Rabu, 19 Juli 2017
Understanding Arcade Game Sensors: Switch Sensors & Infrared (IR) Technology
Posted on Juli 19, 2017 by tohar bpz
Minggu, 16 Juli 2017
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Senin, 10 Juli 2017
Engineering basic | PCB Compare crazy clock
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Minggu, 09 Juli 2017
engineering basic | Dinosaur century monitor no signal
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Kamis, 06 Juli 2017
Engineering Basics: How Infrared Sensors Work in Street Basketball Arcade Games
Posted on Juli 06, 2017 by tohar bpz
In street basketball arcade games, precise score tracking relies on a fast, reliable detection mechanism. The heart of this system is the infrared (IR) sensor module. Understanding how these sensors operate, how they are installed, and how to troubleshoot them ensures your machines stay fully operational, keeping player engagement high and maintenance downtime low.
The Core Principle: Beam Interruption Detection
An infrared sensor system uses infrared light as the transmission medium between an emitter (transmitter) and a receiver.
Unlike standard optical sensors that constantly search for a reflecting signal, an arcade basketball sensor operates on the principle of beam interruption:
The transmitter continuously projects an invisible infrared beam toward a target point.
Under normal conditions, the receiver constantly detects this light beam.
When a basketball passes through the hoop, it blocks the infrared beam.
The sudden loss of signal alerts the main control board to register a successful score.
[IR Transmitter] ---- (Infrared Beam) ----> [Reflector / Receiver]
|
[Basketball Passes]
|
(Beam Blocked = Score!)Sensor Installation & Hardware Configuration
Street basketball arcade sensors are custom-engineered into consolidated single-module units built to withstand constant vibration and environmental exposure.
A standard basketball hoop installation consists of:
2 Sensor Modules: Mounted strategically along the rim to cover the basket's entry zone accurately.
1 Reflector: Positioned directly opposite or aligned with the modules to bounce back or complete the beam path.
This multi-sensor setup prevents false triggers—such as a player’s hand grazing the net—and ensures that only an object with the full diameter of a basketball breaks the beam paths to trigger a point.
How to Test and Diagnose Basketball Hoop Sensors
Testing your IR sensor module is simple and requires no specialized equipment. You can verify its functionality using a manual hand test while observing the module’s LED status indicators.
Step-by-Step Manual Test Procedure:
Power On: Ensure the arcade machine is powered on and in standby mode.
Block the Beam: Place your hand directly in front of the sensor module to interrupt the infrared beam.
Unblock the Beam: Remove your hand to let the signal reconnect.
Observe the LED: Watch the indicator LEDs on the back or side of the sensor module during both states.
Decoding LED Status (NO vs. NC Configurations)
Depending on the manufacturer, the sensor module will display different LED patterns to indicate state changes:
| Configuration / Type | Beam Unblocked (Normal) | Beam Blocked (Hand / Ball) |
| Standard Single LED (NO) | LED OFF | LED ON |
| Standard Single LED (NC) | LED ON | LED OFF |
| Dual-LED Indicator (Common) | Green or Red LED (NC/Idle) | Yellow or Green LED (NO/Triggered) |
Note: Consult your machine’s service manual if the LED behavior does not match standard Normally Open (NO) or Normally Closed (NC) switching logic.
Common Sensor Failure Modes & Quick Fixes
When a basketball goes through the hoop but the machine fails to register points, the infrared sensor system is usually the main culprit. Here are the most common issues and how to resolve them:
1. Dirty or Misaligned Reflector
Symptom: Points fail to register, or points register continuously without a ball passing through.
Cause: Dust, grease, or fingerprints on the reflector surface scatter the infrared beam.
Fix: Wipe the reflector lens and sensor module face with a micro-fiber cloth and mild glass cleaner. Ensure the reflector is precisely aligned with the sensor optical axis.
2. Broken or Loose Wiring Harness
Symptom: LED indicators stay completely unlit regardless of hand testing.
Cause: Constant vibration from rim impacts can loosen connector pins or snap signal/power wires inside the harness.
Fix: Check continuity using a digital multimeter. Resolder severed wires or replace the wiring harness assembly.
3. Module Physical Damage or Component Degradation
Symptom: LED indicators flicker inconsistently or fail to change state when the beam is broken.
Cause: Internal IR diode degradation or structural damage from heavy ball impacts.
Fix: Replace the faulty sensor module with an OEM-compatible unit.
Keep Your Arcade Machines Revenue-Ready
A non-scoring basketball game leads to frustrated players and lost revenue. By performing routine checks on your infrared sensor modules—cleaning reflectors, inspecting cables, and verifying LED indicator states—you can prevent unexpected downtime and maintain peak equipment performance.
