ are provided in this preferred embodiment, any other suitable securing structure may be used, such as a barb having a similar configuration as the barb 34 used in the first preferred embodiment.
The tails 18a′ of the contacts 18 are arranged to be attached to corresponding contact pads on a circuit board (not shown). As shown in
In the present preferred embodiment, the tails 18a′ preferably include two substantially 90° turns. However, the tails 18a′ may have any suitable arrangement that ensure secure attachment to pads of a circuit board.
Since the pins 31′ and the pins 14c′, in addition to the tails 18a′ of the contacts 18, directly connect the memory drive socket 10′ to the circuit board, the memory drive socket 10′ is very securely attached to the circuit board. This connections structure increases the resistance of the memory drive socket 10 to shock, vibration, and other external forces. Accordingly, the reliability and durability of the memory drive socket is greatly improved, as compared to conventional memory drives.
In the preferred embodiments described above, a memory drive 100 is disposed in the memory drive sockets 10, 10′. However, other modules can be disposed in the memory drive sockets 10, 10′, such as GPS devices, WiFi devices, software upgrade modules, feature expansion modules, and a cable input/output. The contacts 18 of the memory drive sockets 10 and 10′ preferably can be routed for different communication protocols, which allow for the memory drive sockets 10 and 10′ to be used with the different modules. That is, different modules can be used with a single memory drive socket 10 or 10′ mounted on a circuit board by removing and replacing the different modules.
Although the preferred embodiments described above show vertical and horizontally oriented memory drive sockets, the memory drive socket may be oriented in any suitable orientation, as long as the memory drive socket can be securely attached to a circuit board.
It should be understood that the foregoing description is only illustrative of the present invention. Various alternatives and modifications can be devised by those skilled in the art without departing from the present invention. Accordingly, the present invention is intended to embrace all such alternatives, modifications and variations which fall within the scope of the appended claims.
Number | Date | Country | |
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60973073 | Sep 2007 | US |