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Chip Monolithic Ceramic Capacitors
Capacitor Arrays
GNM1M2/212
P
GNM214/314
P
■ Features
■ Applications
L
Part Number
GNM314
8
L
W
General electronic equipment
GNM1M2
GNM212
GNM214
T
T
1. High density mounting due to mounting space saving
2. Mounting cost saving
L
1.37 ±0.15
2.0 ±0.15
3.2 ±0.15
Dimensions (mm)
W
T
1.0 ±0.15
0.6 ±0.1
0.85 ±0.1
1.25 ±0.15
0.6 ±0.1
0.8 ±0.1
1.6 ±0.15
1.0 ±0.1
W
P
0.64 ±0.05
1.0 ±0.1
0.5 ±0.05
0.8 ±0.1
Temperature Compensating Type
Part Number
GNM31
LxW
3.2x1.6
C0G
(5C)
TC
Rated Volt.
100
(2A)
50
(1H)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
10pF(100)
0.8(4)
0.8(4)
11pF(110)
0.8(4)
0.8(4)
12pF(120)
0.8(4)
0.8(4)
13pF(130)
0.8(4)
0.8(4)
15pF(150)
0.8(4)
0.8(4)
16pF(160)
0.8(4)
0.8(4)
18pF(180)
0.8(4)
0.8(4)
20pF(200)
0.8(4)
0.8(4)
22pF(220)
0.8(4)
0.8(4)
24pF(240)
0.8(4)
0.8(4)
27pF(270)
0.8(4)
0.8(4)
30pF(300)
0.8(4)
0.8(4)
33pF(330)
0.8(4)
0.8(4)
36pF(360)
0.8(4)
0.8(4)
39pF(390)
0.8(4)
0.8(4)
43pF(430)
0.8(4)
0.8(4)
47pF(470)
0.8(4)
0.8(4)
51pF(510)
0.8(4)
0.8(4)
56pF(560)
0.8(4)
0.8(4)
62pF(620)
0.8(4)
0.8(4)
68pF(680)
0.8(4)
0.8(4)
75pF(750)
0.8(4)
0.8(4)
82pF(820)
0.8(4)
0.8(4)
91pF(910)
0.8(4)
0.8(4)
100pF(101)
0.8(4)
0.8(4)
110pF(111)
0.8(4)
0.8(4)
120pF(121)
0.8(4)
0.8(4)
130pF(131)
0.8(4)
0.8(4)
150pF(151)
0.8(4)
0.8(4)
160pF(161)
0.8(4)
180pF(181)
0.8(4)
Continued on the following page.
42
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Continued from the preceding page.
Part Number
GNM31
LxW
3.2x1.6
C0G
(5C)
TC
100
(2A)
Rated Volt.
50
(1H)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
200pF(201)
0.8(4)
220pF(221)
0.8(4)
240pF(241)
0.8(4)
270pF(271)
0.8(4)
300pF(301)
0.8(4)
330pF(331)
0.8(4)
360pF(361)
0.8(4)
The part numbering code is shown in each ( ). The (4) code in T(mm) means number of elements (four).
Dimensions are shown in mm and Rated Voltage in Vdc.
High Dielectric Constant Type GNM1 Series
8
GNM1M
Part Number
1.37x1.00
LxW
X7R
(R7)
TC
16
(1C)
Rated Volt.
10
(1A)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
22000pF(223)
0.6(2)
47000pF(473)
0.6(2)
0.10µF(104)
0.6(2)
The part numbering code is shown in each ( ). The (2) code in T(mm) means number of elements (two).
Dimensions are shown in mm and Rated Voltage in Vdc.
High Dielectric Constant Type GNM2 Series
GNM21
Part Number
2.0x1.25
LxW
TC
X7R
(R7)
Rated Volt.
50
(1H)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
1000pF(102)
0.6(4)
10000pF(103)
0.6(4)
The part numbering code is shown in each ( ). The (4) code in T(mm) means number of elements (four).
Dimensions are shown in mm and Rated Voltage in Vdc.
High Dielectric Constant Type GNM3 Series
Part Number
GNM31
LxW
3.2x1.6
X7R
(R7)
TC
Rated Volt.
100
(2A)
50
(1H)
Y5V
(F5)
25
(1E)
16
(1C)
100
(2A)
50
(1H)
16
(1C)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
220pF(221)
0.8(4)
Continued on the following page.
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Continued from the preceding page.
GNM31
Part Number
3.2x1.6
LxW
X7R
(R7)
TC
Rated Volt.
