Abstract:
A multi-frequency antenna includes a first antenna element having a first antenna member for receiving and transmitting signals in a first frequency band and a second antenna member for receiving and transmitting signals in a second frequency band. The first antenna member has opposite first and second ends. The second antenna member has opposite third and fourth ends respectively disposed adjacent to and remote from the first end of the first antenna member. The fourth end of the second antenna member is connected electrically to the first end of the first antenna member so as to form a feed point. A C-shaped second antenna element has opposite ends, one of which is connected electrically to the third end of the second antenna member of the first antenna element.
Abstract:
A mobile device includes a ground plane, a grounding branch, and a feeding element. The grounding branch is coupled to the ground plane, wherein a slot is formed between the ground plane and the grounding branch. The feeding element extends across the slot. The feeding element is coupled between the grounding branch and a signal source. An antenna structure is formed by the feeding element and the grounding branch.
Abstract:
A multi-band antenna for a portable communication device is disclosed, in which the communication device includes a first housing, a second housing and a substrate. The multi-band antenna includes a feeding portion, a system ground plane, a metal ring, a resonant cavity, a first and a second radiating portion. The system ground plane is disposed on the substrate. The metal ring is connected to the first housing, and forms a space with the first housing to accommodate the substrate, in which the metal ring is electrically coupled to the system ground plane through a plurality of ground ends. The resonant cavity is formed between the system ground plane and the metal ring to generate a first resonant mode. The first and the second radiating portion are disposed on the second housing, for generating a second and a third resonant mode, respectively.
Abstract:
A multi-band antenna for a portable communication device is disclosed, in which the communication device includes a first housing, a second housing and a substrate. The multi-band antenna includes a feeding portion, a system ground plane, a metal ring, a resonant cavity, a first and a second radiating portion. The system ground plane is disposed on the substrate. The metal ring is connected to the first housing, and forms a space with the first housing to accommodate the substrate, in which the metal ring is electrically coupled to the system ground plane through a plurality of ground ends. The resonant cavity is formed between the system ground plane and the metal ring to generate a first resonant mode. The first and the second radiating portion are disposed on the second housing, for generating a second and a third resonant mode, respectively.
Abstract:
A multi-band planar antenna includes first and second radiating elements. The first radiating element is operable within a first frequency bandwidth. The second radiating element is operable within a second frequency bandwidth. The first radiating element is formed with a slot that generates resonance within the second frequency bandwidth, thereby lowering the VSWR, widening the bandwidth, and increasing the antenna gain of the planar antenna in the second frequency bandwidth.
Abstract:
A mobile device includes a substrate, a ground element, and a radiation branch. The ground element includes a ground branch, wherein an edge of the ground element has a notch extending into the interior of the ground element so as to form a slot region, and the ground branch partially surrounds the slot region. The radiation branch is substantially inside the slot region, and is coupled to the ground branch of the ground element. The ground branch and the radiation branch form an antenna structure.
Abstract:
An antenna module includes a dielectric substrate mounted in a housing of a portable electronic apparatus and having a grounding layer that extends parallel to a mounting surface and that is connected electrically to first and second contacts on the mounting surface via first and second conductive vias formed in the substrate and extending from the mounting surface to the grounding layer, respectively. A radiating element is disposed on the mounting surface of the substrate and is connected electrically to the first contact. A conductive grounding member is mounted detachably on the mounting surface of the substrate, and has a first section that is connected electrically to the second contact, and a second section connected electrically to the first section and spaced apart from the radiating element in a direction transverse to the mounting surface of the substrate.
Abstract:
An antenna module includes a dielectric substrate mounted in a housing of a portable electronic apparatus and having a grounding layer that extends parallel to a mounting surface and that is connected electrically to first and second contacts on the mounting surface via first and second conductive vias formed in the substrate and extending from the mounting surface to the grounding layer, respectively. A radiating element is disposed on the mounting surface of the substrate and is connected electrically to the first contact. A conductive grounding member is mounted detachably on the mounting surface of the substrate, and has a first section that is connected electrically to the second contact, and a second section connected electrically to the first section and spaced apart from the radiating element in a direction transverse to the mounting surface of the substrate.
Abstract:
An antenna assembly includes first and second antennas each generating a resonant mode to cover an operating bandwidth, and a transmission line. The first includes a first radiation unit with a feed-in portion coupled to a first feed portion in contact with a core wire of a coaxial cable and a first grounding portion. The second antenna includes a second radiation unit with a second feed-in portion coupled to a second feed portion in contact with a conductive shielding layer of the coaxial cable and a second grounding portion. The transmission line includes first and second connecting portions coupled respectively to the second feed portion of the second feed-in portion. When a signal within the operating bandwidth is transmitted through the coaxial cable, the energy of the signal is distributed among the first and second antennas.
Abstract:
An antenna module is adapted for disposing in an electronic apparatus that includes first and second housing members and that is operable in a tablet mode, in which the first and second housing members are disposed in a manner that the first housing member overlaps the second housing member. The antenna module includes: a first antenna element to be disposed in the first housing member; and a second antenna element to be disposed in the second housing member, and corresponding substantially in position and proximate to the first antenna element for electromagnetic coupling therewith when the electronic apparatus is operated in the tablet mode.