Engineering Basics: Gate Ball Motors in "Hungry Dog" & Washing Machine Component Equivalents
Posted on Juli 06, 2017 by tohar bpz
In arcade skill and ticket redemption games like Hungry Dog (and similar feeding/gate-mechanism arcade machines), the motorized Gate Ball mechanism opens and closes gates to allow or block balls from entering scoring targets.
Because these mechanisms run continuously under heavy mechanical loads, technicians often encounter motor failures. Interestingly, the underlying motor technology used in these arcade gate modules is almost identical in design and operating principle to the Drain Motor (Motor Drain) found in automatic washing machines.
1. Common Faults & Failures in Gate Ball Motors
When the ball gate on Hungry Dog fails to open, hesitates, or moves sluggishly, the issue usually stems from three main engineering factors:
A. Worn or Stripped Gearbox Teeth
Mechanism: Inside the motor assembly sits a multi-stage reduction gearbox designed to multiply torque.
Failure Mode: High usage and ball jams cause plastic gears to wear down or strip completely.
Symptom: The internal motor hums or spins fast, but the gate lever moves very slowly, stutters, or lacks the torque to lift against ball weight.
B. Low Operating Voltage
Mechanism: Electric motors require a specific voltage and current threshold to generate nominal electromagnetic torque.
Failure Mode: Voltage drops across aged cabinet harnesses, high-resistance power supply terminals, or faulty driver relays.
Symptom: Insufficient power causes weak rotation and excessive coil heating. Overheating further increases internal winding resistance, creating a heat-degradation cycle that leads to complete motor burnout.
C. Weakened Motor Windings (Coil Degradation)
Mechanism: The motor's stator coil develops partial internal short circuits due to thermal insulation breakdown.
Failure Mode: The motor loses magnetic efficiency and rotational force.
Symptom: The motor emits a loud humming sound (buzzing) upon activation but fails to turn the reduction gears.
2. Component Equivalents: Washing Machine Drain Motors (Motor Drain)
For arcade technicians, understanding how a washing machine Drain Motor works provides invaluable insight into servicing and cross-referencing arcade gate actuators.
Function of a Drain Motor
In washing machines, the Drain Motor serves two main roles:
Drain Valve Actuation: It pulls the rubber seal lever inside the drain casing (case divi) to discharge water from the tub.
Drive Mechanism Engagement: It shifts the mechanical clutch system, switching the drive motor from wash mode to spin cycle mode.
Arcade Parallel: Just as a Drain Motor pulls a wire cable to open a water valve under heavy spring tension, a Hungry Dog Gate Ball motor pulls a lever or cable to clear ball gates under constant mechanical resistance.
3. Common Failures in Drain Motors & Diagnostic Comparison
If a washing machine fails to enter the spin cycle, or if a Hungry Dog gate fails to drop, the diagnostic path is remarkably similar:
| Failure Mode | Root Cause in Washing Machine | Arcade Machine (Hungry Dog) Equivalent |
| Motor Jams / Fails to Pull | Damaged internal reduction gear or mechanical binding in the drain valve spring. | Stripped plastic gears inside the Gate Ball reduction motor box. |
| No Motor Movement | $220\text{V AC}$ drive voltage missing from the main control board relay. | Control signal missing from mainboard PCB or blown driver relay/transistor. |
| Motor Runs But No Pull Action | The pull wire/cable has unhooked or snapped from the drain valve lever. | Linkage rod or wire cable disconnected from the Gate Ball lever arm. |
4. Diagnostic Procedure: Checking Gate Motors & Drain Motors
Whether troubleshooting a $220\text{V AC}$ washing machine drain motor or a $12\text{V/24V DC}$ arcade gate motor, follow this step-by-step diagnostic process:
[GATE / DRAIN MOTOR FAILURE]
│
┌─────────────────────────────┴─────────────────────────────┐
▼ ▼
[Voltage Present at Terminal?] [No Voltage at Terminal?]
│ │
┌─────────┴─────────┐ ┌─────────┴─────────┐
│ YES │ │ NO │
├───────────────────┤ ├───────────────────┤
│ • Check gears │ │ • Check PCB relay │
│ • Test winding │ │ • Check harness │
│ • Inspect cable │ │ • Inspect fuse │
└───────────────────┘ └───────────────────┘
Check Power Input: Measure voltage at the motor supply terminals when activated. If voltage is absent, trace back to the mainboard driver circuit or relay.
Inspect Mechanical Linkage: Verify that the pull cable or actuation lever is securely attached to both the motor shaft and the target gate/valve.
Inspect the Gearbox: Disassemble the motor housing and inspect internal reduction gears for missing teeth, cracks, or hardened grease. Apply plastic-safe silicone grease during reassembly to extend gear life.
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