100
(2A)
50
(1H)
Y5V
(F5)
25
(1E)
16
(1C)
100
(2A)
50
(1H)
16
(1C)
Capacitance (Capacitance part numbering code) and T (mm) Dimension (T Dimension part numbering code)
8
270pF(271)
0.8(4)
330pF(331)
0.8(4)
390pF(391)
0.8(4)
0.8(4)
470pF(471)
0.8(4)
0.8(4)
560pF(561)
0.8(4)
0.8(4)
680pF(681)
0.8(4)
0.8(4)
820pF(821)
0.8(4)
0.8(4)
1000pF(102)
0.8(4)
0.8(4)
1200pF(122)
0.8(4)
0.8(4)
1500pF(152)
0.8(4)
0.8(4)
1800pF(182)
0.8(4)
0.8(4)
2200pF(222)
0.8(4)
0.8(4)
2700pF(272)
0.8(4)
0.8(4)
3300pF(332)
0.8(4)
0.8(4)
3900pF(392)
0.8(4)
0.8(4)
4700pF(472)
0.8(4)
0.8(4)
5600pF(562)
0.8(4)
6800pF(682)
0.8(4)
8200pF(822)
0.8(4)
10000pF(103)
0.8(4)
12000pF(123)
0.8(4)
15000pF(153)
0.8(4)
18000pF(183)
0.8(4)
0.8(4)
0.8(4)
0.8(4)
22000pF(223)
0.8(4)
27000pF(273)
0.8(4)
33000pF(333)
0.8(4)
39000pF(393)
0.8(4)
47000pF(473)
1.0(4)
68000pF(683)
1.0(4)
0.8(4)
0.10µF(104)
1.0(4)
0.8(4)
0.15µF(154)
The part numbering code is shown in each ( ). The (4) code in T(mm) means number of elements (four).
Dimensions are shown in mm and Rated Voltage in Vdc.
44
0.8(4)
0.8(4)
0.8(4)
0.8(4)
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Specifications and Test Methods
Specifications
No.
1
Item
Operating
Temperature Range
Test Method
Temperature
Compensating Type
High Dielectric Type
R7 : Y55D to +125D
F5 : Y30D to +85D
5C : Y55D to +125D
2
Rated Voltage
See the previous pages.
The rated voltage is defined as the maximum voltage which
may be applied continuously to the capacitor.
When AC voltage is superimposed on DC voltage, VP-P or VO-P,
whichever is larger, should be maintained within the rated voltage range.
3
Appearance
No defects or abnormalities
Visual inspection
4
Dimension
Within the specified dimensions
Using calipers
5
Dielectric Strength
No defects or abnormalities
No failure should be observed when 300% of the rated voltage
(5C) or 250% of the rated voltage (R7, F5) is applied between
the terminations for 1 to 5 seconds, provided the charge/discharge current is less than 50mA.
6
Insulation Resistance
More than 10,000MΩ or 500Ω • F
(Whichever is smaller)
The insulation resistance should be measured with a DC voltage not exceeding the rated voltage at 25D and 75%RH max.
and within 2 minutes of charging.
7
Capacitance
Within the specified tolerance
8
9
Q/Dissipation Factor
(D.F.)
30pF min. : QU1000
30pF max. : QU400+20C
C : Nominal Capacitance
(pF)
Capacitance
Change
Within the specified
tolerance (Table A)
Temperature
Coefficient
Within the specified
tolerance (Table A)
The capacitance/Q/D.F. should be measured at 25D at the frequency and voltage shown in the table.
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
Temp. Reference
Cap.
Range
Temp.
Change
WithinT15%
R7 Y55 to W125D
25D
W22
WithinT
F5 Y30 to W85D
Y82 %
Char.
Capacitance
Temperature
Characteristics
Capacitance
Drift
Within T0.2% or T0.05 pF
(Whichever is larger)
Char.
Item
Frequency
Voltage
5C
1T0.1MHz
R7, F5
1T0.1kHz
0.5 to 5Vr.m.s.
1.0T0.2Vr.m.s.
The capacitance change should be measured after 5 min. at
each specified temperature stage.
(1) Temperature Compensating Type
The temperature coefficient is determined using the
capacitance measured in step 3 as a reference.
When cycling the temperature sequentially from step1
through 5, the capacitance should be within the specified
tolerance for the temperature coefficient and capacitance
change as Table A.
The capacitance drift is calculated by dividing the
differences between the maximum and minimum measured
values in steps 1, 3 and 5 by the capacitance value in step 3.
