IP Library Granted Patent US 10,074,903
Granted Patent B2
US 10,074,903 · App. 14/524,735 · Granted Sep 11, 2018

Antenna apparatus

Inventors: Bumkyum Kim (Gyeonggi-do, KR); Taeyeop Lee (Gyeonggi-do, KR); Youngho Cho (Gyeonggi-do, KR); Bonkee Kim (Gyeonggi-do, KR)
Assignee: HIDEEP INC.
H01Q5/328H01Q5/335H01Q9/0407H01Q9/065H01Q13/085H01Q13/103H03H7/38
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Quick Facts
Patent No.
US 10,074,903
App. No.
14/524,735
Granted
Sep 11, 2018
Kind
B2
Abstract

An antenna apparatus may be provided that includes: a radiating metal; a ground which is connected to the radiating metal; a first impedance which forms a first path by being connected between the radiating metal and the ground, has an impedance value which is changed depending on a frequency, and opens the first path in response to a predetermined frequency, and a second impedance which forms a second path parallel with the first path by being connected between the radiating metal and the ground, has an impedance value which is changed depending on a frequency, and short-circuits the second path in response to the predetermined frequency.

Claims (27)

1. An antenna apparatus comprising:

a radiating metal;

a first impedance which is connected between the radiating metal and a ground, has an impedance value which is changed depending on a frequency, and resonates in response to a predetermined frequency, so that an open-circuit occurs between the radiating metal and the ground at the predetermined frequency; and

a second impedance which is connected between the radiating metal and the ground, has an impedance value which is changed depending on a frequency, and resonates in response to the predetermined frequency, so that a short-circuit occurs between the radiating metal and the ground at the predetermined frequency;

wherein a first inductor and a first capacitor of the first impedance are connected in parallel to each other;

wherein a second inductor and a second capacitor of the second impedance are connected in series to each other;

wherein the first impedance becomes an inductor component in response to a signal having a frequency less than the predetermined frequency, wherein the second impedance becomes a capacitor component in response to the signal having a frequency less than the predetermined frequency, and wherein the inductor component and the capacitor component resonate at the signal having a frequency less than the predetermined frequency; and

wherein the first impedance becomes a capacitor component in response to a signal having a frequency greater than the predetermined frequency, wherein the second impedance becomes an inductor component in response to the signal having a frequency greater than the predetermined frequency, and wherein the capacitor component and the inductor component resonate at the signal having a frequency greater than the predetermined frequency.

2. The antenna apparatus of claim 1 , comprising a third impedance and a fourth impedance which are connected in series to the radiating metal, wherein the third impedance is opened in response to the predetermined frequency, and wherein the fourth impedance is short-circuited in response to the predetermined frequency.

3. The antenna apparatus of claim 2 , wherein a third inductor and a third capacitor of the third impedance are connected in parallel to each other.

4. The antenna apparatus of claim 3 , wherein a fourth inductor and a fourth capacitor of the fourth impedance are connected in series to each other.

5. The antenna apparatus of claim 2 , wherein the third impedance becomes an inductor component in response to the signal having a frequency less than the predetermined frequency, wherein the fourth impedance becomes a capacitor property in response to the signal having a frequency less than the predetermined frequency, and wherein the inductor component and the capacitor component resonate at the signal having a frequency less than the predetermined frequency.

6. The antenna apparatus of claim 2 , wherein the third impedance becomes a capacitor component in response to the signal having a frequency greater than the predetermined frequency, wherein the fourth impedance becomes an inductor component in response to the signal having a frequency greater than the predetermined frequency, and wherein the capacitor component and the inductor component resonate at the signal having a frequency greater than the predetermined frequency.

7. The antenna apparatus of claim 1 , wherein the radiating metal comprises a first radiating metal which resonates in response to the signal having a lower frequency than the predetermined frequency, and comprises a second radiating metal which resonates in response to the signal having a frequency greater than the predetermined frequency.

8. An antenna apparatus comprising:

a radiating metal;

a third impedance having a first end and an opposite second end, the first end is connected to the radiating metal; and

a fourth impedance of which one end is connected to the second end of the third impedance;

wherein the third impedance is opened in response to a predetermined frequency, and the fourth impedance is short-circuited in response to the predetermined frequency;

wherein the third impedance becomes an inductor component in response to a signal having a frequency less than the predetermined frequency, wherein the fourth impedance becomes a capacitor component in response to a signal having a frequency less than the predetermined frequency, and wherein the inductor component and the capacitor component resonate at the signal having a frequency less than the predetermined frequency; and

wherein the third impedance becomes a capacitor component in response to a signal having a frequency greater than the predetermined frequency, wherein the fourth impedance becomes an inductor component in response to a signal having a frequency greater than the predetermined frequency, and wherein the capacitor component and the inductor component resonate at the signal having a frequency greater than the predetermined frequency.

9. The antenna apparatus of claim 8 , wherein a third inductor and a third capacitor of the third impedance are connected in parallel to each other.

10. The antenna apparatus of claim 8 , wherein a fourth inductor and a fourth capacitor of the fourth impedance are connected in series to each other.

11. The antenna apparatus of claim 8 , comprising:

a first impedance which is connected between the radiating metal and a ground, has an impedance value which is changed depending on a frequency, and resonates in response to the predetermined frequency, so that an open-circuit occurs between the radiating metal and the ground; and

a second impedance which is connected between the radiating metal and the ground, has an impedance value which is changed depending on a frequency, and resonates in response to the predetermined frequency, so that a short-circuit occurs between the radiating metal and the ground.

12. The antenna apparatus of claim 8 , wherein the radiating metal comprises a first radiating metal which resonates in response to a signal having a frequency less than the predetermined frequency, and comprises a second radiating metal which resonates in response to a signal having a frequency greater than the predetermined frequency.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2014
From: KIM, BUMKYUM; LEE, TAEYEOP; CHO, YOUNGHO; KIM, BONKEE
To: HIDEEP INC.
Reel/Frame 034043/0438 →
Priority Claims (1)
KR 10-2013-0128212 · Oct 28, 2013 · national
Continuity (1)
Related Publication 20150116167A1 · Apr 30, 2015
Cited By (1)
US 12,548,544