Step
1
Temperature (D)
25T2
2
Y55T3 (for 5C/ R7), Y30T3 (for F5)
3
25T2
4
125T3 (for 5C/R7), 85T3 (F5)
5
25T2
(2) High Dielectric Constant Type
The ranges of capacitance change compared with the
above 25D value over the temperature ranges shown in the
table should be within the specified ranges.
No removal of the terminations or other defect should occur.
b
Adhesive Strength
of Termination
d
10
c
a
Solder the capacitor to the test jig (glass epoxy board) shown in
Fig. 1 using a eutectic solder. Then apply 5N force in parallel
with the test jig for 10T1 sec.
The soldering should be done either with an iron or using the
reflow method and should be conducted with care so that the
soldering is uniform and free of defects such as heat shock.
Solder resist
Copper foil
Type
GNM1M
GNM21
GNM31
a
0.5
0.4
0.8
b
Y
1.6
2.5
c
0.32
0.25
0.4
d
0.32
0.5
0.8
(in mm)
Fig. 1
Continued on the following page.
45
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Specifications and Test Methods
Continued from the preceding page.
Specifications
No.
11
Item
Test Method
Temperature
Compensating Type
High Dielectric Type
Appearance
No defects or abnormalities
Capacitance
Within the specified tolerance
30pF min. : QU1000
30pF max. : QU400W20C
Vibration
Resistance
Q/D.F.
C : Nominal Capacitance
(pF)
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
No cracking or marking defects should occur.
Solder the capacitor on the test jig (glass epoxy board) shown
in Fig. 2 using a eutectic solder. Then apply a force in the direction shown in Fig. 3 for 5T1 sec. The soldering should be done
either with an iron or using the reflow method and should be
conducted with care so that the soldering is uniform and free of
defects such as heat shock.
40
#GNMpp2
40
#GNMpp4
Solder the capacitor to the test jig (glass epoxy board) in the
same manner and under the same conditions as (10).
The capacitor should be subjected to a simple harmonic motion
having a total amplitude of 1.5mm, the frequency being varied
uniformly between the approximate limits of 10 and 55Hz.
The frequency range, from 10 to 55Hz and return to 10Hz,
should be traversed in approximately 1 minute. This motion
should be applied for a period of 2 hours in each of 3 mutually
perpendicular directions (total of 6 hours).
8
T¥
T¥
20
12
5.0
a
b
Deflection
100
5.0
a
b
c
1.0
c
d
Type
GNM1M
GNM21
GNM31
100
50 Pressurizing
speed : 1.0mm/sec.
Pressurize
R230
1.0
Flexure : V1
d
a
2.0T0.05
2.0T0.05
2.5T0.05
b
0.5T0.05
0.7T0.05
0.8T0.05
c
0.32T0.05
0.3T0.05
0.4T0.05
d
0.32T0.05
0.2T0.05
0.4T0.05
Capacitance meter
45
45
(in mm)
Fig. 3
(in mm)
t=0.8mm (GNM21), 1.6mm (GNM31)
Fig. 2
13
Solderability of
Termination
75% of the terminations are to be soldered evenly and
continuously.
Immerse the capacitor in a solution of ethanol (JIS-K-8101) and
rosin (JIS-K-5902) (25% rosin in weight proportion). Preheat at
80 to 120D for 10 to 30 seconds. After preheating, immerse in
eutectic solder solution for 2T0.5 seconds at 230T5D.
The measured and observed characteristics should satisfy the
specifications in the following table.
Resistance
14 to Soldering
Heat
Appearance
No marking defects
Capacitance
Change
Within T2.5% or T0.25pF
(Whichever is larger)
30pF min. : QU1000
30pF max. : QU400+20C
Q/D.F.
C : Nominal Capacitance
(pF)
R7 : Within T7.5%
F5 : Within T20%
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
I.R.
More than 10,000MΩ or 500Ω • F (Whichever is smaller)
Dielectric
Strength
No failure
The measured and observed characteristics should satisfy the
specifications in the following table.
15
Appearance
No marking defects
Capacitance
Change
Within T2.5% or T0.25pF
(Whichever is larger)
30pF min. : QU1000
30pF max. : QU400+20C
Temperature
Cycle
Q/D.F.
C : Nominal Capacitance
(pF)
R7 : Within T7.5%
F5 : Within T20%
Preheat the capacitor at 120 to 150D for 1 minute. Immerse the
capacitor in a eutectic solder solution at 270T5D for 10T0.5
seconds. Let sit at room temperature for 24T2 hours (temperature compensating type) or 48T4 hours (high dielectric constant
type), then measure.
# Initial measurement for high dielectric constant type
Perform a heat treatment at 150 W0
Y10 D for one hour and then
let sit for 48T4 hours at room temperature. Perform the initial
measurement.
Fix the capacitor to the supporting jig in the same manner and
under the same conditions as (10). Perform the five cycles
according to the four heat treatments listed in the following
table. Let sit for 24T2 hours (temperature compensating type)
or 48T4 hours (high dielectric constant type) at room temperature, then measure
Step
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
I.R.
More than 10,000MΩ or 500Ω • F (Whichever is smaller)
Dielectric
Strength
No failure
1
2
3
4
Min. Operating Room Max. Operating Room
Temp. (D)
Temp. W0
Temp. W3
Y3
Y0
Temp.
Temp.
Time (min.)
30T3
2 to 3
30T3
2 to 3
# Initial measurement for high dielectric constant type
Perform a heat treatment at 150 W0
Y10 D for one hour and then
let sit for 48T4 hours at room temperature. Perform the initial
measurement.
Continued on the following page.
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Specifications and Test Methods
Continued from the preceding page.
Specifications
No.
Item
Temperature
Compensating Type
Test Method
High Dielectric Type
The measured and observed characteristics should satisfy the
specifications in the following table.
16
Humidity
Steady
State
Appearance
No marking defects
Capacitance
Change
Within T5% or T0.5pF
(Whichever is larger)
R7 : Within T12.5%
F5 : Within T30%
Q/D.F.
30pF and over : QU350
10pF and over, 30pF and
below :
QU275+5C/2
10pF and below :
QU200+10C
C : Nominal Capacitance
(pF)
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
I.R.
More than 1,000MΩ or 50Ω • F (Whichever is smaller)
Dielectric
Strength
No failure
Let the capacitor sit at 40T2D and 90 to 95% humidity for
500T12 hours.
Remove and let sit for 24T2 hours (temperature compensating
type) or 48T4 hours (high dielectric constant type) at room temperature, then measure.
8
The measured and observed characteristics should satisfy the
specifications in the following table.
17
Appearance
No marking defects
Capacitance
Change
Within T7.5% or T0.75pF
(Whichever is larger)
Humidity
Load
Q/D.F.
30pF and over : QU200
30pF and below :
QU100+10C/3
C : Nominal Capacitance
(pF)
R7 : Within T12.5%
F5 : Within T30%
10V
16V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
I.R.
More than 500MΩ or 25Ω • F (Whichever is smaller)
Dielectric
Strength
No failure
Apply the rated voltage at 40T2D and 90 to 95% humidity for
500T12 hours. Remove and let sit for 24T2 hours (temperature
compensating type) or 48T4 hours (high dielectric constant
type) at room temperature, then measure. The charge/discharge current is less than 50mA.
The measured and observed characteristics should satisfy the
specifications in the following table.
18
High
Temperature
Load
Appearance
No marking defects
Capacitance
Change
Within T3% or T0.3pF
(Whichever is larger)
R7 : Within T12.5%
F5 : Within T30%
30pF and over : QU350
10pF and over, 30pF and
below :
QU275+5C/2
10pF and below :
QU200+10C
16V
10V
Char. 25V min.
R7 0.025 max. 0.035 max. 0.035 max.
Y
F5 0.05 max. 0.07 max.
Q/D.F.
C : Nominal Capacitance
(pF)
I.R.
More than 1,000MΩ or 50Ω • F (Whichever is smaller)
Dielectric
Strength
No failure
Apply 200% of the rated voltage for 1000T12 hours at the
maximum operating temperature T3D. Let sit for 24T2 hours
(temperature compensating type) or 48T4 hours (high dielectric
constant type) at room temperature, then measure.
The charge/discharge current is less than 50mA.
#Initial measurement for high dielectric constant type.
Apply 200% of the rated DC voltage for one hour at the maximum operating temperature T3D. Remove and let sit for 48T4
hours at room temperature. Perform initial measurement.
Table A
Capacitance Change from 25D (%)
Char.
Nominal Values
(ppm/D) Note 1
Y55
Max.
Min.
0T30
Y0.24
0.58
5C
Note 1 : Nominal values denote the temperature coefficient within a range of 25D to 125D.
Y30
Max.
0.40
Y10
Min.
Y0.17
Max.
0.25
Min.
Y0.11
47